My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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temperature.cpp 154KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (c) 2020 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
  4. *
  5. * Based on Sprinter and grbl.
  6. * Copyright (c) 2011 Camiel Gubbels / Erik van der Zalm
  7. *
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program. If not, see <https://www.gnu.org/licenses/>.
  20. *
  21. */
  22. /**
  23. * temperature.cpp - temperature control
  24. */
  25. // Useful when debugging thermocouples
  26. //#define IGNORE_THERMOCOUPLE_ERRORS
  27. #include "../MarlinCore.h"
  28. #include "../HAL/shared/Delay.h"
  29. #include "../lcd/marlinui.h"
  30. #include "../gcode/gcode.h"
  31. #include "temperature.h"
  32. #include "endstops.h"
  33. #include "planner.h"
  34. #include "printcounter.h"
  35. #if EITHER(HAS_COOLER, LASER_COOLANT_FLOW_METER)
  36. #include "../feature/cooler.h"
  37. #include "../feature/spindle_laser.h"
  38. #endif
  39. #if ENABLED(USE_CONTROLLER_FAN)
  40. #include "../feature/controllerfan.h"
  41. #endif
  42. #if ENABLED(EMERGENCY_PARSER)
  43. #include "motion.h"
  44. #endif
  45. #if ENABLED(DWIN_CREALITY_LCD)
  46. #include "../lcd/e3v2/creality/dwin.h"
  47. #elif ENABLED(DWIN_LCD_PROUI)
  48. #include "../lcd/e3v2/proui/dwin.h"
  49. #endif
  50. #if ENABLED(EXTENSIBLE_UI)
  51. #include "../lcd/extui/ui_api.h"
  52. #endif
  53. #if ENABLED(HOST_PROMPT_SUPPORT)
  54. #include "../feature/host_actions.h"
  55. #endif
  56. #if ENABLED(NOZZLE_PARK_FEATURE)
  57. #include "../libs/nozzle.h"
  58. #endif
  59. #if LASER_SAFETY_TIMEOUT_MS > 0
  60. #include "../feature/spindle_laser.h"
  61. #endif
  62. // MAX TC related macros
  63. #define TEMP_SENSOR_IS_MAX(n, M) (ENABLED(TEMP_SENSOR_##n##_IS_MAX##M) || (ENABLED(TEMP_SENSOR_REDUNDANT_IS_MAX##M) && REDUNDANT_TEMP_MATCH(SOURCE, E##n)))
  64. #define TEMP_SENSOR_IS_ANY_MAX_TC(n) (TEMP_SENSOR_IS_MAX_TC(n) || (TEMP_SENSOR_IS_MAX_TC(REDUNDANT) && REDUNDANT_TEMP_MATCH(SOURCE, E##n)))
  65. // LIB_MAX6675 can be added to the build_flags in platformio.ini to use a user-defined library
  66. // If LIB_MAX6675 is not on the build_flags then raw SPI reads will be used.
  67. #if HAS_MAX6675 && USE_LIB_MAX6675
  68. #include <max6675.h>
  69. #define HAS_MAX6675_LIBRARY 1
  70. #endif
  71. // LIB_MAX31855 can be added to the build_flags in platformio.ini to use a user-defined library.
  72. // If LIB_MAX31855 is not on the build_flags then raw SPI reads will be used.
  73. #if HAS_MAX31855 && USE_ADAFRUIT_MAX31855
  74. #include <Adafruit_MAX31855.h>
  75. #define HAS_MAX31855_LIBRARY 1
  76. typedef Adafruit_MAX31855 MAX31855;
  77. #endif
  78. #if HAS_MAX31865
  79. #if USE_ADAFRUIT_MAX31865
  80. #include <Adafruit_MAX31865.h>
  81. typedef Adafruit_MAX31865 MAX31865;
  82. #else
  83. #include "../libs/MAX31865.h"
  84. #endif
  85. #endif
  86. #if HAS_MAX6675_LIBRARY || HAS_MAX31855_LIBRARY || HAS_MAX31865
  87. #define HAS_MAXTC_LIBRARIES 1
  88. #endif
  89. // If we have a MAX TC with SCK and MISO pins defined, it's either on a separate/dedicated Hardware
  90. // SPI bus, or some pins for Software SPI. Alternate Hardware SPI buses are not supported yet, so
  91. // your SPI options are:
  92. //
  93. // 1. Only CS pin(s) defined: Hardware SPI on the default bus (usually the SD card SPI).
  94. // 2. CS, MISO, and SCK pins defined: Software SPI on a separate bus, as defined by MISO, SCK.
  95. // 3. CS, MISO, and SCK pins w/ FORCE_HW_SPI: Hardware SPI on the default bus, ignoring MISO, SCK.
  96. //
  97. #if TEMP_SENSOR_IS_ANY_MAX_TC(0) && TEMP_SENSOR_0_HAS_SPI_PINS && DISABLED(TEMP_SENSOR_FORCE_HW_SPI)
  98. #define TEMP_SENSOR_0_USES_SW_SPI 1
  99. #endif
  100. #if TEMP_SENSOR_IS_ANY_MAX_TC(1) && TEMP_SENSOR_1_HAS_SPI_PINS && DISABLED(TEMP_SENSOR_FORCE_HW_SPI)
  101. #define TEMP_SENSOR_1_USES_SW_SPI 1
  102. #endif
  103. #if (TEMP_SENSOR_0_USES_SW_SPI || TEMP_SENSOR_1_USES_SW_SPI) && !HAS_MAXTC_LIBRARIES
  104. #include "../libs/private_spi.h"
  105. #define HAS_MAXTC_SW_SPI 1
  106. // Define pins for SPI-based sensors
  107. #if TEMP_SENSOR_0_USES_SW_SPI
  108. #define SW_SPI_SCK_PIN TEMP_0_SCK_PIN
  109. #define SW_SPI_MISO_PIN TEMP_0_MISO_PIN
  110. #if PIN_EXISTS(TEMP_0_MOSI)
  111. #define SW_SPI_MOSI_PIN TEMP_0_MOSI_PIN
  112. #endif
  113. #else
  114. #define SW_SPI_SCK_PIN TEMP_1_SCK_PIN
  115. #define SW_SPI_MISO_PIN TEMP_1_MISO_PIN
  116. #if PIN_EXISTS(TEMP_1_MOSI)
  117. #define SW_SPI_MOSI_PIN TEMP_1_MOSI_PIN
  118. #endif
  119. #endif
  120. #ifndef SW_SPI_MOSI_PIN
  121. #define SW_SPI_MOSI_PIN SD_MOSI_PIN
  122. #endif
  123. #endif
  124. #if ENABLED(MPCTEMP)
  125. #include <math.h>
  126. #include "probe.h"
  127. #endif
  128. #if EITHER(MPCTEMP, PID_EXTRUSION_SCALING)
  129. #include "stepper.h"
  130. #endif
  131. #if ENABLED(BABYSTEPPING) && DISABLED(INTEGRATED_BABYSTEPPING)
  132. #include "../feature/babystep.h"
  133. #endif
  134. #if ENABLED(FILAMENT_WIDTH_SENSOR)
  135. #include "../feature/filwidth.h"
  136. #endif
  137. #if HAS_POWER_MONITOR
  138. #include "../feature/power_monitor.h"
  139. #endif
  140. #if ENABLED(EMERGENCY_PARSER)
  141. #include "../feature/e_parser.h"
  142. #endif
  143. #if ENABLED(PRINTER_EVENT_LEDS)
  144. #include "../feature/leds/printer_event_leds.h"
  145. #endif
  146. #if ENABLED(JOYSTICK)
  147. #include "../feature/joystick.h"
  148. #endif
  149. #if ENABLED(SINGLENOZZLE)
  150. #include "tool_change.h"
  151. #endif
  152. #if HAS_BEEPER
  153. #include "../libs/buzzer.h"
  154. #endif
  155. #if HAS_SERVOS
  156. #include "servo.h"
  157. #endif
  158. #if ANY(TEMP_SENSOR_0_IS_THERMISTOR, TEMP_SENSOR_1_IS_THERMISTOR, TEMP_SENSOR_2_IS_THERMISTOR, TEMP_SENSOR_3_IS_THERMISTOR, \
  159. TEMP_SENSOR_4_IS_THERMISTOR, TEMP_SENSOR_5_IS_THERMISTOR, TEMP_SENSOR_6_IS_THERMISTOR, TEMP_SENSOR_7_IS_THERMISTOR )
  160. #define HAS_HOTEND_THERMISTOR 1
  161. #endif
  162. #if HAS_HOTEND_THERMISTOR
  163. #define NEXT_TEMPTABLE(N) ,TEMPTABLE_##N
  164. #define NEXT_TEMPTABLE_LEN(N) ,TEMPTABLE_##N##_LEN
  165. static const temp_entry_t* heater_ttbl_map[HOTENDS] = ARRAY_BY_HOTENDS(TEMPTABLE_0 REPEAT_S(1, HOTENDS, NEXT_TEMPTABLE));
  166. static constexpr uint8_t heater_ttbllen_map[HOTENDS] = ARRAY_BY_HOTENDS(TEMPTABLE_0_LEN REPEAT_S(1, HOTENDS, NEXT_TEMPTABLE_LEN));
  167. #endif
  168. Temperature thermalManager;
  169. PGMSTR(str_t_thermal_runaway, STR_T_THERMAL_RUNAWAY);
  170. PGMSTR(str_t_temp_malfunction, STR_T_MALFUNCTION);
  171. PGMSTR(str_t_heating_failed, STR_T_HEATING_FAILED);
  172. /**
  173. * Macros to include the heater id in temp errors. The compiler's dead-code
  174. * elimination should (hopefully) optimize out the unused strings.
  175. */
  176. #if HAS_HEATED_BED
  177. #define _BED_FSTR(h) (h) == H_BED ? GET_TEXT_F(MSG_BED) :
  178. #else
  179. #define _BED_FSTR(h)
  180. #endif
  181. #if HAS_HEATED_CHAMBER
  182. #define _CHAMBER_FSTR(h) (h) == H_CHAMBER ? GET_TEXT_F(MSG_CHAMBER) :
  183. #else
  184. #define _CHAMBER_FSTR(h)
  185. #endif
  186. #if HAS_COOLER
  187. #define _COOLER_FSTR(h) (h) == H_COOLER ? GET_TEXT_F(MSG_COOLER) :
  188. #else
  189. #define _COOLER_FSTR(h)
  190. #endif
  191. #define _E_FSTR(h,N) ((HOTENDS) > N && (h) == N) ? F(STR_E##N) :
  192. #define HEATER_FSTR(h) _BED_FSTR(h) _CHAMBER_FSTR(h) _COOLER_FSTR(h) _E_FSTR(h,1) _E_FSTR(h,2) _E_FSTR(h,3) _E_FSTR(h,4) _E_FSTR(h,5) _E_FSTR(h,6) _E_FSTR(h,7) F(STR_E0)
  193. //
  194. // Initialize MAX TC objects/SPI
  195. //
  196. #if HAS_MAX_TC
  197. #if HAS_MAXTC_SW_SPI
  198. // Initialize SoftSPI for non-lib Software SPI; Libraries take care of it themselves.
  199. template<uint8_t MisoPin, uint8_t MosiPin, uint8_t SckPin>
  200. SoftSPI<MisoPin, MosiPin, SckPin> SPIclass<MisoPin, MosiPin, SckPin>::softSPI;
  201. SPIclass<SW_SPI_MISO_PIN, SW_SPI_MOSI_PIN, SW_SPI_SCK_PIN> max_tc_spi;
  202. #endif
  203. #define MAXTC_INIT(n, M) \
  204. MAX##M max##M##_##n = MAX##M( \
  205. TEMP_##n##_CS_PIN \
  206. OPTARG(_MAX31865_##n##_SW, TEMP_##n##_MOSI_PIN) \
  207. OPTARG(TEMP_SENSOR_##n##_USES_SW_SPI, TEMP_##n##_MISO_PIN, TEMP_##n##_SCK_PIN) \
  208. OPTARG(LARGE_PINMAP, HIGH) \
  209. )
  210. #if HAS_MAX6675_LIBRARY
  211. #if TEMP_SENSOR_IS_MAX(0, 6675)
  212. MAXTC_INIT(0, 6675);
  213. #endif
  214. #if TEMP_SENSOR_IS_MAX(1, 6675)
  215. MAXTC_INIT(1, 6675);
  216. #endif
  217. #endif
  218. #if HAS_MAX31855_LIBRARY
  219. #if TEMP_SENSOR_IS_MAX(0, 31855)
  220. MAXTC_INIT(0, 31855);
  221. #endif
  222. #if TEMP_SENSOR_IS_MAX(1, 31855)
  223. MAXTC_INIT(1, 31855);
  224. #endif
  225. #endif
  226. // MAX31865 always uses a library, unlike '55 & 6675
  227. #if HAS_MAX31865
  228. #define _MAX31865_0_SW TEMP_SENSOR_0_USES_SW_SPI
  229. #define _MAX31865_1_SW TEMP_SENSOR_1_USES_SW_SPI
  230. #if TEMP_SENSOR_IS_MAX(0, 31865)
  231. MAXTC_INIT(0, 31865);
  232. #endif
  233. #if TEMP_SENSOR_IS_MAX(1, 31865)
  234. MAXTC_INIT(1, 31865);
  235. #endif
  236. #undef _MAX31865_0_SW
  237. #undef _MAX31865_1_SW
  238. #endif
  239. #undef MAXTC_INIT
  240. #endif
  241. /**
  242. * public:
  243. */
  244. #if ENABLED(NO_FAN_SLOWING_IN_PID_TUNING)
  245. bool Temperature::adaptive_fan_slowing = true;
  246. #endif
  247. #if HAS_HOTEND
  248. hotend_info_t Temperature::temp_hotend[HOTENDS];
  249. #define _HMT(N) HEATER_##N##_MAXTEMP,
  250. const celsius_t Temperature::hotend_maxtemp[HOTENDS] = ARRAY_BY_HOTENDS(HEATER_0_MAXTEMP, HEATER_1_MAXTEMP, HEATER_2_MAXTEMP, HEATER_3_MAXTEMP, HEATER_4_MAXTEMP, HEATER_5_MAXTEMP, HEATER_6_MAXTEMP, HEATER_7_MAXTEMP);
  251. #endif
  252. #if HAS_TEMP_REDUNDANT
  253. redundant_info_t Temperature::temp_redundant;
  254. #endif
  255. #if EITHER(AUTO_POWER_E_FANS, HAS_FANCHECK)
  256. uint8_t Temperature::autofan_speed[HOTENDS] = ARRAY_N_1(HOTENDS, FAN_OFF_PWM);
  257. #endif
  258. #if ENABLED(AUTO_POWER_CHAMBER_FAN)
  259. uint8_t Temperature::chamberfan_speed = FAN_OFF_PWM;
  260. #endif
  261. #if ENABLED(AUTO_POWER_COOLER_FAN)
  262. uint8_t Temperature::coolerfan_speed = FAN_OFF_PWM;
  263. #endif
  264. #if BOTH(FAN_SOFT_PWM, USE_CONTROLLER_FAN)
  265. uint8_t Temperature::soft_pwm_controller_speed = FAN_OFF_PWM;
  266. #endif
  267. // Init fans according to whether they're native PWM or Software PWM
  268. #ifdef BOARD_OPENDRAIN_MOSFETS
  269. #define _INIT_SOFT_FAN(P) OUT_WRITE_OD(P, FAN_INVERTING ? LOW : HIGH)
  270. #else
  271. #define _INIT_SOFT_FAN(P) OUT_WRITE(P, FAN_INVERTING ? LOW : HIGH)
  272. #endif
  273. #if ENABLED(FAN_SOFT_PWM)
  274. #define _INIT_FAN_PIN(P) _INIT_SOFT_FAN(P)
  275. #else
  276. #define _INIT_FAN_PIN(P) do{ if (PWM_PIN(P)) SET_PWM(P); else _INIT_SOFT_FAN(P); }while(0)
  277. #endif
  278. #if ENABLED(FAST_PWM_FAN)
  279. #define SET_FAST_PWM_FREQ(P) hal.set_pwm_frequency(pin_t(P), FAST_PWM_FAN_FREQUENCY)
  280. #else
  281. #define SET_FAST_PWM_FREQ(P) NOOP
  282. #endif
  283. #define INIT_FAN_PIN(P) do{ _INIT_FAN_PIN(P); SET_FAST_PWM_FREQ(P); }while(0)
  284. // HAS_FAN does not include CONTROLLER_FAN
  285. #if HAS_FAN
  286. uint8_t Temperature::fan_speed[FAN_COUNT] = ARRAY_N_1(FAN_COUNT, FAN_OFF_PWM);
  287. #if ENABLED(EXTRA_FAN_SPEED)
  288. Temperature::extra_fan_t Temperature::extra_fan_speed[FAN_COUNT] = ARRAY_N_1(FAN_COUNT, FAN_OFF_PWM);
  289. /**
  290. * Handle the M106 P<fan> T<speed> command:
  291. * T1 = Restore fan speed saved on the last T2
  292. * T2 = Save the fan speed, then set to the last T<3-255> value
  293. * T<3-255> = Set the "extra fan speed"
  294. */
  295. void Temperature::set_temp_fan_speed(const uint8_t fan, const uint16_t command_or_speed) {
  296. switch (command_or_speed) {
  297. case 1:
  298. set_fan_speed(fan, extra_fan_speed[fan].saved);
  299. break;
  300. case 2:
  301. extra_fan_speed[fan].saved = fan_speed[fan];
  302. set_fan_speed(fan, extra_fan_speed[fan].speed);
  303. break;
  304. default:
  305. extra_fan_speed[fan].speed = _MIN(command_or_speed, 255U);
  306. break;
  307. }
  308. }
  309. #endif
  310. #if EITHER(PROBING_FANS_OFF, ADVANCED_PAUSE_FANS_PAUSE)
  311. bool Temperature::fans_paused; // = false;
  312. uint8_t Temperature::saved_fan_speed[FAN_COUNT] = ARRAY_N_1(FAN_COUNT, FAN_OFF_PWM);
  313. #endif
  314. #if ENABLED(ADAPTIVE_FAN_SLOWING)
  315. uint8_t Temperature::fan_speed_scaler[FAN_COUNT] = ARRAY_N_1(FAN_COUNT, 128);
  316. #endif
  317. /**
  318. * Set the print fan speed for a target extruder
  319. */
  320. void Temperature::set_fan_speed(uint8_t fan, uint16_t speed) {
  321. NOMORE(speed, 255U);
  322. #if ENABLED(SINGLENOZZLE_STANDBY_FAN)
  323. if (fan != active_extruder) {
  324. if (fan < EXTRUDERS) singlenozzle_fan_speed[fan] = speed;
  325. return;
  326. }
  327. #endif
  328. TERN_(SINGLENOZZLE, if (fan < EXTRUDERS) fan = 0); // Always fan 0 for SINGLENOZZLE E fan
  329. if (fan >= FAN_COUNT) return;
  330. fan_speed[fan] = speed;
  331. #if REDUNDANT_PART_COOLING_FAN
  332. if (fan == 0) fan_speed[REDUNDANT_PART_COOLING_FAN] = speed;
  333. #endif
  334. TERN_(REPORT_FAN_CHANGE, report_fan_speed(fan));
  335. }
  336. #if ENABLED(REPORT_FAN_CHANGE)
  337. /**
  338. * Report print fan speed for a target extruder
  339. */
  340. void Temperature::report_fan_speed(const uint8_t fan) {
  341. if (fan >= FAN_COUNT) return;
  342. PORT_REDIRECT(SerialMask::All);
  343. SERIAL_ECHOLNPGM("M106 P", fan, " S", fan_speed[fan]);
  344. }
  345. #endif
  346. #if EITHER(PROBING_FANS_OFF, ADVANCED_PAUSE_FANS_PAUSE)
  347. void Temperature::set_fans_paused(const bool p) {
  348. if (p != fans_paused) {
  349. fans_paused = p;
  350. if (p)
  351. FANS_LOOP(i) { saved_fan_speed[i] = fan_speed[i]; fan_speed[i] = 0; }
  352. else
  353. FANS_LOOP(i) fan_speed[i] = saved_fan_speed[i];
  354. }
  355. }
  356. #endif
  357. #endif // HAS_FAN
  358. #if WATCH_HOTENDS
  359. hotend_watch_t Temperature::watch_hotend[HOTENDS]; // = { { 0 } }
  360. #endif
  361. #if HEATER_IDLE_HANDLER
  362. Temperature::heater_idle_t Temperature::heater_idle[NR_HEATER_IDLE]; // = { { 0 } }
  363. #endif
  364. #if HAS_HEATED_BED
  365. bed_info_t Temperature::temp_bed; // = { 0 }
  366. // Init min and max temp with extreme values to prevent false errors during startup
  367. raw_adc_t Temperature::mintemp_raw_BED = TEMP_SENSOR_BED_RAW_LO_TEMP,
  368. Temperature::maxtemp_raw_BED = TEMP_SENSOR_BED_RAW_HI_TEMP;
  369. TERN_(WATCH_BED, bed_watch_t Temperature::watch_bed); // = { 0 }
  370. IF_DISABLED(PIDTEMPBED, millis_t Temperature::next_bed_check_ms);
  371. #endif
  372. #if HAS_TEMP_CHAMBER
  373. chamber_info_t Temperature::temp_chamber; // = { 0 }
  374. #if HAS_HEATED_CHAMBER
  375. millis_t next_cool_check_ms_2 = 0;
  376. celsius_float_t old_temp = 9999;
  377. raw_adc_t Temperature::mintemp_raw_CHAMBER = TEMP_SENSOR_CHAMBER_RAW_LO_TEMP,
  378. Temperature::maxtemp_raw_CHAMBER = TEMP_SENSOR_CHAMBER_RAW_HI_TEMP;
  379. TERN_(WATCH_CHAMBER, chamber_watch_t Temperature::watch_chamber{0});
  380. IF_DISABLED(PIDTEMPCHAMBER, millis_t Temperature::next_chamber_check_ms);
  381. #endif
  382. #endif
  383. #if HAS_TEMP_COOLER
  384. cooler_info_t Temperature::temp_cooler; // = { 0 }
  385. #if HAS_COOLER
  386. bool flag_cooler_state;
  387. //bool flag_cooler_excess = false;
  388. celsius_float_t previous_temp = 9999;
  389. raw_adc_t Temperature::mintemp_raw_COOLER = TEMP_SENSOR_COOLER_RAW_LO_TEMP,
  390. Temperature::maxtemp_raw_COOLER = TEMP_SENSOR_COOLER_RAW_HI_TEMP;
  391. #if WATCH_COOLER
  392. cooler_watch_t Temperature::watch_cooler{0};
  393. #endif
  394. millis_t Temperature::next_cooler_check_ms, Temperature::cooler_fan_flush_ms;
  395. #endif
  396. #endif
  397. #if HAS_TEMP_PROBE
  398. probe_info_t Temperature::temp_probe; // = { 0 }
  399. #endif
  400. #if HAS_TEMP_BOARD
  401. board_info_t Temperature::temp_board; // = { 0 }
  402. #if ENABLED(THERMAL_PROTECTION_BOARD)
  403. raw_adc_t Temperature::mintemp_raw_BOARD = TEMP_SENSOR_BOARD_RAW_LO_TEMP,
  404. Temperature::maxtemp_raw_BOARD = TEMP_SENSOR_BOARD_RAW_HI_TEMP;
  405. #endif
  406. #endif
  407. #if BOTH(HAS_MARLINUI_MENU, PREVENT_COLD_EXTRUSION) && E_MANUAL > 0
  408. bool Temperature::allow_cold_extrude_override = false;
  409. #else
  410. constexpr bool Temperature::allow_cold_extrude_override;
  411. #endif
  412. #if ENABLED(PREVENT_COLD_EXTRUSION)
  413. bool Temperature::allow_cold_extrude = false;
  414. celsius_t Temperature::extrude_min_temp = EXTRUDE_MINTEMP;
  415. #endif
  416. #if HAS_ADC_BUTTONS
  417. uint32_t Temperature::current_ADCKey_raw = HAL_ADC_RANGE;
  418. uint16_t Temperature::ADCKey_count = 0;
  419. #endif
  420. #if ENABLED(PID_EXTRUSION_SCALING)
  421. int16_t Temperature::lpq_len; // Initialized in settings.cpp
  422. #endif
  423. /**
  424. * private:
  425. */
  426. volatile bool Temperature::raw_temps_ready = false;
  427. #if ENABLED(PID_EXTRUSION_SCALING)
  428. int32_t Temperature::pes_e_position, Temperature::lpq[LPQ_MAX_LEN];
  429. lpq_ptr_t Temperature::lpq_ptr = 0;
  430. #endif
  431. #if ENABLED(MPCTEMP)
  432. int32_t Temperature::mpc_e_position; // = 0
  433. #endif
  434. #define TEMPDIR(N) ((TEMP_SENSOR_##N##_RAW_LO_TEMP) < (TEMP_SENSOR_##N##_RAW_HI_TEMP) ? 1 : -1)
  435. #define TP_CMP(S,A,B) (TEMPDIR(S) < 0 ? ((A)<(B)) : ((A)>(B)))
  436. #if HAS_HOTEND
  437. // Init mintemp and maxtemp with extreme values to prevent false errors during startup
  438. constexpr temp_range_t sensor_heater_0 { TEMP_SENSOR_0_RAW_LO_TEMP, TEMP_SENSOR_0_RAW_HI_TEMP, 0, 16383 },
  439. sensor_heater_1 { TEMP_SENSOR_1_RAW_LO_TEMP, TEMP_SENSOR_1_RAW_HI_TEMP, 0, 16383 },
  440. sensor_heater_2 { TEMP_SENSOR_2_RAW_LO_TEMP, TEMP_SENSOR_2_RAW_HI_TEMP, 0, 16383 },
  441. sensor_heater_3 { TEMP_SENSOR_3_RAW_LO_TEMP, TEMP_SENSOR_3_RAW_HI_TEMP, 0, 16383 },
  442. sensor_heater_4 { TEMP_SENSOR_4_RAW_LO_TEMP, TEMP_SENSOR_4_RAW_HI_TEMP, 0, 16383 },
  443. sensor_heater_5 { TEMP_SENSOR_5_RAW_LO_TEMP, TEMP_SENSOR_5_RAW_HI_TEMP, 0, 16383 },
  444. sensor_heater_6 { TEMP_SENSOR_6_RAW_LO_TEMP, TEMP_SENSOR_6_RAW_HI_TEMP, 0, 16383 },
  445. sensor_heater_7 { TEMP_SENSOR_7_RAW_LO_TEMP, TEMP_SENSOR_7_RAW_HI_TEMP, 0, 16383 };
  446. temp_range_t Temperature::temp_range[HOTENDS] = ARRAY_BY_HOTENDS(sensor_heater_0, sensor_heater_1, sensor_heater_2, sensor_heater_3, sensor_heater_4, sensor_heater_5, sensor_heater_6, sensor_heater_7);
  447. #endif
  448. #if MAX_CONSECUTIVE_LOW_TEMPERATURE_ERROR_ALLOWED > 1
  449. uint8_t Temperature::consecutive_low_temperature_error[HOTENDS] = { 0 };
  450. #endif
  451. #if MILLISECONDS_PREHEAT_TIME > 0
  452. millis_t Temperature::preheat_end_time[HOTENDS] = { 0 };
  453. #endif
  454. #if HAS_FAN_LOGIC
  455. constexpr millis_t Temperature::fan_update_interval_ms;
  456. millis_t Temperature::fan_update_ms = 0;
  457. #endif
  458. #if ENABLED(FAN_SOFT_PWM)
  459. uint8_t Temperature::soft_pwm_amount_fan[FAN_COUNT],
  460. Temperature::soft_pwm_count_fan[FAN_COUNT];
  461. #endif
  462. #if ENABLED(SINGLENOZZLE_STANDBY_TEMP)
  463. celsius_t Temperature::singlenozzle_temp[EXTRUDERS];
  464. #endif
  465. #if ENABLED(SINGLENOZZLE_STANDBY_FAN)
  466. uint8_t Temperature::singlenozzle_fan_speed[EXTRUDERS];
  467. #endif
  468. #if ENABLED(PROBING_HEATERS_OFF)
  469. bool Temperature::paused_for_probing;
  470. #endif
  471. /**
  472. * public:
  473. * Class and Instance Methods
  474. */
  475. #if HAS_PID_HEATING
  476. inline void say_default_() { SERIAL_ECHOPGM("#define DEFAULT_"); }
  477. /**
  478. * PID Autotuning (M303)
  479. *
  480. * Alternately heat and cool the nozzle, observing its behavior to
  481. * determine the best PID values to achieve a stable temperature.
  482. * Needs sufficient heater power to make some overshoot at target
  483. * temperature to succeed.
  484. */
  485. void Temperature::PID_autotune(const celsius_t target, const heater_id_t heater_id, const int8_t ncycles, const bool set_result/*=false*/) {
  486. celsius_float_t current_temp = 0.0;
  487. int cycles = 0;
  488. bool heating = true;
  489. millis_t next_temp_ms = millis(), t1 = next_temp_ms, t2 = next_temp_ms;
  490. long t_high = 0, t_low = 0;
  491. raw_pid_t tune_pid = { 0, 0, 0 };
  492. celsius_float_t maxT = 0, minT = 10000;
  493. const bool isbed = (heater_id == H_BED),
  494. ischamber = (heater_id == H_CHAMBER);
  495. #if ENABLED(PIDTEMPCHAMBER)
  496. #define C_TERN(T,A,B) ((T) ? (A) : (B))
  497. #else
  498. #define C_TERN(T,A,B) (B)
  499. #endif
  500. #if ENABLED(PIDTEMPBED)
  501. #define B_TERN(T,A,B) ((T) ? (A) : (B))
  502. #else
  503. #define B_TERN(T,A,B) (B)
  504. #endif
  505. #define GHV(C,B,H) C_TERN(ischamber, C, B_TERN(isbed, B, H))
  506. #define SHV(V) C_TERN(ischamber, temp_chamber.soft_pwm_amount = V, B_TERN(isbed, temp_bed.soft_pwm_amount = V, temp_hotend[heater_id].soft_pwm_amount = V))
  507. #define ONHEATINGSTART() C_TERN(ischamber, printerEventLEDs.onChamberHeatingStart(), B_TERN(isbed, printerEventLEDs.onBedHeatingStart(), printerEventLEDs.onHotendHeatingStart()))
  508. #define ONHEATING(S,C,T) C_TERN(ischamber, printerEventLEDs.onChamberHeating(S,C,T), B_TERN(isbed, printerEventLEDs.onBedHeating(S,C,T), printerEventLEDs.onHotendHeating(S,C,T)))
  509. #define WATCH_PID DISABLED(NO_WATCH_PID_TUNING) && (BOTH(WATCH_CHAMBER, PIDTEMPCHAMBER) || BOTH(WATCH_BED, PIDTEMPBED) || BOTH(WATCH_HOTENDS, PIDTEMP))
  510. #if WATCH_PID
  511. #if BOTH(THERMAL_PROTECTION_CHAMBER, PIDTEMPCHAMBER)
  512. #define C_GTV(T,A,B) ((T) ? (A) : (B))
  513. #else
  514. #define C_GTV(T,A,B) (B)
  515. #endif
  516. #if BOTH(THERMAL_PROTECTION_BED, PIDTEMPBED)
  517. #define B_GTV(T,A,B) ((T) ? (A) : (B))
  518. #else
  519. #define B_GTV(T,A,B) (B)
  520. #endif
  521. #define GTV(C,B,H) C_GTV(ischamber, C, B_GTV(isbed, B, H))
  522. const uint16_t watch_temp_period = GTV(WATCH_CHAMBER_TEMP_PERIOD, WATCH_BED_TEMP_PERIOD, WATCH_TEMP_PERIOD);
  523. const uint8_t watch_temp_increase = GTV(WATCH_CHAMBER_TEMP_INCREASE, WATCH_BED_TEMP_INCREASE, WATCH_TEMP_INCREASE);
  524. const celsius_float_t watch_temp_target = celsius_float_t(target - (watch_temp_increase + GTV(TEMP_CHAMBER_HYSTERESIS, TEMP_BED_HYSTERESIS, TEMP_HYSTERESIS) + 1));
  525. millis_t temp_change_ms = next_temp_ms + SEC_TO_MS(watch_temp_period);
  526. celsius_float_t next_watch_temp = 0.0;
  527. bool heated = false;
  528. #endif
  529. TERN_(HAS_FAN_LOGIC, fan_update_ms = next_temp_ms + fan_update_interval_ms);
  530. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_STARTED));
  531. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(isbed ? PID_BED_START : PID_EXTR_START));
  532. if (target > GHV(CHAMBER_MAX_TARGET, BED_MAX_TARGET, temp_range[heater_id].maxtemp - (HOTEND_OVERSHOOT))) {
  533. SERIAL_ECHOPGM(STR_PID_AUTOTUNE);
  534. SERIAL_ECHOLNPGM(STR_PID_TEMP_TOO_HIGH);
  535. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_TEMP_TOO_HIGH));
  536. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(PID_TEMP_TOO_HIGH));
  537. TERN_(HOST_PROMPT_SUPPORT, hostui.notify(GET_TEXT_F(MSG_PID_TEMP_TOO_HIGH)));
  538. return;
  539. }
  540. SERIAL_ECHOPGM(STR_PID_AUTOTUNE);
  541. SERIAL_ECHOLNPGM(STR_PID_AUTOTUNE_START);
  542. disable_all_heaters();
  543. TERN_(AUTO_POWER_CONTROL, powerManager.power_on());
  544. long bias = GHV(MAX_CHAMBER_POWER, MAX_BED_POWER, PID_MAX) >> 1, d = bias;
  545. SHV(bias);
  546. #if ENABLED(PRINTER_EVENT_LEDS)
  547. const celsius_float_t start_temp = GHV(degChamber(), degBed(), degHotend(heater_id));
  548. LEDColor color = ONHEATINGSTART();
  549. #endif
  550. TERN_(NO_FAN_SLOWING_IN_PID_TUNING, adaptive_fan_slowing = false);
  551. LCD_MESSAGE(MSG_HEATING);
  552. // PID Tuning loop
  553. wait_for_heatup = true;
  554. while (wait_for_heatup) { // Can be interrupted with M108
  555. const millis_t ms = millis();
  556. if (updateTemperaturesIfReady()) { // temp sample ready
  557. // Get the current temperature and constrain it
  558. current_temp = GHV(degChamber(), degBed(), degHotend(heater_id));
  559. NOLESS(maxT, current_temp);
  560. NOMORE(minT, current_temp);
  561. #if ENABLED(PRINTER_EVENT_LEDS)
  562. ONHEATING(start_temp, current_temp, target);
  563. #endif
  564. TERN_(HAS_FAN_LOGIC, manage_extruder_fans(ms));
  565. if (heating && current_temp > target && ELAPSED(ms, t2 + 5000UL)) {
  566. heating = false;
  567. SHV((bias - d) >> 1);
  568. t1 = ms;
  569. t_high = t1 - t2;
  570. maxT = target;
  571. }
  572. if (!heating && current_temp < target && ELAPSED(ms, t1 + 5000UL)) {
  573. heating = true;
  574. t2 = ms;
  575. t_low = t2 - t1;
  576. if (cycles > 0) {
  577. const long max_pow = GHV(MAX_CHAMBER_POWER, MAX_BED_POWER, PID_MAX);
  578. bias += (d * (t_high - t_low)) / (t_low + t_high);
  579. LIMIT(bias, 20, max_pow - 20);
  580. d = (bias > max_pow >> 1) ? max_pow - 1 - bias : bias;
  581. SERIAL_ECHOPGM(STR_BIAS, bias, STR_D_COLON, d, STR_T_MIN, minT, STR_T_MAX, maxT);
  582. if (cycles > 2) {
  583. const float Ku = (4.0f * d) / (float(M_PI) * (maxT - minT) * 0.5f),
  584. Tu = float(t_low + t_high) * 0.001f,
  585. pf = (ischamber || isbed) ? 0.2f : 0.6f,
  586. df = (ischamber || isbed) ? 1.0f / 3.0f : 1.0f / 8.0f;
  587. tune_pid.p = Ku * pf;
  588. tune_pid.i = tune_pid.p * 2.0f / Tu;
  589. tune_pid.d = tune_pid.p * Tu * df;
  590. SERIAL_ECHOLNPGM(STR_KU, Ku, STR_TU, Tu);
  591. if (ischamber || isbed)
  592. SERIAL_ECHOLNPGM(" No overshoot");
  593. else
  594. SERIAL_ECHOLNPGM(STR_CLASSIC_PID);
  595. SERIAL_ECHOLNPGM(STR_KP, tune_pid.p, STR_KI, tune_pid.i, STR_KD, tune_pid.d);
  596. }
  597. }
  598. SHV((bias + d) >> 1);
  599. TERN_(HAS_STATUS_MESSAGE, ui.status_printf(0, F(S_FMT " %i/%i"), GET_TEXT(MSG_PID_CYCLE), cycles, ncycles));
  600. cycles++;
  601. minT = target;
  602. }
  603. }
  604. // Did the temperature overshoot very far?
  605. #ifndef MAX_OVERSHOOT_PID_AUTOTUNE
  606. #define MAX_OVERSHOOT_PID_AUTOTUNE 30
  607. #endif
  608. if (current_temp > target + MAX_OVERSHOOT_PID_AUTOTUNE) {
  609. SERIAL_ECHOPGM(STR_PID_AUTOTUNE);
  610. SERIAL_ECHOLNPGM(STR_PID_TEMP_TOO_HIGH);
  611. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_TEMP_TOO_HIGH));
  612. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(PID_TEMP_TOO_HIGH));
  613. TERN_(HOST_PROMPT_SUPPORT, hostui.notify(GET_TEXT_F(MSG_PID_TEMP_TOO_HIGH)));
  614. break;
  615. }
  616. // Report heater states every 2 seconds
  617. if (ELAPSED(ms, next_temp_ms)) {
  618. #if HAS_TEMP_SENSOR
  619. print_heater_states(heater_id < 0 ? active_extruder : (int8_t)heater_id);
  620. SERIAL_EOL();
  621. #endif
  622. next_temp_ms = ms + 2000UL;
  623. // Make sure heating is actually working
  624. #if WATCH_PID
  625. if (BOTH(WATCH_BED, WATCH_HOTENDS) || isbed == DISABLED(WATCH_HOTENDS) || ischamber == DISABLED(WATCH_HOTENDS)) {
  626. if (!heated) { // If not yet reached target...
  627. if (current_temp > next_watch_temp) { // Over the watch temp?
  628. next_watch_temp = current_temp + watch_temp_increase; // - set the next temp to watch for
  629. temp_change_ms = ms + SEC_TO_MS(watch_temp_period); // - move the expiration timer up
  630. if (current_temp > watch_temp_target) heated = true; // - Flag if target temperature reached
  631. }
  632. else if (ELAPSED(ms, temp_change_ms)) // Watch timer expired
  633. _temp_error(heater_id, FPSTR(str_t_heating_failed), GET_TEXT_F(MSG_HEATING_FAILED_LCD));
  634. }
  635. else if (current_temp < target - (MAX_OVERSHOOT_PID_AUTOTUNE)) // Heated, then temperature fell too far?
  636. _temp_error(heater_id, FPSTR(str_t_thermal_runaway), GET_TEXT_F(MSG_THERMAL_RUNAWAY));
  637. }
  638. #endif
  639. } // every 2 seconds
  640. // Timeout after MAX_CYCLE_TIME_PID_AUTOTUNE minutes since the last undershoot/overshoot cycle
  641. #ifndef MAX_CYCLE_TIME_PID_AUTOTUNE
  642. #define MAX_CYCLE_TIME_PID_AUTOTUNE 20L
  643. #endif
  644. if ((ms - _MIN(t1, t2)) > (MAX_CYCLE_TIME_PID_AUTOTUNE * 60L * 1000L)) {
  645. TERN_(DWIN_CREALITY_LCD, DWIN_Popup_Temperature(0));
  646. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(PID_TUNING_TIMEOUT));
  647. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_TUNING_TIMEOUT));
  648. TERN_(HOST_PROMPT_SUPPORT, hostui.notify(GET_TEXT_F(MSG_PID_TIMEOUT)));
  649. SERIAL_ECHOPGM(STR_PID_AUTOTUNE);
  650. SERIAL_ECHOLNPGM(STR_PID_TIMEOUT);
  651. break;
  652. }
  653. if (cycles > ncycles && cycles > 2) {
  654. SERIAL_ECHOPGM(STR_PID_AUTOTUNE);
  655. SERIAL_ECHOLNPGM(STR_PID_AUTOTUNE_FINISHED);
  656. TERN_(HOST_PROMPT_SUPPORT, hostui.notify(GET_TEXT_F(MSG_PID_AUTOTUNE_DONE)));
  657. #if EITHER(PIDTEMPBED, PIDTEMPCHAMBER)
  658. FSTR_P const estring = GHV(F("chamber"), F("bed"), FPSTR(NUL_STR));
  659. say_default_(); SERIAL_ECHOF(estring); SERIAL_ECHOLNPGM("Kp ", tune_pid.p);
  660. say_default_(); SERIAL_ECHOF(estring); SERIAL_ECHOLNPGM("Ki ", tune_pid.i);
  661. say_default_(); SERIAL_ECHOF(estring); SERIAL_ECHOLNPGM("Kd ", tune_pid.d);
  662. #else
  663. say_default_(); SERIAL_ECHOLNPGM("Kp ", tune_pid.p);
  664. say_default_(); SERIAL_ECHOLNPGM("Ki ", tune_pid.i);
  665. say_default_(); SERIAL_ECHOLNPGM("Kd ", tune_pid.d);
  666. #endif
  667. auto _set_hotend_pid = [](const uint8_t tool, const raw_pid_t &in_pid) {
  668. #if ENABLED(PIDTEMP)
  669. #if ENABLED(PID_PARAMS_PER_HOTEND)
  670. thermalManager.temp_hotend[tool].pid.set(in_pid);
  671. #else
  672. HOTEND_LOOP() thermalManager.temp_hotend[e].pid.set(in_pid);
  673. #endif
  674. updatePID();
  675. #endif
  676. UNUSED(tool); UNUSED(in_pid);
  677. };
  678. #if ENABLED(PIDTEMPBED)
  679. auto _set_bed_pid = [](const raw_pid_t &in_pid) {
  680. temp_bed.pid.set(in_pid);
  681. };
  682. #endif
  683. #if ENABLED(PIDTEMPCHAMBER)
  684. auto _set_chamber_pid = [](const raw_pid_t &in_pid) {
  685. temp_chamber.pid.set(in_pid);
  686. };
  687. #endif
  688. // Use the result? (As with "M303 U1")
  689. if (set_result)
  690. GHV(_set_chamber_pid(tune_pid), _set_bed_pid(tune_pid), _set_hotend_pid(heater_id, tune_pid));
  691. TERN_(PRINTER_EVENT_LEDS, printerEventLEDs.onPidTuningDone(color));
  692. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_DONE));
  693. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(PID_DONE));
  694. goto EXIT_M303;
  695. }
  696. // Run HAL idle tasks
  697. hal.idletask();
  698. // Run UI update
  699. TERN(DWIN_CREALITY_LCD, DWIN_Update(), ui.update());
  700. }
  701. wait_for_heatup = false;
  702. disable_all_heaters();
  703. TERN_(PRINTER_EVENT_LEDS, printerEventLEDs.onPidTuningDone(color));
  704. TERN_(EXTENSIBLE_UI, ExtUI::onPidTuning(ExtUI::result_t::PID_DONE));
  705. TERN_(DWIN_LCD_PROUI, DWIN_PidTuning(PID_DONE));
  706. EXIT_M303:
  707. TERN_(NO_FAN_SLOWING_IN_PID_TUNING, adaptive_fan_slowing = true);
  708. return;
  709. }
  710. #endif // HAS_PID_HEATING
  711. #if ENABLED(MPCTEMP)
  712. void Temperature::MPC_autotune() {
  713. auto housekeeping = [] (millis_t& ms, celsius_float_t& current_temp, millis_t& next_report_ms) {
  714. ms = millis();
  715. if (updateTemperaturesIfReady()) { // temp sample ready
  716. current_temp = degHotend(active_extruder);
  717. TERN_(HAS_FAN_LOGIC, manage_extruder_fans(ms));
  718. }
  719. if (ELAPSED(ms, next_report_ms)) {
  720. next_report_ms += 1000UL;
  721. print_heater_states(active_extruder);
  722. SERIAL_EOL();
  723. }
  724. hal.idletask();
  725. TERN(DWIN_CREALITY_LCD, DWIN_Update(), ui.update());
  726. if (!wait_for_heatup) {
  727. SERIAL_ECHOPGM(STR_MPC_AUTOTUNE);
  728. SERIAL_ECHOLNPGM(STR_MPC_AUTOTUNE_INTERRUPTED);
  729. return false;
  730. }
  731. return true;
  732. };
  733. struct OnExit {
  734. ~OnExit() {
  735. wait_for_heatup = false;
  736. ui.reset_status();
  737. temp_hotend[active_extruder].target = 0.0f;
  738. temp_hotend[active_extruder].soft_pwm_amount = 0;
  739. #if HAS_FAN
  740. set_fan_speed(EITHER(MPC_FAN_0_ALL_HOTENDS, MPC_FAN_0_ACTIVE_HOTEND) ? 0 : active_extruder, 0);
  741. planner.sync_fan_speeds(fan_speed);
  742. #endif
  743. do_z_clearance(MPC_TUNING_END_Z);
  744. }
  745. } on_exit;
  746. SERIAL_ECHOPGM(STR_MPC_AUTOTUNE);
  747. SERIAL_ECHOLNPGM(STR_MPC_AUTOTUNE_START, active_extruder);
  748. MPCHeaterInfo &hotend = temp_hotend[active_extruder];
  749. MPC_t &constants = hotend.constants;
  750. // Move to center of bed, just above bed height and cool with max fan
  751. gcode.home_all_axes(true);
  752. disable_all_heaters();
  753. #if HAS_FAN
  754. zero_fan_speeds();
  755. set_fan_speed(EITHER(MPC_FAN_0_ALL_HOTENDS, MPC_FAN_0_ACTIVE_HOTEND) ? 0 : active_extruder, 255);
  756. planner.sync_fan_speeds(fan_speed);
  757. #endif
  758. const xyz_pos_t tuningpos = MPC_TUNING_POS;
  759. do_blocking_move_to(tuningpos);
  760. SERIAL_ECHOLNPGM(STR_MPC_COOLING_TO_AMBIENT);
  761. LCD_MESSAGE(MSG_COOLING);
  762. millis_t ms = millis(), next_report_ms = ms, next_test_ms = ms + 10000UL;
  763. celsius_float_t current_temp = degHotend(active_extruder),
  764. ambient_temp = current_temp;
  765. wait_for_heatup = true;
  766. for (;;) { // Can be interrupted with M108
  767. if (!housekeeping(ms, current_temp, next_report_ms)) return;
  768. if (ELAPSED(ms, next_test_ms)) {
  769. if (current_temp >= ambient_temp) {
  770. ambient_temp = (ambient_temp + current_temp) / 2.0f;
  771. break;
  772. }
  773. ambient_temp = current_temp;
  774. next_test_ms += 10000UL;
  775. }
  776. }
  777. #if HAS_FAN
  778. set_fan_speed(EITHER(MPC_FAN_0_ALL_HOTENDS, MPC_FAN_0_ACTIVE_HOTEND) ? 0 : active_extruder, 0);
  779. planner.sync_fan_speeds(fan_speed);
  780. #endif
  781. hotend.modeled_ambient_temp = ambient_temp;
  782. SERIAL_ECHOLNPGM(STR_MPC_HEATING_PAST_200);
  783. LCD_MESSAGE(MSG_HEATING);
  784. hotend.target = 200.0f; // So M105 looks nice
  785. hotend.soft_pwm_amount = MPC_MAX >> 1;
  786. const millis_t heat_start_time = next_test_ms = ms;
  787. celsius_float_t temp_samples[16];
  788. uint8_t sample_count = 0;
  789. uint16_t sample_distance = 1;
  790. float t1_time = 0;
  791. for (;;) { // Can be interrupted with M108
  792. if (!housekeeping(ms, current_temp, next_report_ms)) return;
  793. if (ELAPSED(ms, next_test_ms)) {
  794. // Record samples between 100C and 200C
  795. if (current_temp >= 100.0f) {
  796. // If there are too many samples, space them more widely
  797. if (sample_count == COUNT(temp_samples)) {
  798. for (uint8_t i = 0; i < COUNT(temp_samples) / 2; i++)
  799. temp_samples[i] = temp_samples[i*2];
  800. sample_count /= 2;
  801. sample_distance *= 2;
  802. }
  803. if (sample_count == 0) t1_time = float(ms - heat_start_time) / 1000.0f;
  804. temp_samples[sample_count++] = current_temp;
  805. }
  806. if (current_temp >= 200.0f) break;
  807. next_test_ms += 1000UL * sample_distance;
  808. }
  809. }
  810. hotend.soft_pwm_amount = 0;
  811. // Calculate physical constants from three equally-spaced samples
  812. sample_count = (sample_count + 1) / 2 * 2 - 1;
  813. const float t1 = temp_samples[0],
  814. t2 = temp_samples[(sample_count - 1) >> 1],
  815. t3 = temp_samples[sample_count - 1];
  816. float asymp_temp = (t2 * t2 - t1 * t3) / (2 * t2 - t1 - t3),
  817. block_responsiveness = -log((t2 - asymp_temp) / (t1 - asymp_temp)) / (sample_distance * (sample_count >> 1));
  818. constants.ambient_xfer_coeff_fan0 = constants.heater_power * (MPC_MAX) / 255 / (asymp_temp - ambient_temp);
  819. constants.fan255_adjustment = 0.0f;
  820. constants.block_heat_capacity = constants.ambient_xfer_coeff_fan0 / block_responsiveness;
  821. constants.sensor_responsiveness = block_responsiveness / (1.0f - (ambient_temp - asymp_temp) * exp(-block_responsiveness * t1_time) / (t1 - asymp_temp));
  822. hotend.modeled_block_temp = asymp_temp + (ambient_temp - asymp_temp) * exp(-block_responsiveness * (ms - heat_start_time) / 1000.0f);
  823. hotend.modeled_sensor_temp = current_temp;
  824. // Allow the system to stabilize under MPC, then get a better measure of ambient loss with and without fan
  825. SERIAL_ECHOLNPGM(STR_MPC_MEASURING_AMBIENT, hotend.modeled_block_temp);
  826. LCD_MESSAGE(MSG_MPC_MEASURING_AMBIENT);
  827. hotend.target = hotend.modeled_block_temp;
  828. next_test_ms = ms + MPC_dT * 1000;
  829. constexpr millis_t settle_time = 20000UL, test_duration = 20000UL;
  830. millis_t settle_end_ms = ms + settle_time,
  831. test_end_ms = settle_end_ms + test_duration;
  832. float total_energy_fan0 = 0.0f;
  833. #if HAS_FAN
  834. bool fan0_done = false;
  835. float total_energy_fan255 = 0.0f;
  836. #endif
  837. float last_temp = current_temp;
  838. for (;;) { // Can be interrupted with M108
  839. if (!housekeeping(ms, current_temp, next_report_ms)) return;
  840. if (ELAPSED(ms, next_test_ms)) {
  841. hotend.soft_pwm_amount = (int)get_pid_output_hotend(active_extruder) >> 1;
  842. if (ELAPSED(ms, settle_end_ms) && !ELAPSED(ms, test_end_ms) && TERN1(HAS_FAN, !fan0_done))
  843. total_energy_fan0 += constants.heater_power * hotend.soft_pwm_amount / 127 * MPC_dT + (last_temp - current_temp) * constants.block_heat_capacity;
  844. #if HAS_FAN
  845. else if (ELAPSED(ms, test_end_ms) && !fan0_done) {
  846. set_fan_speed(EITHER(MPC_FAN_0_ALL_HOTENDS, MPC_FAN_0_ACTIVE_HOTEND) ? 0 : active_extruder, 255);
  847. planner.sync_fan_speeds(fan_speed);
  848. settle_end_ms = ms + settle_time;
  849. test_end_ms = settle_end_ms + test_duration;
  850. fan0_done = true;
  851. }
  852. else if (ELAPSED(ms, settle_end_ms) && !ELAPSED(ms, test_end_ms))
  853. total_energy_fan255 += constants.heater_power * hotend.soft_pwm_amount / 127 * MPC_dT + (last_temp - current_temp) * constants.block_heat_capacity;
  854. #endif
  855. else if (ELAPSED(ms, test_end_ms)) break;
  856. last_temp = current_temp;
  857. next_test_ms += MPC_dT * 1000;
  858. }
  859. if (!WITHIN(current_temp, t3 - 15.0f, hotend.target + 15.0f)) {
  860. SERIAL_ECHOLNPGM(STR_MPC_TEMPERATURE_ERROR);
  861. break;
  862. }
  863. }
  864. const float power_fan0 = total_energy_fan0 * 1000 / test_duration;
  865. constants.ambient_xfer_coeff_fan0 = power_fan0 / (hotend.target - ambient_temp);
  866. #if HAS_FAN
  867. const float power_fan255 = total_energy_fan255 * 1000 / test_duration,
  868. ambient_xfer_coeff_fan255 = power_fan255 / (hotend.target - ambient_temp);
  869. constants.fan255_adjustment = ambient_xfer_coeff_fan255 - constants.ambient_xfer_coeff_fan0;
  870. #endif
  871. // Calculate a new and better asymptotic temperature and re-evaluate the other constants
  872. asymp_temp = ambient_temp + constants.heater_power * (MPC_MAX) / 255 / constants.ambient_xfer_coeff_fan0;
  873. block_responsiveness = -log((t2 - asymp_temp) / (t1 - asymp_temp)) / (sample_distance * (sample_count >> 1));
  874. constants.block_heat_capacity = constants.ambient_xfer_coeff_fan0 / block_responsiveness;
  875. constants.sensor_responsiveness = block_responsiveness / (1.0f - (ambient_temp - asymp_temp) * exp(-block_responsiveness * t1_time) / (t1 - asymp_temp));
  876. SERIAL_ECHOPGM(STR_MPC_AUTOTUNE);
  877. SERIAL_ECHOLNPGM(STR_MPC_AUTOTUNE_FINISHED);
  878. /* <-- add a slash to enable
  879. SERIAL_ECHOLNPGM("t1_time ", t1_time);
  880. SERIAL_ECHOLNPGM("sample_count ", sample_count);
  881. SERIAL_ECHOLNPGM("sample_distance ", sample_distance);
  882. for (uint8_t i = 0; i < sample_count; i++)
  883. SERIAL_ECHOLNPGM("sample ", i, " : ", temp_samples[i]);
  884. SERIAL_ECHOLNPGM("t1 ", t1, " t2 ", t2, " t3 ", t3);
  885. SERIAL_ECHOLNPGM("asymp_temp ", asymp_temp);
  886. SERIAL_ECHOLNPAIR_F("block_responsiveness ", block_responsiveness, 4);
  887. //*/
  888. SERIAL_ECHOLNPGM("MPC_BLOCK_HEAT_CAPACITY ", constants.block_heat_capacity);
  889. SERIAL_ECHOLNPAIR_F("MPC_SENSOR_RESPONSIVENESS ", constants.sensor_responsiveness, 4);
  890. SERIAL_ECHOLNPAIR_F("MPC_AMBIENT_XFER_COEFF ", constants.ambient_xfer_coeff_fan0, 4);
  891. TERN_(HAS_FAN, SERIAL_ECHOLNPAIR_F("MPC_AMBIENT_XFER_COEFF_FAN255 ", ambient_xfer_coeff_fan255, 4));
  892. }
  893. #endif // MPCTEMP
  894. int16_t Temperature::getHeaterPower(const heater_id_t heater_id) {
  895. switch (heater_id) {
  896. #if HAS_HEATED_BED
  897. case H_BED: return temp_bed.soft_pwm_amount;
  898. #endif
  899. #if HAS_HEATED_CHAMBER
  900. case H_CHAMBER: return temp_chamber.soft_pwm_amount;
  901. #endif
  902. #if HAS_COOLER
  903. case H_COOLER: return temp_cooler.soft_pwm_amount;
  904. #endif
  905. default:
  906. return TERN0(HAS_HOTEND, temp_hotend[heater_id].soft_pwm_amount);
  907. }
  908. }
  909. #define _EFANOVERLAP(A,B) _FANOVERLAP(E##A,B)
  910. #if HAS_AUTO_FAN
  911. #if EXTRUDER_AUTO_FAN_SPEED != 255
  912. #define INIT_E_AUTO_FAN_PIN(P) do{ if (P == FAN1_PIN || P == FAN2_PIN) { SET_PWM(P); SET_FAST_PWM_FREQ(P); } else SET_OUTPUT(P); }while(0)
  913. #else
  914. #define INIT_E_AUTO_FAN_PIN(P) SET_OUTPUT(P)
  915. #endif
  916. #if CHAMBER_AUTO_FAN_SPEED != 255
  917. #define INIT_CHAMBER_AUTO_FAN_PIN(P) do{ if (P == FAN1_PIN || P == FAN2_PIN) { SET_PWM(P); SET_FAST_PWM_FREQ(P); } else SET_OUTPUT(P); }while(0)
  918. #else
  919. #define INIT_CHAMBER_AUTO_FAN_PIN(P) SET_OUTPUT(P)
  920. #endif
  921. #ifndef CHAMBER_FAN_INDEX
  922. #define CHAMBER_FAN_INDEX HOTENDS
  923. #endif
  924. void Temperature::update_autofans() {
  925. #define _EFAN(B,A) _EFANOVERLAP(A,B) ? B :
  926. static const uint8_t fanBit[] PROGMEM = {
  927. 0
  928. #if HAS_MULTI_HOTEND
  929. #define _NEXT_FAN(N) , REPEAT2(N,_EFAN,N) N
  930. RREPEAT_S(1, HOTENDS, _NEXT_FAN)
  931. #endif
  932. #if HAS_AUTO_CHAMBER_FAN
  933. #define _CFAN(B) _FANOVERLAP(CHAMBER,B) ? B :
  934. , REPEAT(HOTENDS,_CFAN) (HOTENDS)
  935. #endif
  936. };
  937. uint8_t fanState = 0;
  938. HOTEND_LOOP() {
  939. if (temp_hotend[e].celsius >= EXTRUDER_AUTO_FAN_TEMPERATURE) {
  940. SBI(fanState, pgm_read_byte(&fanBit[e]));
  941. }
  942. }
  943. #if HAS_AUTO_CHAMBER_FAN
  944. if (temp_chamber.celsius >= CHAMBER_AUTO_FAN_TEMPERATURE)
  945. SBI(fanState, pgm_read_byte(&fanBit[CHAMBER_FAN_INDEX]));
  946. #endif
  947. #if HAS_AUTO_COOLER_FAN
  948. if (temp_cooler.celsius >= COOLER_AUTO_FAN_TEMPERATURE)
  949. SBI(fanState, pgm_read_byte(&fanBit[COOLER_FAN_INDEX]));
  950. #endif
  951. #define _UPDATE_AUTO_FAN(P,D,A) do{ \
  952. if (PWM_PIN(P##_AUTO_FAN_PIN) && A < 255) \
  953. hal.set_pwm_duty(pin_t(P##_AUTO_FAN_PIN), D ? A : 0); \
  954. else \
  955. WRITE(P##_AUTO_FAN_PIN, D); \
  956. }while(0)
  957. uint8_t fanDone = 0;
  958. LOOP_L_N(f, COUNT(fanBit)) {
  959. const uint8_t realFan = pgm_read_byte(&fanBit[f]);
  960. if (TEST(fanDone, realFan)) continue;
  961. const bool fan_on = TEST(fanState, realFan);
  962. switch (f) {
  963. #if ENABLED(AUTO_POWER_CHAMBER_FAN)
  964. case CHAMBER_FAN_INDEX:
  965. chamberfan_speed = fan_on ? CHAMBER_AUTO_FAN_SPEED : 0;
  966. break;
  967. #endif
  968. default:
  969. #if EITHER(AUTO_POWER_E_FANS, HAS_FANCHECK)
  970. autofan_speed[realFan] = fan_on ? EXTRUDER_AUTO_FAN_SPEED : 0;
  971. #endif
  972. break;
  973. }
  974. #if BOTH(HAS_FANCHECK, HAS_PWMFANCHECK)
  975. #define _AUTOFAN_SPEED() fan_check.is_measuring() ? 255 : EXTRUDER_AUTO_FAN_SPEED
  976. #else
  977. #define _AUTOFAN_SPEED() EXTRUDER_AUTO_FAN_SPEED
  978. #endif
  979. #define _AUTOFAN_CASE(N) case N: _UPDATE_AUTO_FAN(E##N, fan_on, _AUTOFAN_SPEED()); break
  980. switch (f) {
  981. #if HAS_AUTO_FAN_0
  982. _AUTOFAN_CASE(0);
  983. #endif
  984. #if HAS_AUTO_FAN_1
  985. _AUTOFAN_CASE(1);
  986. #endif
  987. #if HAS_AUTO_FAN_2
  988. _AUTOFAN_CASE(2);
  989. #endif
  990. #if HAS_AUTO_FAN_3
  991. _AUTOFAN_CASE(3);
  992. #endif
  993. #if HAS_AUTO_FAN_4
  994. _AUTOFAN_CASE(4);
  995. #endif
  996. #if HAS_AUTO_FAN_5
  997. _AUTOFAN_CASE(5);
  998. #endif
  999. #if HAS_AUTO_FAN_6
  1000. _AUTOFAN_CASE(6);
  1001. #endif
  1002. #if HAS_AUTO_FAN_7
  1003. _AUTOFAN_CASE(7);
  1004. #endif
  1005. #if HAS_AUTO_CHAMBER_FAN && !AUTO_CHAMBER_IS_E
  1006. case CHAMBER_FAN_INDEX: _UPDATE_AUTO_FAN(CHAMBER, fan_on, CHAMBER_AUTO_FAN_SPEED); break;
  1007. #endif
  1008. }
  1009. SBI(fanDone, realFan);
  1010. }
  1011. }
  1012. #endif // HAS_AUTO_FAN
  1013. //
  1014. // Temperature Error Handlers
  1015. //
  1016. inline void loud_kill(FSTR_P const lcd_msg, const heater_id_t heater_id) {
  1017. marlin_state = MF_KILLED;
  1018. thermalManager.disable_all_heaters();
  1019. #if HAS_BEEPER
  1020. for (uint8_t i = 20; i--;) {
  1021. hal.watchdog_refresh();
  1022. buzzer.click(25);
  1023. delay(80);
  1024. hal.watchdog_refresh();
  1025. }
  1026. buzzer.on();
  1027. #endif
  1028. #if ENABLED(NOZZLE_PARK_FEATURE)
  1029. if (!homing_needed_error()) {
  1030. nozzle.park(0);
  1031. planner.synchronize();
  1032. }
  1033. #endif
  1034. kill(lcd_msg, HEATER_FSTR(heater_id));
  1035. }
  1036. void Temperature::_temp_error(const heater_id_t heater_id, FSTR_P const serial_msg, FSTR_P const lcd_msg) {
  1037. static uint8_t killed = 0;
  1038. if (IsRunning() && TERN1(BOGUS_TEMPERATURE_GRACE_PERIOD, killed == 2)) {
  1039. SERIAL_ERROR_START();
  1040. SERIAL_ECHOF(serial_msg);
  1041. SERIAL_ECHOPGM(STR_STOPPED_HEATER);
  1042. heater_id_t real_heater_id = heater_id;
  1043. #if HAS_TEMP_REDUNDANT
  1044. if (heater_id == H_REDUNDANT) {
  1045. SERIAL_ECHOPGM(STR_REDUNDANT); // print redundant and cascade to print target, too.
  1046. real_heater_id = (heater_id_t)HEATER_ID(TEMP_SENSOR_REDUNDANT_TARGET);
  1047. }
  1048. #endif
  1049. switch (real_heater_id) {
  1050. OPTCODE(HAS_TEMP_COOLER, case H_COOLER: SERIAL_ECHOPGM(STR_COOLER); break)
  1051. OPTCODE(HAS_TEMP_PROBE, case H_PROBE: SERIAL_ECHOPGM(STR_PROBE); break)
  1052. OPTCODE(HAS_TEMP_BOARD, case H_BOARD: SERIAL_ECHOPGM(STR_MOTHERBOARD); break)
  1053. OPTCODE(HAS_TEMP_CHAMBER, case H_CHAMBER: SERIAL_ECHOPGM(STR_HEATER_CHAMBER); break)
  1054. OPTCODE(HAS_TEMP_BED, case H_BED: SERIAL_ECHOPGM(STR_HEATER_BED); break)
  1055. default:
  1056. if (real_heater_id >= 0)
  1057. SERIAL_ECHOLNPGM("E", real_heater_id);
  1058. }
  1059. SERIAL_EOL();
  1060. }
  1061. disable_all_heaters(); // always disable (even for bogus temp)
  1062. hal.watchdog_refresh();
  1063. #if BOGUS_TEMPERATURE_GRACE_PERIOD
  1064. const millis_t ms = millis();
  1065. static millis_t expire_ms;
  1066. switch (killed) {
  1067. case 0:
  1068. expire_ms = ms + BOGUS_TEMPERATURE_GRACE_PERIOD;
  1069. ++killed;
  1070. break;
  1071. case 1:
  1072. if (ELAPSED(ms, expire_ms)) ++killed;
  1073. break;
  1074. case 2:
  1075. loud_kill(lcd_msg, heater_id);
  1076. ++killed;
  1077. break;
  1078. }
  1079. #elif defined(BOGUS_TEMPERATURE_GRACE_PERIOD)
  1080. UNUSED(killed);
  1081. #else
  1082. if (!killed) { killed = 1; loud_kill(lcd_msg, heater_id); }
  1083. #endif
  1084. }
  1085. void Temperature::max_temp_error(const heater_id_t heater_id) {
  1086. #if HAS_DWIN_E3V2_BASIC && (HAS_HOTEND || HAS_HEATED_BED)
  1087. DWIN_Popup_Temperature(1);
  1088. #endif
  1089. _temp_error(heater_id, F(STR_T_MAXTEMP), GET_TEXT_F(MSG_ERR_MAXTEMP));
  1090. }
  1091. void Temperature::min_temp_error(const heater_id_t heater_id) {
  1092. #if HAS_DWIN_E3V2_BASIC && (HAS_HOTEND || HAS_HEATED_BED)
  1093. DWIN_Popup_Temperature(0);
  1094. #endif
  1095. _temp_error(heater_id, F(STR_T_MINTEMP), GET_TEXT_F(MSG_ERR_MINTEMP));
  1096. }
  1097. #if HAS_PID_DEBUG
  1098. bool Temperature::pid_debug_flag; // = false
  1099. #endif
  1100. #if HAS_PID_HEATING
  1101. template<typename TT, int MIN_POW, int MAX_POW>
  1102. class PIDRunner {
  1103. public:
  1104. TT &tempinfo;
  1105. __typeof__(TT::pid) work_pid{0};
  1106. float temp_iState = 0, temp_dState = 0;
  1107. bool pid_reset = true;
  1108. PIDRunner(TT &t) : tempinfo(t) { }
  1109. float get_pid_output() {
  1110. #if ENABLED(PID_OPENLOOP)
  1111. return constrain(tempinfo.target, 0, MAX_POW);
  1112. #else // !PID_OPENLOOP
  1113. const float pid_error = tempinfo.target - tempinfo.celsius;
  1114. if (!tempinfo.target || pid_error < -(PID_FUNCTIONAL_RANGE)) {
  1115. pid_reset = true;
  1116. return 0;
  1117. }
  1118. else if (pid_error > PID_FUNCTIONAL_RANGE) {
  1119. pid_reset = true;
  1120. return MAX_POW;
  1121. }
  1122. if (pid_reset) {
  1123. pid_reset = false;
  1124. temp_iState = 0.0;
  1125. work_pid.Kd = 0.0;
  1126. }
  1127. const float max_power_over_i_gain = float(MAX_POW) / tempinfo.pid.Ki - float(MIN_POW);
  1128. temp_iState = constrain(temp_iState + pid_error, 0, max_power_over_i_gain);
  1129. work_pid.Kp = tempinfo.pid.Kp * pid_error;
  1130. work_pid.Ki = tempinfo.pid.Ki * temp_iState;
  1131. work_pid.Kd = work_pid.Kd + PID_K2 * (tempinfo.pid.Kd * (temp_dState - tempinfo.celsius) - work_pid.Kd);
  1132. temp_dState = tempinfo.celsius;
  1133. return constrain(work_pid.Kp + work_pid.Ki + work_pid.Kd + float(MIN_POW), 0, MAX_POW);
  1134. #endif // !PID_OPENLOOP
  1135. }
  1136. FORCE_INLINE void debug(const_celsius_float_t c, const_float_t pid_out, FSTR_P const name=nullptr, const int8_t index=-1) {
  1137. if (TERN0(HAS_PID_DEBUG, thermalManager.pid_debug_flag)) {
  1138. SERIAL_ECHO_START();
  1139. if (name) SERIAL_ECHOF(name);
  1140. if (index >= 0) SERIAL_ECHO(index);
  1141. SERIAL_ECHOLNPGM(
  1142. STR_PID_DEBUG_INPUT, c,
  1143. STR_PID_DEBUG_OUTPUT, pid_out
  1144. #if DISABLED(PID_OPENLOOP)
  1145. , " pTerm ", work_pid.Kp, " iTerm ", work_pid.Ki, " dTerm ", work_pid.Kd
  1146. #endif
  1147. );
  1148. }
  1149. }
  1150. };
  1151. #endif // HAS_PID_HEATING
  1152. #if HAS_HOTEND
  1153. float Temperature::get_pid_output_hotend(const uint8_t E_NAME) {
  1154. const uint8_t ee = HOTEND_INDEX;
  1155. const bool is_idling = TERN0(HEATER_IDLE_HANDLER, heater_idle[ee].timed_out);
  1156. #if ENABLED(PIDTEMP)
  1157. typedef PIDRunner<hotend_info_t, 0, PID_MAX> PIDRunnerHotend;
  1158. static PIDRunnerHotend hotend_pid[HOTENDS] = {
  1159. #define _HOTENDPID(E) temp_hotend[E],
  1160. REPEAT(HOTENDS, _HOTENDPID)
  1161. };
  1162. const float pid_output = is_idling ? 0 : hotend_pid[ee].get_pid_output();
  1163. #if ENABLED(PID_DEBUG)
  1164. if (ee == active_extruder)
  1165. hotend_pid[ee].debug(temp_hotend[ee].celsius, pid_output, F("E"), ee);
  1166. #endif
  1167. #elif ENABLED(MPCTEMP)
  1168. MPCHeaterInfo &hotend = temp_hotend[ee];
  1169. MPC_t &constants = hotend.constants;
  1170. // At startup, initialize modeled temperatures
  1171. if (isnan(hotend.modeled_block_temp)) {
  1172. hotend.modeled_ambient_temp = _MIN(30.0f, hotend.celsius); // Cap initial value at reasonable max room temperature of 30C
  1173. hotend.modeled_block_temp = hotend.modeled_sensor_temp = hotend.celsius;
  1174. }
  1175. #if HOTENDS == 1
  1176. constexpr bool this_hotend = true;
  1177. #else
  1178. const bool this_hotend = (ee == active_extruder);
  1179. #endif
  1180. float ambient_xfer_coeff = constants.ambient_xfer_coeff_fan0;
  1181. #if ENABLED(MPC_INCLUDE_FAN)
  1182. const uint8_t fan_index = EITHER(MPC_FAN_0_ACTIVE_HOTEND, MPC_FAN_0_ALL_HOTENDS) ? 0 : ee;
  1183. const float fan_fraction = TERN_(MPC_FAN_0_ACTIVE_HOTEND, !this_hotend ? 0.0f : ) fan_speed[fan_index] * RECIPROCAL(255);
  1184. ambient_xfer_coeff += fan_fraction * constants.fan255_adjustment;
  1185. #endif
  1186. if (this_hotend) {
  1187. const int32_t e_position = stepper.position(E_AXIS);
  1188. const float e_speed = (e_position - mpc_e_position) * planner.mm_per_step[E_AXIS] / MPC_dT;
  1189. // The position can appear to make big jumps when, e.g. homing
  1190. if (fabs(e_speed) > planner.settings.max_feedrate_mm_s[E_AXIS])
  1191. mpc_e_position = e_position;
  1192. else if (e_speed > 0.0f) { // Ignore retract/recover moves
  1193. ambient_xfer_coeff += e_speed * constants.filament_heat_capacity_permm;
  1194. mpc_e_position = e_position;
  1195. }
  1196. }
  1197. // Update the modeled temperatures
  1198. float blocktempdelta = hotend.soft_pwm_amount * constants.heater_power * (MPC_dT / 127) / constants.block_heat_capacity;
  1199. blocktempdelta += (hotend.modeled_ambient_temp - hotend.modeled_block_temp) * ambient_xfer_coeff * MPC_dT / constants.block_heat_capacity;
  1200. hotend.modeled_block_temp += blocktempdelta;
  1201. const float sensortempdelta = (hotend.modeled_block_temp - hotend.modeled_sensor_temp) * (constants.sensor_responsiveness * MPC_dT);
  1202. hotend.modeled_sensor_temp += sensortempdelta;
  1203. // Any delta between hotend.modeled_sensor_temp and hotend.celsius is either model
  1204. // error diverging slowly or (fast) noise. Slowly correct towards this temperature and noise will average out.
  1205. const float delta_to_apply = (hotend.celsius - hotend.modeled_sensor_temp) * (MPC_SMOOTHING_FACTOR);
  1206. hotend.modeled_block_temp += delta_to_apply;
  1207. hotend.modeled_sensor_temp += delta_to_apply;
  1208. // Only correct ambient when close to steady state (output power is not clipped or asymptotic temperature is reached)
  1209. if (WITHIN(hotend.soft_pwm_amount, 1, 126) || fabs(blocktempdelta + delta_to_apply) < (MPC_STEADYSTATE * MPC_dT))
  1210. hotend.modeled_ambient_temp += delta_to_apply > 0.f ? _MAX(delta_to_apply, MPC_MIN_AMBIENT_CHANGE * MPC_dT) : _MIN(delta_to_apply, -MPC_MIN_AMBIENT_CHANGE * MPC_dT);
  1211. float power = 0.0;
  1212. if (hotend.target != 0 && !is_idling) {
  1213. // Plan power level to get to target temperature in 2 seconds
  1214. power = (hotend.target - hotend.modeled_block_temp) * constants.block_heat_capacity / 2.0f;
  1215. power -= (hotend.modeled_ambient_temp - hotend.modeled_block_temp) * ambient_xfer_coeff;
  1216. }
  1217. float pid_output = power * 254.0f / constants.heater_power + 1.0f; // Ensure correct quantization into a range of 0 to 127
  1218. pid_output = constrain(pid_output, 0, MPC_MAX);
  1219. /* <-- add a slash to enable
  1220. static uint32_t nexttime = millis() + 1000;
  1221. if (ELAPSED(millis(), nexttime)) {
  1222. nexttime += 1000;
  1223. SERIAL_ECHOLNPGM("block temp ", hotend.modeled_block_temp,
  1224. ", celsius ", hotend.celsius,
  1225. ", blocktempdelta ", blocktempdelta,
  1226. ", delta_to_apply ", delta_to_apply,
  1227. ", ambient ", hotend.modeled_ambient_temp,
  1228. ", power ", power,
  1229. ", pid_output ", pid_output,
  1230. ", pwm ", (int)pid_output >> 1);
  1231. }
  1232. //*/
  1233. #else // No PID or MPC enabled
  1234. const float pid_output = (!is_idling && temp_hotend[ee].is_below_target()) ? BANG_MAX : 0;
  1235. #endif
  1236. return pid_output;
  1237. }
  1238. #endif // HAS_HOTEND
  1239. #if ENABLED(PIDTEMPBED)
  1240. float Temperature::get_pid_output_bed() {
  1241. static PIDRunner<bed_info_t, MIN_BED_POWER, MAX_BED_POWER> bed_pid(temp_bed);
  1242. const float pid_output = bed_pid.get_pid_output();
  1243. TERN_(PID_BED_DEBUG, bed_pid.debug(temp_bed.celsius, pid_output, F("(Bed)")));
  1244. return pid_output;
  1245. }
  1246. #endif // PIDTEMPBED
  1247. #if ENABLED(PIDTEMPCHAMBER)
  1248. float Temperature::get_pid_output_chamber() {
  1249. static PIDRunner<chamber_info_t, MIN_CHAMBER_POWER, MAX_CHAMBER_POWER> chamber_pid(temp_chamber);
  1250. const float pid_output = chamber_pid.get_pid_output();
  1251. TERN_(PID_CHAMBER_DEBUG, chamber_pid.debug(temp_chamber.celsius, pid_output, F("(Chamber)")));
  1252. return pid_output;
  1253. }
  1254. #endif // PIDTEMPCHAMBER
  1255. #if HAS_HOTEND
  1256. void Temperature::manage_hotends(const millis_t &ms) {
  1257. HOTEND_LOOP() {
  1258. #if ENABLED(THERMAL_PROTECTION_HOTENDS)
  1259. if (degHotend(e) > temp_range[e].maxtemp) max_temp_error((heater_id_t)e);
  1260. #endif
  1261. TERN_(HEATER_IDLE_HANDLER, heater_idle[e].update(ms));
  1262. #if ENABLED(THERMAL_PROTECTION_HOTENDS)
  1263. // Check for thermal runaway
  1264. tr_state_machine[e].run(temp_hotend[e].celsius, temp_hotend[e].target, (heater_id_t)e, THERMAL_PROTECTION_PERIOD, THERMAL_PROTECTION_HYSTERESIS);
  1265. #endif
  1266. temp_hotend[e].soft_pwm_amount = (temp_hotend[e].celsius > temp_range[e].mintemp || is_preheating(e)) && temp_hotend[e].celsius < temp_range[e].maxtemp ? (int)get_pid_output_hotend(e) >> 1 : 0;
  1267. #if WATCH_HOTENDS
  1268. // Make sure temperature is increasing
  1269. if (watch_hotend[e].elapsed(ms)) { // Enabled and time to check?
  1270. if (watch_hotend[e].check(degHotend(e))) // Increased enough?
  1271. start_watching_hotend(e); // If temp reached, turn off elapsed check
  1272. else {
  1273. TERN_(HAS_DWIN_E3V2_BASIC, DWIN_Popup_Temperature(0));
  1274. _temp_error((heater_id_t)e, FPSTR(str_t_heating_failed), GET_TEXT_F(MSG_HEATING_FAILED_LCD));
  1275. }
  1276. }
  1277. #endif
  1278. } // HOTEND_LOOP
  1279. }
  1280. #endif // HAS_HOTEND
  1281. #if HAS_HEATED_BED
  1282. void Temperature::manage_heated_bed(const millis_t &ms) {
  1283. #if ENABLED(THERMAL_PROTECTION_BED)
  1284. if (degBed() > BED_MAXTEMP) max_temp_error(H_BED);
  1285. #endif
  1286. #if WATCH_BED
  1287. // Make sure temperature is increasing
  1288. if (watch_bed.elapsed(ms)) { // Time to check the bed?
  1289. if (watch_bed.check(degBed())) // Increased enough?
  1290. start_watching_bed(); // If temp reached, turn off elapsed check
  1291. else {
  1292. TERN_(HAS_DWIN_E3V2_BASIC, DWIN_Popup_Temperature(0));
  1293. _temp_error(H_BED, FPSTR(str_t_heating_failed), GET_TEXT_F(MSG_HEATING_FAILED_LCD));
  1294. }
  1295. }
  1296. #endif // WATCH_BED
  1297. #if BOTH(PROBING_HEATERS_OFF, BED_LIMIT_SWITCHING)
  1298. #define PAUSE_CHANGE_REQD 1
  1299. #endif
  1300. #if PAUSE_CHANGE_REQD
  1301. static bool last_pause_state;
  1302. #endif
  1303. do {
  1304. #if DISABLED(PIDTEMPBED)
  1305. if (PENDING(ms, next_bed_check_ms)
  1306. && TERN1(PAUSE_CHANGE_REQD, paused_for_probing == last_pause_state)
  1307. ) break;
  1308. next_bed_check_ms = ms + BED_CHECK_INTERVAL;
  1309. TERN_(PAUSE_CHANGE_REQD, last_pause_state = paused_for_probing);
  1310. #endif
  1311. TERN_(HEATER_IDLE_HANDLER, heater_idle[IDLE_INDEX_BED].update(ms));
  1312. #if ENABLED(THERMAL_PROTECTION_BED)
  1313. tr_state_machine[RUNAWAY_IND_BED].run(temp_bed.celsius, temp_bed.target, H_BED, THERMAL_PROTECTION_BED_PERIOD, THERMAL_PROTECTION_BED_HYSTERESIS);
  1314. #endif
  1315. #if HEATER_IDLE_HANDLER
  1316. if (heater_idle[IDLE_INDEX_BED].timed_out) {
  1317. temp_bed.soft_pwm_amount = 0;
  1318. if (DISABLED(PIDTEMPBED)) WRITE_HEATER_BED(LOW);
  1319. }
  1320. else
  1321. #endif
  1322. {
  1323. #if ENABLED(PIDTEMPBED)
  1324. temp_bed.soft_pwm_amount = WITHIN(temp_bed.celsius, BED_MINTEMP, BED_MAXTEMP) ? (int)get_pid_output_bed() >> 1 : 0;
  1325. #else
  1326. // Check if temperature is within the correct band
  1327. if (WITHIN(temp_bed.celsius, BED_MINTEMP, BED_MAXTEMP)) {
  1328. #if ENABLED(BED_LIMIT_SWITCHING)
  1329. if (temp_bed.celsius >= temp_bed.target + BED_HYSTERESIS)
  1330. temp_bed.soft_pwm_amount = 0;
  1331. else if (temp_bed.is_below_target(-(BED_HYSTERESIS) + 1))
  1332. temp_bed.soft_pwm_amount = MAX_BED_POWER >> 1;
  1333. #else // !PIDTEMPBED && !BED_LIMIT_SWITCHING
  1334. temp_bed.soft_pwm_amount = temp_bed.is_below_target() ? MAX_BED_POWER >> 1 : 0;
  1335. #endif
  1336. }
  1337. else {
  1338. temp_bed.soft_pwm_amount = 0;
  1339. WRITE_HEATER_BED(LOW);
  1340. }
  1341. #endif
  1342. }
  1343. } while (false);
  1344. }
  1345. #endif // HAS_HEATED_BED
  1346. #if HAS_HEATED_CHAMBER
  1347. void Temperature::manage_heated_chamber(const millis_t &ms) {
  1348. #ifndef CHAMBER_CHECK_INTERVAL
  1349. #define CHAMBER_CHECK_INTERVAL 1000UL
  1350. #endif
  1351. #if ENABLED(THERMAL_PROTECTION_CHAMBER)
  1352. if (degChamber() > CHAMBER_MAXTEMP) max_temp_error(H_CHAMBER);
  1353. #endif
  1354. #if WATCH_CHAMBER
  1355. // Make sure temperature is increasing
  1356. if (watch_chamber.elapsed(ms)) { // Time to check the chamber?
  1357. if (watch_chamber.check(degChamber())) // Increased enough? Error below.
  1358. start_watching_chamber(); // If temp reached, turn off elapsed check.
  1359. else
  1360. _temp_error(H_CHAMBER, FPSTR(str_t_heating_failed), GET_TEXT_F(MSG_HEATING_FAILED_LCD));
  1361. }
  1362. #endif
  1363. #if EITHER(CHAMBER_FAN, CHAMBER_VENT) || DISABLED(PIDTEMPCHAMBER)
  1364. static bool flag_chamber_excess_heat; // = false;
  1365. #endif
  1366. #if EITHER(CHAMBER_FAN, CHAMBER_VENT)
  1367. static bool flag_chamber_off; // = false
  1368. if (temp_chamber.target > CHAMBER_MINTEMP) {
  1369. flag_chamber_off = false;
  1370. #if ENABLED(CHAMBER_FAN)
  1371. int16_t fan_chamber_pwm;
  1372. #if CHAMBER_FAN_MODE == 0
  1373. fan_chamber_pwm = CHAMBER_FAN_BASE;
  1374. #elif CHAMBER_FAN_MODE == 1
  1375. fan_chamber_pwm = (temp_chamber.celsius > temp_chamber.target) ? (CHAMBER_FAN_BASE) + (CHAMBER_FAN_FACTOR) * (temp_chamber.celsius - temp_chamber.target) : 0;
  1376. #elif CHAMBER_FAN_MODE == 2
  1377. fan_chamber_pwm = (CHAMBER_FAN_BASE) + (CHAMBER_FAN_FACTOR) * ABS(temp_chamber.celsius - temp_chamber.target);
  1378. if (temp_chamber.soft_pwm_amount)
  1379. fan_chamber_pwm += (CHAMBER_FAN_FACTOR) * 2;
  1380. #elif CHAMBER_FAN_MODE == 3
  1381. fan_chamber_pwm = CHAMBER_FAN_BASE + _MAX((CHAMBER_FAN_FACTOR) * (temp_chamber.celsius - temp_chamber.target), 0);
  1382. #endif
  1383. NOMORE(fan_chamber_pwm, 255);
  1384. set_fan_speed(CHAMBER_FAN_INDEX, fan_chamber_pwm);
  1385. #endif
  1386. #if ENABLED(CHAMBER_VENT)
  1387. #ifndef MIN_COOLING_SLOPE_TIME_CHAMBER_VENT
  1388. #define MIN_COOLING_SLOPE_TIME_CHAMBER_VENT 20
  1389. #endif
  1390. #ifndef MIN_COOLING_SLOPE_DEG_CHAMBER_VENT
  1391. #define MIN_COOLING_SLOPE_DEG_CHAMBER_VENT 1.5
  1392. #endif
  1393. if (!flag_chamber_excess_heat && temp_chamber.celsius - temp_chamber.target >= HIGH_EXCESS_HEAT_LIMIT) {
  1394. // Open vent after MIN_COOLING_SLOPE_TIME_CHAMBER_VENT seconds if the
  1395. // temperature didn't drop at least MIN_COOLING_SLOPE_DEG_CHAMBER_VENT
  1396. if (next_cool_check_ms_2 == 0 || ELAPSED(ms, next_cool_check_ms_2)) {
  1397. if (temp_chamber.celsius - old_temp > MIN_COOLING_SLOPE_DEG_CHAMBER_VENT)
  1398. flag_chamber_excess_heat = true; // the bed is heating the chamber too much
  1399. next_cool_check_ms_2 = ms + SEC_TO_MS(MIN_COOLING_SLOPE_TIME_CHAMBER_VENT);
  1400. old_temp = temp_chamber.celsius;
  1401. }
  1402. }
  1403. else {
  1404. next_cool_check_ms_2 = 0;
  1405. old_temp = 9999;
  1406. }
  1407. if (flag_chamber_excess_heat && (temp_chamber.target - temp_chamber.celsius >= LOW_EXCESS_HEAT_LIMIT))
  1408. flag_chamber_excess_heat = false;
  1409. #endif
  1410. }
  1411. else if (!flag_chamber_off) {
  1412. #if ENABLED(CHAMBER_FAN)
  1413. flag_chamber_off = true;
  1414. set_fan_speed(CHAMBER_FAN_INDEX, 0);
  1415. #endif
  1416. #if ENABLED(CHAMBER_VENT)
  1417. flag_chamber_excess_heat = false;
  1418. servo[CHAMBER_VENT_SERVO_NR].move(90);
  1419. #endif
  1420. }
  1421. #endif
  1422. #if ENABLED(PIDTEMPCHAMBER)
  1423. // PIDTEMPCHAMBER doesn't support a CHAMBER_VENT yet.
  1424. temp_chamber.soft_pwm_amount = WITHIN(temp_chamber.celsius, CHAMBER_MINTEMP, CHAMBER_MAXTEMP) ? (int)get_pid_output_chamber() >> 1 : 0;
  1425. #else
  1426. if (ELAPSED(ms, next_chamber_check_ms)) {
  1427. next_chamber_check_ms = ms + CHAMBER_CHECK_INTERVAL;
  1428. if (WITHIN(temp_chamber.celsius, CHAMBER_MINTEMP, CHAMBER_MAXTEMP)) {
  1429. if (flag_chamber_excess_heat) {
  1430. temp_chamber.soft_pwm_amount = 0;
  1431. #if ENABLED(CHAMBER_VENT)
  1432. if (!flag_chamber_off) servo[CHAMBER_VENT_SERVO_NR].move(temp_chamber.is_below_target() ? 0 : 90);
  1433. #endif
  1434. }
  1435. else {
  1436. #if ENABLED(CHAMBER_LIMIT_SWITCHING)
  1437. if (temp_chamber.celsius >= temp_chamber.target + TEMP_CHAMBER_HYSTERESIS)
  1438. temp_chamber.soft_pwm_amount = 0;
  1439. else if (temp_chamber.is_below_target(-(TEMP_CHAMBER_HYSTERESIS) + 1))
  1440. temp_chamber.soft_pwm_amount = (MAX_CHAMBER_POWER) >> 1;
  1441. #else
  1442. temp_chamber.soft_pwm_amount = temp_chamber.is_below_target() ? (MAX_CHAMBER_POWER) >> 1 : 0;
  1443. #endif
  1444. #if ENABLED(CHAMBER_VENT)
  1445. if (!flag_chamber_off) servo[CHAMBER_VENT_SERVO_NR].move(0);
  1446. #endif
  1447. }
  1448. }
  1449. else {
  1450. temp_chamber.soft_pwm_amount = 0;
  1451. WRITE_HEATER_CHAMBER(LOW);
  1452. }
  1453. }
  1454. #if ENABLED(THERMAL_PROTECTION_CHAMBER)
  1455. tr_state_machine[RUNAWAY_IND_CHAMBER].run(temp_chamber.celsius, temp_chamber.target, H_CHAMBER, THERMAL_PROTECTION_CHAMBER_PERIOD, THERMAL_PROTECTION_CHAMBER_HYSTERESIS);
  1456. #endif
  1457. #endif
  1458. }
  1459. #endif // HAS_HEATED_CHAMBER
  1460. #if HAS_COOLER
  1461. void Temperature::manage_cooler(const millis_t &ms) {
  1462. #ifndef COOLER_CHECK_INTERVAL
  1463. #define COOLER_CHECK_INTERVAL 2000UL
  1464. #endif
  1465. #if ENABLED(THERMAL_PROTECTION_COOLER)
  1466. if (degCooler() > COOLER_MAXTEMP) max_temp_error(H_COOLER);
  1467. #endif
  1468. #if WATCH_COOLER
  1469. // Make sure temperature is decreasing
  1470. if (watch_cooler.elapsed(ms)) { // Time to check the cooler?
  1471. if (degCooler() > watch_cooler.target) // Failed to decrease enough?
  1472. _temp_error(H_COOLER, GET_TEXT_F(MSG_COOLING_FAILED), GET_TEXT_F(MSG_COOLING_FAILED));
  1473. else
  1474. start_watching_cooler(); // Start again if the target is still far off
  1475. }
  1476. #endif
  1477. static bool flag_cooler_state; // = false
  1478. if (cooler.enabled) {
  1479. flag_cooler_state = true; // used to allow M106 fan control when cooler is disabled
  1480. if (temp_cooler.target == 0) temp_cooler.target = COOLER_MIN_TARGET;
  1481. if (ELAPSED(ms, next_cooler_check_ms)) {
  1482. next_cooler_check_ms = ms + COOLER_CHECK_INTERVAL;
  1483. if (temp_cooler.celsius > temp_cooler.target) {
  1484. temp_cooler.soft_pwm_amount = temp_cooler.celsius > temp_cooler.target ? MAX_COOLER_POWER : 0;
  1485. flag_cooler_state = temp_cooler.soft_pwm_amount > 0 ? true : false; // used to allow M106 fan control when cooler is disabled
  1486. #if ENABLED(COOLER_FAN)
  1487. int16_t fan_cooler_pwm = (COOLER_FAN_BASE) + (COOLER_FAN_FACTOR) * ABS(temp_cooler.celsius - temp_cooler.target);
  1488. NOMORE(fan_cooler_pwm, 255);
  1489. set_fan_speed(COOLER_FAN_INDEX, fan_cooler_pwm); // Set cooler fan pwm
  1490. cooler_fan_flush_ms = ms + 5000;
  1491. #endif
  1492. }
  1493. else {
  1494. temp_cooler.soft_pwm_amount = 0;
  1495. #if ENABLED(COOLER_FAN)
  1496. set_fan_speed(COOLER_FAN_INDEX, temp_cooler.celsius > temp_cooler.target - 2 ? COOLER_FAN_BASE : 0);
  1497. #endif
  1498. WRITE_HEATER_COOLER(LOW);
  1499. }
  1500. }
  1501. }
  1502. else {
  1503. temp_cooler.soft_pwm_amount = 0;
  1504. if (flag_cooler_state) {
  1505. flag_cooler_state = false;
  1506. thermalManager.set_fan_speed(COOLER_FAN_INDEX, 0);
  1507. }
  1508. WRITE_HEATER_COOLER(LOW);
  1509. }
  1510. #if ENABLED(THERMAL_PROTECTION_COOLER)
  1511. tr_state_machine[RUNAWAY_IND_COOLER].run(temp_cooler.celsius, temp_cooler.target, H_COOLER, THERMAL_PROTECTION_COOLER_PERIOD, THERMAL_PROTECTION_COOLER_HYSTERESIS);
  1512. #endif
  1513. }
  1514. #endif // HAS_COOLER
  1515. /**
  1516. * Manage heating activities for extruder hot-ends and a heated bed
  1517. * - Acquire updated temperature readings
  1518. * - Also resets the watchdog timer
  1519. * - Invoke thermal runaway protection
  1520. * - Manage extruder auto-fan
  1521. * - Apply filament width to the extrusion rate (may move)
  1522. * - Update the heated bed PID output value
  1523. */
  1524. void Temperature::task() {
  1525. if (marlin_state == MF_INITIALIZING) return hal.watchdog_refresh(); // If Marlin isn't started, at least reset the watchdog!
  1526. static bool no_reentry = false; // Prevent recursion
  1527. if (no_reentry) return;
  1528. REMEMBER(mh, no_reentry, true);
  1529. #if ENABLED(EMERGENCY_PARSER)
  1530. if (emergency_parser.killed_by_M112) kill(FPSTR(M112_KILL_STR), nullptr, true);
  1531. if (emergency_parser.quickstop_by_M410) {
  1532. emergency_parser.quickstop_by_M410 = false; // quickstop_stepper may call idle so clear this now!
  1533. quickstop_stepper();
  1534. }
  1535. #if ENABLED(SDSUPPORT)
  1536. if (emergency_parser.sd_abort_by_M524) { // abort SD print immediately
  1537. emergency_parser.sd_abort_by_M524 = false;
  1538. card.flag.abort_sd_printing = true;
  1539. gcode.process_subcommands_now(F("M524"));
  1540. }
  1541. #endif
  1542. #endif
  1543. if (!updateTemperaturesIfReady()) return; // Will also reset the watchdog if temperatures are ready
  1544. #if DISABLED(IGNORE_THERMOCOUPLE_ERRORS)
  1545. #if TEMP_SENSOR_IS_MAX_TC(0)
  1546. if (degHotend(0) > _MIN(HEATER_0_MAXTEMP, TEMP_SENSOR_0_MAX_TC_TMAX - 1.0)) max_temp_error(H_E0);
  1547. if (degHotend(0) < _MAX(HEATER_0_MINTEMP, TEMP_SENSOR_0_MAX_TC_TMIN + .01)) min_temp_error(H_E0);
  1548. #endif
  1549. #if TEMP_SENSOR_IS_MAX_TC(1)
  1550. if (degHotend(1) > _MIN(HEATER_1_MAXTEMP, TEMP_SENSOR_1_MAX_TC_TMAX - 1.0)) max_temp_error(H_E1);
  1551. if (degHotend(1) < _MAX(HEATER_1_MINTEMP, TEMP_SENSOR_1_MAX_TC_TMIN + .01)) min_temp_error(H_E1);
  1552. #endif
  1553. #if TEMP_SENSOR_IS_MAX_TC(REDUNDANT)
  1554. if (degRedundant() > TEMP_SENSOR_REDUNDANT_MAX_TC_TMAX - 1.0) max_temp_error(H_REDUNDANT);
  1555. if (degRedundant() < TEMP_SENSOR_REDUNDANT_MAX_TC_TMIN + .01) min_temp_error(H_REDUNDANT);
  1556. #endif
  1557. #else
  1558. #warning "Safety Alert! Disable IGNORE_THERMOCOUPLE_ERRORS for the final build!"
  1559. #endif
  1560. const millis_t ms = millis();
  1561. // Handle Hotend Temp Errors, Heating Watch, etc.
  1562. TERN_(HAS_HOTEND, manage_hotends(ms));
  1563. #if HAS_TEMP_REDUNDANT
  1564. // Make sure measured temperatures are close together
  1565. if (ABS(degRedundantTarget() - degRedundant()) > TEMP_SENSOR_REDUNDANT_MAX_DIFF)
  1566. _temp_error((heater_id_t)HEATER_ID(TEMP_SENSOR_REDUNDANT_TARGET), F(STR_REDUNDANCY), GET_TEXT_F(MSG_ERR_REDUNDANT_TEMP));
  1567. #endif
  1568. // Manage extruder auto fans and/or read fan tachometers
  1569. TERN_(HAS_FAN_LOGIC, manage_extruder_fans(ms));
  1570. /**
  1571. * Dynamically set the volumetric multiplier based
  1572. * on the delayed Filament Width measurement.
  1573. */
  1574. TERN_(FILAMENT_WIDTH_SENSOR, filwidth.update_volumetric());
  1575. // Handle Bed Temp Errors, Heating Watch, etc.
  1576. TERN_(HAS_HEATED_BED, manage_heated_bed(ms));
  1577. // Handle Heated Chamber Temp Errors, Heating Watch, etc.
  1578. TERN_(HAS_HEATED_CHAMBER, manage_heated_chamber(ms));
  1579. // Handle Cooler Temp Errors, Cooling Watch, etc.
  1580. TERN_(HAS_COOLER, manage_cooler(ms));
  1581. #if ENABLED(LASER_COOLANT_FLOW_METER)
  1582. cooler.flowmeter_task(ms);
  1583. #if ENABLED(FLOWMETER_SAFETY)
  1584. if (cooler.check_flow_too_low()) {
  1585. TERN_(HAS_DISPLAY, if (cutter.enabled()) ui.flow_fault());
  1586. cutter.disable();
  1587. cutter.cutter_mode = CUTTER_MODE_ERROR; // Immediately kill stepper inline power output
  1588. }
  1589. #endif
  1590. #endif
  1591. UNUSED(ms);
  1592. }
  1593. #define TEMP_AD595(RAW) ((RAW) * 5.0 * 100.0 / float(HAL_ADC_RANGE) / (OVERSAMPLENR) * (TEMP_SENSOR_AD595_GAIN) + TEMP_SENSOR_AD595_OFFSET)
  1594. #define TEMP_AD8495(RAW) ((RAW) * 6.6 * 100.0 / float(HAL_ADC_RANGE) / (OVERSAMPLENR) * (TEMP_SENSOR_AD8495_GAIN) + TEMP_SENSOR_AD8495_OFFSET)
  1595. /**
  1596. * Bisect search for the range of the 'raw' value, then interpolate
  1597. * proportionally between the under and over values.
  1598. */
  1599. #define SCAN_THERMISTOR_TABLE(TBL,LEN) do{ \
  1600. uint8_t l = 0, r = LEN, m; \
  1601. for (;;) { \
  1602. m = (l + r) >> 1; \
  1603. if (!m) return celsius_t(pgm_read_word(&TBL[0].celsius)); \
  1604. if (m == l || m == r) return celsius_t(pgm_read_word(&TBL[LEN-1].celsius)); \
  1605. raw_adc_t v00 = pgm_read_word(&TBL[m-1].value), \
  1606. v10 = pgm_read_word(&TBL[m-0].value); \
  1607. if (raw < v00) r = m; \
  1608. else if (raw > v10) l = m; \
  1609. else { \
  1610. const celsius_t v01 = celsius_t(pgm_read_word(&TBL[m-1].celsius)), \
  1611. v11 = celsius_t(pgm_read_word(&TBL[m-0].celsius)); \
  1612. return v01 + (raw - v00) * float(v11 - v01) / float(v10 - v00); \
  1613. } \
  1614. } \
  1615. }while(0)
  1616. #if HAS_USER_THERMISTORS
  1617. user_thermistor_t Temperature::user_thermistor[USER_THERMISTORS]; // Initialized by settings.load()
  1618. void Temperature::reset_user_thermistors() {
  1619. user_thermistor_t default_user_thermistor[USER_THERMISTORS] = {
  1620. #if TEMP_SENSOR_0_IS_CUSTOM
  1621. { true, HOTEND0_SH_C_COEFF, 0, HOTEND0_PULLUP_RESISTOR_OHMS, HOTEND0_RESISTANCE_25C_OHMS, 0, 0, HOTEND0_BETA, 0 },
  1622. #endif
  1623. #if TEMP_SENSOR_1_IS_CUSTOM
  1624. { true, HOTEND1_SH_C_COEFF, 0, HOTEND1_PULLUP_RESISTOR_OHMS, HOTEND1_RESISTANCE_25C_OHMS, 0, 0, HOTEND1_BETA, 0 },
  1625. #endif
  1626. #if TEMP_SENSOR_2_IS_CUSTOM
  1627. { true, HOTEND2_SH_C_COEFF, 0, HOTEND2_PULLUP_RESISTOR_OHMS, HOTEND2_RESISTANCE_25C_OHMS, 0, 0, HOTEND2_BETA, 0 },
  1628. #endif
  1629. #if TEMP_SENSOR_3_IS_CUSTOM
  1630. { true, HOTEND3_SH_C_COEFF, 0, HOTEND3_PULLUP_RESISTOR_OHMS, HOTEND3_RESISTANCE_25C_OHMS, 0, 0, HOTEND3_BETA, 0 },
  1631. #endif
  1632. #if TEMP_SENSOR_4_IS_CUSTOM
  1633. { true, HOTEND4_SH_C_COEFF, 0, HOTEND4_PULLUP_RESISTOR_OHMS, HOTEND4_RESISTANCE_25C_OHMS, 0, 0, HOTEND4_BETA, 0 },
  1634. #endif
  1635. #if TEMP_SENSOR_5_IS_CUSTOM
  1636. { true, HOTEND5_SH_C_COEFF, 0, HOTEND5_PULLUP_RESISTOR_OHMS, HOTEND5_RESISTANCE_25C_OHMS, 0, 0, HOTEND5_BETA, 0 },
  1637. #endif
  1638. #if TEMP_SENSOR_6_IS_CUSTOM
  1639. { true, HOTEND6_SH_C_COEFF, 0, HOTEND6_PULLUP_RESISTOR_OHMS, HOTEND6_RESISTANCE_25C_OHMS, 0, 0, HOTEND6_BETA, 0 },
  1640. #endif
  1641. #if TEMP_SENSOR_7_IS_CUSTOM
  1642. { true, HOTEND7_SH_C_COEFF, 0, HOTEND7_PULLUP_RESISTOR_OHMS, HOTEND7_RESISTANCE_25C_OHMS, 0, 0, HOTEND7_BETA, 0 },
  1643. #endif
  1644. #if TEMP_SENSOR_BED_IS_CUSTOM
  1645. { true, BED_SH_C_COEFF, 0, BED_PULLUP_RESISTOR_OHMS, BED_RESISTANCE_25C_OHMS, 0, 0, BED_BETA, 0 },
  1646. #endif
  1647. #if TEMP_SENSOR_CHAMBER_IS_CUSTOM
  1648. { true, CHAMBER_SH_C_COEFF, 0, CHAMBER_PULLUP_RESISTOR_OHMS, CHAMBER_RESISTANCE_25C_OHMS, 0, 0, CHAMBER_BETA, 0 },
  1649. #endif
  1650. #if TEMP_SENSOR_COOLER_IS_CUSTOM
  1651. { true, COOLER_SH_C_COEFF, 0, COOLER_PULLUP_RESISTOR_OHMS, COOLER_RESISTANCE_25C_OHMS, 0, 0, COOLER_BETA, 0 },
  1652. #endif
  1653. #if TEMP_SENSOR_PROBE_IS_CUSTOM
  1654. { true, PROBE_SH_C_COEFF, 0, PROBE_PULLUP_RESISTOR_OHMS, PROBE_RESISTANCE_25C_OHMS, 0, 0, PROBE_BETA, 0 },
  1655. #endif
  1656. #if TEMP_SENSOR_BOARD_IS_CUSTOM
  1657. { true, BOARD_SH_C_COEFF, 0, BOARD_PULLUP_RESISTOR_OHMS, BOARD_RESISTANCE_25C_OHMS, 0, 0, BOARD_BETA, 0 },
  1658. #endif
  1659. #if TEMP_SENSOR_REDUNDANT_IS_CUSTOM
  1660. { true, REDUNDANT_SH_C_COEFF, 0, REDUNDANT_PULLUP_RESISTOR_OHMS, REDUNDANT_RESISTANCE_25C_OHMS, 0, 0, REDUNDANT_BETA, 0 },
  1661. #endif
  1662. };
  1663. COPY(user_thermistor, default_user_thermistor);
  1664. }
  1665. void Temperature::M305_report(const uint8_t t_index, const bool forReplay/*=true*/) {
  1666. gcode.report_heading_etc(forReplay, F(STR_USER_THERMISTORS));
  1667. SERIAL_ECHOPGM(" M305 P", AS_DIGIT(t_index));
  1668. const user_thermistor_t &t = user_thermistor[t_index];
  1669. SERIAL_ECHOPAIR_F(" R", t.series_res, 1);
  1670. SERIAL_ECHOPAIR_F_P(SP_T_STR, t.res_25, 1);
  1671. SERIAL_ECHOPAIR_F_P(SP_B_STR, t.beta, 1);
  1672. SERIAL_ECHOPAIR_F_P(SP_C_STR, t.sh_c_coeff, 9);
  1673. SERIAL_ECHOPGM(" ; ");
  1674. SERIAL_ECHOF(
  1675. TERN_(TEMP_SENSOR_0_IS_CUSTOM, t_index == CTI_HOTEND_0 ? F("HOTEND 0") :)
  1676. TERN_(TEMP_SENSOR_1_IS_CUSTOM, t_index == CTI_HOTEND_1 ? F("HOTEND 1") :)
  1677. TERN_(TEMP_SENSOR_2_IS_CUSTOM, t_index == CTI_HOTEND_2 ? F("HOTEND 2") :)
  1678. TERN_(TEMP_SENSOR_3_IS_CUSTOM, t_index == CTI_HOTEND_3 ? F("HOTEND 3") :)
  1679. TERN_(TEMP_SENSOR_4_IS_CUSTOM, t_index == CTI_HOTEND_4 ? F("HOTEND 4") :)
  1680. TERN_(TEMP_SENSOR_5_IS_CUSTOM, t_index == CTI_HOTEND_5 ? F("HOTEND 5") :)
  1681. TERN_(TEMP_SENSOR_6_IS_CUSTOM, t_index == CTI_HOTEND_6 ? F("HOTEND 6") :)
  1682. TERN_(TEMP_SENSOR_7_IS_CUSTOM, t_index == CTI_HOTEND_7 ? F("HOTEND 7") :)
  1683. TERN_(TEMP_SENSOR_BED_IS_CUSTOM, t_index == CTI_BED ? F("BED") :)
  1684. TERN_(TEMP_SENSOR_CHAMBER_IS_CUSTOM, t_index == CTI_CHAMBER ? F("CHAMBER") :)
  1685. TERN_(TEMP_SENSOR_COOLER_IS_CUSTOM, t_index == CTI_COOLER ? F("COOLER") :)
  1686. TERN_(TEMP_SENSOR_PROBE_IS_CUSTOM, t_index == CTI_PROBE ? F("PROBE") :)
  1687. TERN_(TEMP_SENSOR_BOARD_IS_CUSTOM, t_index == CTI_BOARD ? F("BOARD") :)
  1688. TERN_(TEMP_SENSOR_REDUNDANT_IS_CUSTOM, t_index == CTI_REDUNDANT ? F("REDUNDANT") :)
  1689. nullptr
  1690. );
  1691. SERIAL_EOL();
  1692. }
  1693. celsius_float_t Temperature::user_thermistor_to_deg_c(const uint8_t t_index, const raw_adc_t raw) {
  1694. if (!WITHIN(t_index, 0, COUNT(user_thermistor) - 1)) return 25;
  1695. user_thermistor_t &t = user_thermistor[t_index];
  1696. if (t.pre_calc) { // pre-calculate some variables
  1697. t.pre_calc = false;
  1698. t.res_25_recip = 1.0f / t.res_25;
  1699. t.res_25_log = logf(t.res_25);
  1700. t.beta_recip = 1.0f / t.beta;
  1701. t.sh_alpha = RECIPROCAL(THERMISTOR_RESISTANCE_NOMINAL_C - (THERMISTOR_ABS_ZERO_C))
  1702. - (t.beta_recip * t.res_25_log) - (t.sh_c_coeff * cu(t.res_25_log));
  1703. }
  1704. // Maximum ADC value .. take into account the over sampling
  1705. constexpr raw_adc_t adc_max = MAX_RAW_THERMISTOR_VALUE;
  1706. const raw_adc_t adc_raw = constrain(raw, 1, adc_max - 1); // constrain to prevent divide-by-zero
  1707. const float adc_inverse = (adc_max - adc_raw) - 0.5f,
  1708. resistance = t.series_res * (adc_raw + 0.5f) / adc_inverse,
  1709. log_resistance = logf(resistance);
  1710. float value = t.sh_alpha;
  1711. value += log_resistance * t.beta_recip;
  1712. if (t.sh_c_coeff != 0)
  1713. value += t.sh_c_coeff * cu(log_resistance);
  1714. value = 1.0f / value;
  1715. // Return degrees C (up to 999, as the LCD only displays 3 digits)
  1716. return _MIN(value + THERMISTOR_ABS_ZERO_C, 999);
  1717. }
  1718. #endif
  1719. #if HAS_HOTEND
  1720. // Derived from RepRap FiveD extruder::getTemperature()
  1721. // For hot end temperature measurement.
  1722. celsius_float_t Temperature::analog_to_celsius_hotend(const raw_adc_t raw, const uint8_t e) {
  1723. if (e >= HOTENDS) {
  1724. SERIAL_ERROR_START();
  1725. SERIAL_ECHO(e);
  1726. SERIAL_ECHOLNPGM(STR_INVALID_EXTRUDER_NUM);
  1727. kill();
  1728. return 0;
  1729. }
  1730. switch (e) {
  1731. case 0:
  1732. #if TEMP_SENSOR_0_IS_CUSTOM
  1733. return user_thermistor_to_deg_c(CTI_HOTEND_0, raw);
  1734. #elif TEMP_SENSOR_IS_MAX_TC(0)
  1735. #if TEMP_SENSOR_0_IS_MAX31865
  1736. return TERN(LIB_INTERNAL_MAX31865,
  1737. max31865_0.temperature(raw),
  1738. max31865_0.temperature(MAX31865_SENSOR_OHMS_0, MAX31865_CALIBRATION_OHMS_0)
  1739. );
  1740. #else
  1741. return (int16_t)raw * 0.25;
  1742. #endif
  1743. #elif TEMP_SENSOR_0_IS_AD595
  1744. return TEMP_AD595(raw);
  1745. #elif TEMP_SENSOR_0_IS_AD8495
  1746. return TEMP_AD8495(raw);
  1747. #else
  1748. break;
  1749. #endif
  1750. case 1:
  1751. #if TEMP_SENSOR_1_IS_CUSTOM
  1752. return user_thermistor_to_deg_c(CTI_HOTEND_1, raw);
  1753. #elif TEMP_SENSOR_IS_MAX_TC(1)
  1754. #if TEMP_SENSOR_0_IS_MAX31865
  1755. return TERN(LIB_INTERNAL_MAX31865,
  1756. max31865_1.temperature(raw),
  1757. max31865_1.temperature(MAX31865_SENSOR_OHMS_1, MAX31865_CALIBRATION_OHMS_1)
  1758. );
  1759. #else
  1760. return (int16_t)raw * 0.25;
  1761. #endif
  1762. #elif TEMP_SENSOR_1_IS_AD595
  1763. return TEMP_AD595(raw);
  1764. #elif TEMP_SENSOR_1_IS_AD8495
  1765. return TEMP_AD8495(raw);
  1766. #else
  1767. break;
  1768. #endif
  1769. case 2:
  1770. #if TEMP_SENSOR_2_IS_CUSTOM
  1771. return user_thermistor_to_deg_c(CTI_HOTEND_2, raw);
  1772. #elif TEMP_SENSOR_2_IS_AD595
  1773. return TEMP_AD595(raw);
  1774. #elif TEMP_SENSOR_2_IS_AD8495
  1775. return TEMP_AD8495(raw);
  1776. #else
  1777. break;
  1778. #endif
  1779. case 3:
  1780. #if TEMP_SENSOR_3_IS_CUSTOM
  1781. return user_thermistor_to_deg_c(CTI_HOTEND_3, raw);
  1782. #elif TEMP_SENSOR_3_IS_AD595
  1783. return TEMP_AD595(raw);
  1784. #elif TEMP_SENSOR_3_IS_AD8495
  1785. return TEMP_AD8495(raw);
  1786. #else
  1787. break;
  1788. #endif
  1789. case 4:
  1790. #if TEMP_SENSOR_4_IS_CUSTOM
  1791. return user_thermistor_to_deg_c(CTI_HOTEND_4, raw);
  1792. #elif TEMP_SENSOR_4_IS_AD595
  1793. return TEMP_AD595(raw);
  1794. #elif TEMP_SENSOR_4_IS_AD8495
  1795. return TEMP_AD8495(raw);
  1796. #else
  1797. break;
  1798. #endif
  1799. case 5:
  1800. #if TEMP_SENSOR_5_IS_CUSTOM
  1801. return user_thermistor_to_deg_c(CTI_HOTEND_5, raw);
  1802. #elif TEMP_SENSOR_5_IS_AD595
  1803. return TEMP_AD595(raw);
  1804. #elif TEMP_SENSOR_5_IS_AD8495
  1805. return TEMP_AD8495(raw);
  1806. #else
  1807. break;
  1808. #endif
  1809. case 6:
  1810. #if TEMP_SENSOR_6_IS_CUSTOM
  1811. return user_thermistor_to_deg_c(CTI_HOTEND_6, raw);
  1812. #elif TEMP_SENSOR_6_IS_AD595
  1813. return TEMP_AD595(raw);
  1814. #elif TEMP_SENSOR_6_IS_AD8495
  1815. return TEMP_AD8495(raw);
  1816. #else
  1817. break;
  1818. #endif
  1819. case 7:
  1820. #if TEMP_SENSOR_7_IS_CUSTOM
  1821. return user_thermistor_to_deg_c(CTI_HOTEND_7, raw);
  1822. #elif TEMP_SENSOR_7_IS_AD595
  1823. return TEMP_AD595(raw);
  1824. #elif TEMP_SENSOR_7_IS_AD8495
  1825. return TEMP_AD8495(raw);
  1826. #else
  1827. break;
  1828. #endif
  1829. default: break;
  1830. }
  1831. #if HAS_HOTEND_THERMISTOR
  1832. // Thermistor with conversion table?
  1833. const temp_entry_t(*tt)[] = (temp_entry_t(*)[])(heater_ttbl_map[e]);
  1834. SCAN_THERMISTOR_TABLE((*tt), heater_ttbllen_map[e]);
  1835. #endif
  1836. return 0;
  1837. }
  1838. #endif // HAS_HOTEND
  1839. #if HAS_HEATED_BED
  1840. // For bed temperature measurement.
  1841. celsius_float_t Temperature::analog_to_celsius_bed(const raw_adc_t raw) {
  1842. #if TEMP_SENSOR_BED_IS_CUSTOM
  1843. return user_thermistor_to_deg_c(CTI_BED, raw);
  1844. #elif TEMP_SENSOR_BED_IS_THERMISTOR
  1845. SCAN_THERMISTOR_TABLE(TEMPTABLE_BED, TEMPTABLE_BED_LEN);
  1846. #elif TEMP_SENSOR_BED_IS_AD595
  1847. return TEMP_AD595(raw);
  1848. #elif TEMP_SENSOR_BED_IS_AD8495
  1849. return TEMP_AD8495(raw);
  1850. #else
  1851. UNUSED(raw);
  1852. return 0;
  1853. #endif
  1854. }
  1855. #endif // HAS_HEATED_BED
  1856. #if HAS_TEMP_CHAMBER
  1857. // For chamber temperature measurement.
  1858. celsius_float_t Temperature::analog_to_celsius_chamber(const raw_adc_t raw) {
  1859. #if TEMP_SENSOR_CHAMBER_IS_CUSTOM
  1860. return user_thermistor_to_deg_c(CTI_CHAMBER, raw);
  1861. #elif TEMP_SENSOR_CHAMBER_IS_THERMISTOR
  1862. SCAN_THERMISTOR_TABLE(TEMPTABLE_CHAMBER, TEMPTABLE_CHAMBER_LEN);
  1863. #elif TEMP_SENSOR_CHAMBER_IS_AD595
  1864. return TEMP_AD595(raw);
  1865. #elif TEMP_SENSOR_CHAMBER_IS_AD8495
  1866. return TEMP_AD8495(raw);
  1867. #else
  1868. UNUSED(raw);
  1869. return 0;
  1870. #endif
  1871. }
  1872. #endif // HAS_TEMP_CHAMBER
  1873. #if HAS_TEMP_COOLER
  1874. // For cooler temperature measurement.
  1875. celsius_float_t Temperature::analog_to_celsius_cooler(const raw_adc_t raw) {
  1876. #if TEMP_SENSOR_COOLER_IS_CUSTOM
  1877. return user_thermistor_to_deg_c(CTI_COOLER, raw);
  1878. #elif TEMP_SENSOR_COOLER_IS_THERMISTOR
  1879. SCAN_THERMISTOR_TABLE(TEMPTABLE_COOLER, TEMPTABLE_COOLER_LEN);
  1880. #elif TEMP_SENSOR_COOLER_IS_AD595
  1881. return TEMP_AD595(raw);
  1882. #elif TEMP_SENSOR_COOLER_IS_AD8495
  1883. return TEMP_AD8495(raw);
  1884. #else
  1885. UNUSED(raw);
  1886. return 0;
  1887. #endif
  1888. }
  1889. #endif // HAS_TEMP_COOLER
  1890. #if HAS_TEMP_PROBE
  1891. // For probe temperature measurement.
  1892. celsius_float_t Temperature::analog_to_celsius_probe(const raw_adc_t raw) {
  1893. #if TEMP_SENSOR_PROBE_IS_CUSTOM
  1894. return user_thermistor_to_deg_c(CTI_PROBE, raw);
  1895. #elif TEMP_SENSOR_PROBE_IS_THERMISTOR
  1896. SCAN_THERMISTOR_TABLE(TEMPTABLE_PROBE, TEMPTABLE_PROBE_LEN);
  1897. #elif TEMP_SENSOR_PROBE_IS_AD595
  1898. return TEMP_AD595(raw);
  1899. #elif TEMP_SENSOR_PROBE_IS_AD8495
  1900. return TEMP_AD8495(raw);
  1901. #else
  1902. UNUSED(raw);
  1903. return 0;
  1904. #endif
  1905. }
  1906. #endif // HAS_TEMP_PROBE
  1907. #if HAS_TEMP_BOARD
  1908. // For motherboard temperature measurement.
  1909. celsius_float_t Temperature::analog_to_celsius_board(const raw_adc_t raw) {
  1910. #if TEMP_SENSOR_BOARD_IS_CUSTOM
  1911. return user_thermistor_to_deg_c(CTI_BOARD, raw);
  1912. #elif TEMP_SENSOR_BOARD_IS_THERMISTOR
  1913. SCAN_THERMISTOR_TABLE(TEMPTABLE_BOARD, TEMPTABLE_BOARD_LEN);
  1914. #elif TEMP_SENSOR_BOARD_IS_AD595
  1915. return TEMP_AD595(raw);
  1916. #elif TEMP_SENSOR_BOARD_IS_AD8495
  1917. return TEMP_AD8495(raw);
  1918. #else
  1919. UNUSED(raw);
  1920. return 0;
  1921. #endif
  1922. }
  1923. #endif // HAS_TEMP_BOARD
  1924. #if HAS_TEMP_REDUNDANT
  1925. // For redundant temperature measurement.
  1926. celsius_float_t Temperature::analog_to_celsius_redundant(const raw_adc_t raw) {
  1927. #if TEMP_SENSOR_REDUNDANT_IS_CUSTOM
  1928. return user_thermistor_to_deg_c(CTI_REDUNDANT, raw);
  1929. #elif TEMP_SENSOR_IS_MAX_TC(REDUNDANT) && REDUNDANT_TEMP_MATCH(SOURCE, E0)
  1930. return TERN(TEMP_SENSOR_REDUNDANT_IS_MAX31865, max31865_0.temperature(raw), (int16_t)raw * 0.25);
  1931. #elif TEMP_SENSOR_IS_MAX_TC(REDUNDANT) && REDUNDANT_TEMP_MATCH(SOURCE, E1)
  1932. return TERN(TEMP_SENSOR_REDUNDANT_IS_MAX31865, max31865_1.temperature(raw), (int16_t)raw * 0.25);
  1933. #elif TEMP_SENSOR_REDUNDANT_IS_THERMISTOR
  1934. SCAN_THERMISTOR_TABLE(TEMPTABLE_REDUNDANT, TEMPTABLE_REDUNDANT_LEN);
  1935. #elif TEMP_SENSOR_REDUNDANT_IS_AD595
  1936. return TEMP_AD595(raw);
  1937. #elif TEMP_SENSOR_REDUNDANT_IS_AD8495
  1938. return TEMP_AD8495(raw);
  1939. #else
  1940. UNUSED(raw);
  1941. return 0;
  1942. #endif
  1943. }
  1944. #endif // HAS_TEMP_REDUNDANT
  1945. /**
  1946. * Convert the raw sensor readings into actual Celsius temperatures and
  1947. * validate raw temperatures. Bad readings generate min/maxtemp errors.
  1948. *
  1949. * The raw values are generated entirely in interrupt context, and this
  1950. * method is called from normal context once 'raw_temps_ready' has been
  1951. * set by update_raw_temperatures().
  1952. *
  1953. * The watchdog is dependent on this method. If 'raw_temps_ready' stops
  1954. * being set by the interrupt so that this method is not called for over
  1955. * 4 seconds then something has gone afoul and the machine will be reset.
  1956. */
  1957. void Temperature::updateTemperaturesFromRawValues() {
  1958. hal.watchdog_refresh(); // Reset because raw_temps_ready was set by the interrupt
  1959. #if TEMP_SENSOR_IS_MAX_TC(0)
  1960. temp_hotend[0].setraw(READ_MAX_TC(0));
  1961. #endif
  1962. #if TEMP_SENSOR_IS_MAX_TC(1)
  1963. temp_hotend[1].setraw(READ_MAX_TC(1));
  1964. #endif
  1965. #if TEMP_SENSOR_IS_MAX_TC(REDUNDANT)
  1966. temp_redundant.setraw(READ_MAX_TC(HEATER_ID(TEMP_SENSOR_REDUNDANT_SOURCE)));
  1967. #endif
  1968. #if HAS_HOTEND
  1969. HOTEND_LOOP() temp_hotend[e].celsius = analog_to_celsius_hotend(temp_hotend[e].getraw(), e);
  1970. #endif
  1971. TERN_(HAS_HEATED_BED, temp_bed.celsius = analog_to_celsius_bed(temp_bed.getraw()));
  1972. TERN_(HAS_TEMP_CHAMBER, temp_chamber.celsius = analog_to_celsius_chamber(temp_chamber.getraw()));
  1973. TERN_(HAS_TEMP_COOLER, temp_cooler.celsius = analog_to_celsius_cooler(temp_cooler.getraw()));
  1974. TERN_(HAS_TEMP_PROBE, temp_probe.celsius = analog_to_celsius_probe(temp_probe.getraw()));
  1975. TERN_(HAS_TEMP_BOARD, temp_board.celsius = analog_to_celsius_board(temp_board.getraw()));
  1976. TERN_(HAS_TEMP_REDUNDANT, temp_redundant.celsius = analog_to_celsius_redundant(temp_redundant.getraw()));
  1977. TERN_(FILAMENT_WIDTH_SENSOR, filwidth.update_measured_mm());
  1978. TERN_(HAS_POWER_MONITOR, power_monitor.capture_values());
  1979. #if HAS_HOTEND
  1980. static constexpr int8_t temp_dir[] = {
  1981. #if TEMP_SENSOR_IS_ANY_MAX_TC(0)
  1982. 0
  1983. #else
  1984. TEMPDIR(0)
  1985. #endif
  1986. #if HAS_MULTI_HOTEND
  1987. #if TEMP_SENSOR_IS_ANY_MAX_TC(1)
  1988. , 0
  1989. #else
  1990. , TEMPDIR(1)
  1991. #endif
  1992. #if HOTENDS > 2
  1993. #define _TEMPDIR(N) , TEMPDIR(N)
  1994. REPEAT_S(2, HOTENDS, _TEMPDIR)
  1995. #endif
  1996. #endif
  1997. };
  1998. LOOP_L_N(e, COUNT(temp_dir)) {
  1999. const raw_adc_t r = temp_hotend[e].getraw();
  2000. const bool neg = temp_dir[e] < 0, pos = temp_dir[e] > 0;
  2001. if ((neg && r < temp_range[e].raw_max) || (pos && r > temp_range[e].raw_max))
  2002. max_temp_error((heater_id_t)e);
  2003. const bool heater_on = temp_hotend[e].target > 0;
  2004. if (heater_on && ((neg && r > temp_range[e].raw_min) || (pos && r < temp_range[e].raw_min))) {
  2005. #if MAX_CONSECUTIVE_LOW_TEMPERATURE_ERROR_ALLOWED > 1
  2006. if (++consecutive_low_temperature_error[e] >= MAX_CONSECUTIVE_LOW_TEMPERATURE_ERROR_ALLOWED)
  2007. #endif
  2008. min_temp_error((heater_id_t)e);
  2009. }
  2010. #if MAX_CONSECUTIVE_LOW_TEMPERATURE_ERROR_ALLOWED > 1
  2011. else
  2012. consecutive_low_temperature_error[e] = 0;
  2013. #endif
  2014. }
  2015. #endif // HAS_HOTEND
  2016. #define TP_CMP(S,A,B) (TEMPDIR(S) < 0 ? ((A)<(B)) : ((A)>(B)))
  2017. #if ENABLED(THERMAL_PROTECTION_BED)
  2018. if (TP_CMP(BED, temp_bed.getraw(), maxtemp_raw_BED)) max_temp_error(H_BED);
  2019. if (temp_bed.target > 0 && TP_CMP(BED, mintemp_raw_BED, temp_bed.getraw())) min_temp_error(H_BED);
  2020. #endif
  2021. #if BOTH(HAS_HEATED_CHAMBER, THERMAL_PROTECTION_CHAMBER)
  2022. if (TP_CMP(CHAMBER, temp_chamber.getraw(), maxtemp_raw_CHAMBER)) max_temp_error(H_CHAMBER);
  2023. if (temp_chamber.target > 0 && TP_CMP(CHAMBER, mintemp_raw_CHAMBER, temp_chamber.getraw())) min_temp_error(H_CHAMBER);
  2024. #endif
  2025. #if BOTH(HAS_COOLER, THERMAL_PROTECTION_COOLER)
  2026. if (cutter.unitPower > 0 && TP_CMP(COOLER, temp_cooler.getraw(), maxtemp_raw_COOLER)) max_temp_error(H_COOLER);
  2027. if (TP_CMP(COOLER, mintemp_raw_COOLER, temp_cooler.getraw())) min_temp_error(H_COOLER);
  2028. #endif
  2029. #if BOTH(HAS_TEMP_BOARD, THERMAL_PROTECTION_BOARD)
  2030. if (TP_CMP(BOARD, temp_board.getraw(), maxtemp_raw_BOARD)) max_temp_error(H_BOARD);
  2031. if (TP_CMP(BOARD, mintemp_raw_BOARD, temp_board.getraw())) min_temp_error(H_BOARD);
  2032. #endif
  2033. #undef TP_CMP
  2034. } // Temperature::updateTemperaturesFromRawValues
  2035. /**
  2036. * Initialize the temperature manager
  2037. *
  2038. * The manager is implemented by periodic calls to task()
  2039. *
  2040. * - Init (and disable) SPI thermocouples like MAX6675 and MAX31865
  2041. * - Disable RUMBA JTAG to accommodate a thermocouple extension
  2042. * - Read-enable thermistors with a read-enable pin
  2043. * - Init HEATER and COOLER pins for OUTPUT in OFF state
  2044. * - Init the FAN pins as PWM or OUTPUT
  2045. * - Init the SPI interface for SPI thermocouples
  2046. * - Init ADC according to the HAL
  2047. * - Set thermistor pins to analog inputs according to the HAL
  2048. * - Start the Temperature ISR timer
  2049. * - Init the AUTO FAN pins as PWM or OUTPUT
  2050. * - Wait 250ms for temperatures to settle
  2051. * - Init temp_range[], used for catching min/maxtemp
  2052. */
  2053. void Temperature::init() {
  2054. TERN_(PROBING_HEATERS_OFF, paused_for_probing = false);
  2055. #if BOTH(PIDTEMP, PID_EXTRUSION_SCALING)
  2056. pes_e_position = 0;
  2057. #endif
  2058. // Init (and disable) SPI thermocouples
  2059. #if TEMP_SENSOR_IS_ANY_MAX_TC(0) && PIN_EXISTS(TEMP_0_CS)
  2060. OUT_WRITE(TEMP_0_CS_PIN, HIGH);
  2061. #endif
  2062. #if TEMP_SENSOR_IS_ANY_MAX_TC(1) && PIN_EXISTS(TEMP_1_CS)
  2063. OUT_WRITE(TEMP_1_CS_PIN, HIGH);
  2064. #endif
  2065. // Setup objects for library-based polling of MAX TCs
  2066. #if HAS_MAXTC_LIBRARIES
  2067. #define _MAX31865_WIRES(n) MAX31865_##n##WIRE
  2068. #define MAX31865_WIRES(n) _MAX31865_WIRES(n)
  2069. #if TEMP_SENSOR_IS_MAX(0, 6675) && HAS_MAX6675_LIBRARY
  2070. max6675_0.begin();
  2071. #elif TEMP_SENSOR_IS_MAX(0, 31855) && HAS_MAX31855_LIBRARY
  2072. max31855_0.begin();
  2073. #elif TEMP_SENSOR_IS_MAX(0, 31865)
  2074. max31865_0.begin(
  2075. MAX31865_WIRES(MAX31865_SENSOR_WIRES_0) // MAX31865_2WIRE, MAX31865_3WIRE, MAX31865_4WIRE
  2076. OPTARG(LIB_INTERNAL_MAX31865, MAX31865_SENSOR_OHMS_0, MAX31865_CALIBRATION_OHMS_0, MAX31865_WIRE_OHMS_0)
  2077. );
  2078. #endif
  2079. #if TEMP_SENSOR_IS_MAX(1, 6675) && HAS_MAX6675_LIBRARY
  2080. max6675_1.begin();
  2081. #elif TEMP_SENSOR_IS_MAX(1, 31855) && HAS_MAX31855_LIBRARY
  2082. max31855_1.begin();
  2083. #elif TEMP_SENSOR_IS_MAX(1, 31865)
  2084. max31865_1.begin(
  2085. MAX31865_WIRES(MAX31865_SENSOR_WIRES_1) // MAX31865_2WIRE, MAX31865_3WIRE, MAX31865_4WIRE
  2086. OPTARG(LIB_INTERNAL_MAX31865, MAX31865_SENSOR_OHMS_1, MAX31865_CALIBRATION_OHMS_1, MAX31865_WIRE_OHMS_1)
  2087. );
  2088. #endif
  2089. #undef MAX31865_WIRES
  2090. #undef _MAX31865_WIRES
  2091. #endif
  2092. #if MB(RUMBA)
  2093. // Disable RUMBA JTAG in case the thermocouple extension is plugged on top of JTAG connector
  2094. #define _AD(N) (TEMP_SENSOR_##N##_IS_AD595 || TEMP_SENSOR_##N##_IS_AD8495)
  2095. #if _AD(0) || _AD(1) || _AD(2) || _AD(BED) || _AD(CHAMBER) || _AD(REDUNDANT)
  2096. MCUCR = _BV(JTD);
  2097. MCUCR = _BV(JTD);
  2098. #endif
  2099. #endif
  2100. // Thermistor activation by MCU pin
  2101. #if PIN_EXISTS(TEMP_0_TR_ENABLE)
  2102. OUT_WRITE(TEMP_0_TR_ENABLE_PIN, (
  2103. #if TEMP_SENSOR_IS_ANY_MAX_TC(0)
  2104. HIGH
  2105. #else
  2106. LOW
  2107. #endif
  2108. ));
  2109. #endif
  2110. #if PIN_EXISTS(TEMP_1_TR_ENABLE)
  2111. OUT_WRITE(TEMP_1_TR_ENABLE_PIN, (
  2112. #if TEMP_SENSOR_IS_ANY_MAX_TC(1)
  2113. HIGH
  2114. #else
  2115. LOW
  2116. #endif
  2117. ));
  2118. #endif
  2119. #if ENABLED(MPCTEMP)
  2120. HOTEND_LOOP() temp_hotend[e].modeled_block_temp = NAN;
  2121. #endif
  2122. #if HAS_HEATER_0
  2123. #ifdef BOARD_OPENDRAIN_MOSFETS
  2124. OUT_WRITE_OD(HEATER_0_PIN, HEATER_0_INVERTING);
  2125. #else
  2126. OUT_WRITE(HEATER_0_PIN, HEATER_0_INVERTING);
  2127. #endif
  2128. #endif
  2129. #if HAS_HEATER_1
  2130. OUT_WRITE(HEATER_1_PIN, HEATER_1_INVERTING);
  2131. #endif
  2132. #if HAS_HEATER_2
  2133. OUT_WRITE(HEATER_2_PIN, HEATER_2_INVERTING);
  2134. #endif
  2135. #if HAS_HEATER_3
  2136. OUT_WRITE(HEATER_3_PIN, HEATER_3_INVERTING);
  2137. #endif
  2138. #if HAS_HEATER_4
  2139. OUT_WRITE(HEATER_4_PIN, HEATER_4_INVERTING);
  2140. #endif
  2141. #if HAS_HEATER_5
  2142. OUT_WRITE(HEATER_5_PIN, HEATER_5_INVERTING);
  2143. #endif
  2144. #if HAS_HEATER_6
  2145. OUT_WRITE(HEATER_6_PIN, HEATER_6_INVERTING);
  2146. #endif
  2147. #if HAS_HEATER_7
  2148. OUT_WRITE(HEATER_7_PIN, HEATER_7_INVERTING);
  2149. #endif
  2150. #if HAS_HEATED_BED
  2151. #ifdef BOARD_OPENDRAIN_MOSFETS
  2152. OUT_WRITE_OD(HEATER_BED_PIN, HEATER_BED_INVERTING);
  2153. #else
  2154. OUT_WRITE(HEATER_BED_PIN, HEATER_BED_INVERTING);
  2155. #endif
  2156. #endif
  2157. #if HAS_HEATED_CHAMBER
  2158. OUT_WRITE(HEATER_CHAMBER_PIN, HEATER_CHAMBER_INVERTING);
  2159. #endif
  2160. #if HAS_COOLER
  2161. OUT_WRITE(COOLER_PIN, COOLER_INVERTING);
  2162. #endif
  2163. #if HAS_FAN0
  2164. INIT_FAN_PIN(FAN_PIN);
  2165. #endif
  2166. #if HAS_FAN1
  2167. INIT_FAN_PIN(FAN1_PIN);
  2168. #endif
  2169. #if HAS_FAN2
  2170. INIT_FAN_PIN(FAN2_PIN);
  2171. #endif
  2172. #if HAS_FAN3
  2173. INIT_FAN_PIN(FAN3_PIN);
  2174. #endif
  2175. #if HAS_FAN4
  2176. INIT_FAN_PIN(FAN4_PIN);
  2177. #endif
  2178. #if HAS_FAN5
  2179. INIT_FAN_PIN(FAN5_PIN);
  2180. #endif
  2181. #if HAS_FAN6
  2182. INIT_FAN_PIN(FAN6_PIN);
  2183. #endif
  2184. #if HAS_FAN7
  2185. INIT_FAN_PIN(FAN7_PIN);
  2186. #endif
  2187. #if ENABLED(USE_CONTROLLER_FAN)
  2188. INIT_FAN_PIN(CONTROLLER_FAN_PIN);
  2189. #endif
  2190. TERN_(HAS_MAXTC_SW_SPI, max_tc_spi.init());
  2191. hal.adc_init();
  2192. TERN_(HAS_TEMP_ADC_0, hal.adc_enable(TEMP_0_PIN));
  2193. TERN_(HAS_TEMP_ADC_1, hal.adc_enable(TEMP_1_PIN));
  2194. TERN_(HAS_TEMP_ADC_2, hal.adc_enable(TEMP_2_PIN));
  2195. TERN_(HAS_TEMP_ADC_3, hal.adc_enable(TEMP_3_PIN));
  2196. TERN_(HAS_TEMP_ADC_4, hal.adc_enable(TEMP_4_PIN));
  2197. TERN_(HAS_TEMP_ADC_5, hal.adc_enable(TEMP_5_PIN));
  2198. TERN_(HAS_TEMP_ADC_6, hal.adc_enable(TEMP_6_PIN));
  2199. TERN_(HAS_TEMP_ADC_7, hal.adc_enable(TEMP_7_PIN));
  2200. TERN_(HAS_JOY_ADC_X, hal.adc_enable(JOY_X_PIN));
  2201. TERN_(HAS_JOY_ADC_Y, hal.adc_enable(JOY_Y_PIN));
  2202. TERN_(HAS_JOY_ADC_Z, hal.adc_enable(JOY_Z_PIN));
  2203. TERN_(HAS_TEMP_ADC_BED, hal.adc_enable(TEMP_BED_PIN));
  2204. TERN_(HAS_TEMP_ADC_CHAMBER, hal.adc_enable(TEMP_CHAMBER_PIN));
  2205. TERN_(HAS_TEMP_ADC_PROBE, hal.adc_enable(TEMP_PROBE_PIN));
  2206. TERN_(HAS_TEMP_ADC_COOLER, hal.adc_enable(TEMP_COOLER_PIN));
  2207. TERN_(HAS_TEMP_ADC_BOARD, hal.adc_enable(TEMP_BOARD_PIN));
  2208. TERN_(HAS_TEMP_ADC_REDUNDANT, hal.adc_enable(TEMP_REDUNDANT_PIN));
  2209. TERN_(FILAMENT_WIDTH_SENSOR, hal.adc_enable(FILWIDTH_PIN));
  2210. TERN_(HAS_ADC_BUTTONS, hal.adc_enable(ADC_KEYPAD_PIN));
  2211. TERN_(POWER_MONITOR_CURRENT, hal.adc_enable(POWER_MONITOR_CURRENT_PIN));
  2212. TERN_(POWER_MONITOR_VOLTAGE, hal.adc_enable(POWER_MONITOR_VOLTAGE_PIN));
  2213. #if HAS_JOY_ADC_EN
  2214. SET_INPUT_PULLUP(JOY_EN_PIN);
  2215. #endif
  2216. HAL_timer_start(MF_TIMER_TEMP, TEMP_TIMER_FREQUENCY);
  2217. ENABLE_TEMPERATURE_INTERRUPT();
  2218. #if HAS_AUTO_FAN_0
  2219. INIT_E_AUTO_FAN_PIN(E0_AUTO_FAN_PIN);
  2220. #endif
  2221. #if HAS_AUTO_FAN_1 && !_EFANOVERLAP(1,0)
  2222. INIT_E_AUTO_FAN_PIN(E1_AUTO_FAN_PIN);
  2223. #endif
  2224. #if HAS_AUTO_FAN_2 && !(_EFANOVERLAP(2,0) || _EFANOVERLAP(2,1))
  2225. INIT_E_AUTO_FAN_PIN(E2_AUTO_FAN_PIN);
  2226. #endif
  2227. #if HAS_AUTO_FAN_3 && !(_EFANOVERLAP(3,0) || _EFANOVERLAP(3,1) || _EFANOVERLAP(3,2))
  2228. INIT_E_AUTO_FAN_PIN(E3_AUTO_FAN_PIN);
  2229. #endif
  2230. #if HAS_AUTO_FAN_4 && !(_EFANOVERLAP(4,0) || _EFANOVERLAP(4,1) || _EFANOVERLAP(4,2) || _EFANOVERLAP(4,3))
  2231. INIT_E_AUTO_FAN_PIN(E4_AUTO_FAN_PIN);
  2232. #endif
  2233. #if HAS_AUTO_FAN_5 && !(_EFANOVERLAP(5,0) || _EFANOVERLAP(5,1) || _EFANOVERLAP(5,2) || _EFANOVERLAP(5,3) || _EFANOVERLAP(5,4))
  2234. INIT_E_AUTO_FAN_PIN(E5_AUTO_FAN_PIN);
  2235. #endif
  2236. #if HAS_AUTO_FAN_6 && !(_EFANOVERLAP(6,0) || _EFANOVERLAP(6,1) || _EFANOVERLAP(6,2) || _EFANOVERLAP(6,3) || _EFANOVERLAP(6,4) || _EFANOVERLAP(6,5))
  2237. INIT_E_AUTO_FAN_PIN(E6_AUTO_FAN_PIN);
  2238. #endif
  2239. #if HAS_AUTO_FAN_7 && !(_EFANOVERLAP(7,0) || _EFANOVERLAP(7,1) || _EFANOVERLAP(7,2) || _EFANOVERLAP(7,3) || _EFANOVERLAP(7,4) || _EFANOVERLAP(7,5) || _EFANOVERLAP(7,6))
  2240. INIT_E_AUTO_FAN_PIN(E7_AUTO_FAN_PIN);
  2241. #endif
  2242. #if HAS_AUTO_CHAMBER_FAN && !AUTO_CHAMBER_IS_E
  2243. INIT_CHAMBER_AUTO_FAN_PIN(CHAMBER_AUTO_FAN_PIN);
  2244. #endif
  2245. #if HAS_HOTEND
  2246. #define _TEMP_MIN_E(NR) do{ \
  2247. const celsius_t tmin_tmp = TERN(TEMP_SENSOR_##NR##_IS_CUSTOM, 0, int16_t(pgm_read_word(&TEMPTABLE_##NR [TEMP_SENSOR_##NR##_MINTEMP_IND].celsius))), \
  2248. tmin = _MAX(HEATER_##NR##_MINTEMP, tmin_tmp); \
  2249. temp_range[NR].mintemp = tmin; \
  2250. while (analog_to_celsius_hotend(temp_range[NR].raw_min, NR) < tmin) \
  2251. temp_range[NR].raw_min += TEMPDIR(NR) * (OVERSAMPLENR); \
  2252. }while(0)
  2253. #define _TEMP_MAX_E(NR) do{ \
  2254. const celsius_t tmax_tmp = TERN(TEMP_SENSOR_##NR##_IS_CUSTOM, 2000, int16_t(pgm_read_word(&TEMPTABLE_##NR [TEMP_SENSOR_##NR##_MAXTEMP_IND].celsius)) - 1), \
  2255. tmax = _MIN(HEATER_##NR##_MAXTEMP, tmax_tmp); \
  2256. temp_range[NR].maxtemp = tmax; \
  2257. while (analog_to_celsius_hotend(temp_range[NR].raw_max, NR) > tmax) \
  2258. temp_range[NR].raw_max -= TEMPDIR(NR) * (OVERSAMPLENR); \
  2259. }while(0)
  2260. #define _MINMAX_TEST(N,M) (HOTENDS > N && TEMP_SENSOR(N) > 0 && TEMP_SENSOR(N) != 998 && TEMP_SENSOR(N) != 999 && defined(HEATER_##N##_##M##TEMP))
  2261. #if _MINMAX_TEST(0, MIN)
  2262. _TEMP_MIN_E(0);
  2263. #endif
  2264. #if _MINMAX_TEST(0, MAX)
  2265. _TEMP_MAX_E(0);
  2266. #endif
  2267. #if _MINMAX_TEST(1, MIN)
  2268. _TEMP_MIN_E(1);
  2269. #endif
  2270. #if _MINMAX_TEST(1, MAX)
  2271. _TEMP_MAX_E(1);
  2272. #endif
  2273. #if _MINMAX_TEST(2, MIN)
  2274. _TEMP_MIN_E(2);
  2275. #endif
  2276. #if _MINMAX_TEST(2, MAX)
  2277. _TEMP_MAX_E(2);
  2278. #endif
  2279. #if _MINMAX_TEST(3, MIN)
  2280. _TEMP_MIN_E(3);
  2281. #endif
  2282. #if _MINMAX_TEST(3, MAX)
  2283. _TEMP_MAX_E(3);
  2284. #endif
  2285. #if _MINMAX_TEST(4, MIN)
  2286. _TEMP_MIN_E(4);
  2287. #endif
  2288. #if _MINMAX_TEST(4, MAX)
  2289. _TEMP_MAX_E(4);
  2290. #endif
  2291. #if _MINMAX_TEST(5, MIN)
  2292. _TEMP_MIN_E(5);
  2293. #endif
  2294. #if _MINMAX_TEST(5, MAX)
  2295. _TEMP_MAX_E(5);
  2296. #endif
  2297. #if _MINMAX_TEST(6, MIN)
  2298. _TEMP_MIN_E(6);
  2299. #endif
  2300. #if _MINMAX_TEST(6, MAX)
  2301. _TEMP_MAX_E(6);
  2302. #endif
  2303. #if _MINMAX_TEST(7, MIN)
  2304. _TEMP_MIN_E(7);
  2305. #endif
  2306. #if _MINMAX_TEST(7, MAX)
  2307. _TEMP_MAX_E(7);
  2308. #endif
  2309. #endif // HAS_HOTEND
  2310. // TODO: combine these into the macros above
  2311. #if HAS_HEATED_BED
  2312. while (analog_to_celsius_bed(mintemp_raw_BED) < BED_MINTEMP) mintemp_raw_BED += TEMPDIR(BED) * (OVERSAMPLENR);
  2313. while (analog_to_celsius_bed(maxtemp_raw_BED) > BED_MAXTEMP) maxtemp_raw_BED -= TEMPDIR(BED) * (OVERSAMPLENR);
  2314. #endif
  2315. #if HAS_HEATED_CHAMBER
  2316. while (analog_to_celsius_chamber(mintemp_raw_CHAMBER) < CHAMBER_MINTEMP) mintemp_raw_CHAMBER += TEMPDIR(CHAMBER) * (OVERSAMPLENR);
  2317. while (analog_to_celsius_chamber(maxtemp_raw_CHAMBER) > CHAMBER_MAXTEMP) maxtemp_raw_CHAMBER -= TEMPDIR(CHAMBER) * (OVERSAMPLENR);
  2318. #endif
  2319. #if HAS_COOLER
  2320. while (analog_to_celsius_cooler(mintemp_raw_COOLER) > COOLER_MINTEMP) mintemp_raw_COOLER += TEMPDIR(COOLER) * (OVERSAMPLENR);
  2321. while (analog_to_celsius_cooler(maxtemp_raw_COOLER) < COOLER_MAXTEMP) maxtemp_raw_COOLER -= TEMPDIR(COOLER) * (OVERSAMPLENR);
  2322. #endif
  2323. #if BOTH(HAS_TEMP_BOARD, THERMAL_PROTECTION_BOARD)
  2324. while (analog_to_celsius_board(mintemp_raw_BOARD) < BOARD_MINTEMP) mintemp_raw_BOARD += TEMPDIR(BOARD) * (OVERSAMPLENR);
  2325. while (analog_to_celsius_board(maxtemp_raw_BOARD) > BOARD_MAXTEMP) maxtemp_raw_BOARD -= TEMPDIR(BOARD) * (OVERSAMPLENR);
  2326. #endif
  2327. #if HAS_TEMP_REDUNDANT
  2328. temp_redundant.target = &(
  2329. #if REDUNDANT_TEMP_MATCH(TARGET, COOLER) && HAS_TEMP_COOLER
  2330. temp_cooler
  2331. #elif REDUNDANT_TEMP_MATCH(TARGET, PROBE) && HAS_TEMP_PROBE
  2332. temp_probe
  2333. #elif REDUNDANT_TEMP_MATCH(TARGET, BOARD) && HAS_TEMP_BOARD
  2334. temp_board
  2335. #elif REDUNDANT_TEMP_MATCH(TARGET, CHAMBER) && HAS_TEMP_CHAMBER
  2336. temp_chamber
  2337. #elif REDUNDANT_TEMP_MATCH(TARGET, BED) && HAS_TEMP_BED
  2338. temp_bed
  2339. #else
  2340. temp_hotend[HEATER_ID(TEMP_SENSOR_REDUNDANT_TARGET)]
  2341. #endif
  2342. );
  2343. #endif
  2344. }
  2345. #if HAS_THERMAL_PROTECTION
  2346. #pragma GCC diagnostic push
  2347. #pragma GCC diagnostic ignored "-Wimplicit-fallthrough"
  2348. Temperature::tr_state_machine_t Temperature::tr_state_machine[NR_HEATER_RUNAWAY]; // = { { TRInactive, 0 } };
  2349. /**
  2350. * @brief Thermal Runaway state machine for a single heater
  2351. * @param current current measured temperature
  2352. * @param target current target temperature
  2353. * @param heater_id extruder index
  2354. * @param period_seconds missed temperature allowed time
  2355. * @param hysteresis_degc allowed distance from target
  2356. *
  2357. * TODO: Embed the last 3 parameters during init, if not less optimal
  2358. */
  2359. void Temperature::tr_state_machine_t::run(const_celsius_float_t current, const_celsius_float_t target, const heater_id_t heater_id, const uint16_t period_seconds, const celsius_t hysteresis_degc) {
  2360. #if HEATER_IDLE_HANDLER
  2361. // Convert the given heater_id_t to an idle array index
  2362. const IdleIndex idle_index = idle_index_for_id(heater_id);
  2363. #endif
  2364. /**
  2365. SERIAL_ECHO_START();
  2366. SERIAL_ECHOPGM("Thermal Runaway Running. Heater ID: ");
  2367. switch (heater_id) {
  2368. case H_BED: SERIAL_ECHOPGM("bed"); break;
  2369. case H_CHAMBER: SERIAL_ECHOPGM("chamber"); break;
  2370. default: SERIAL_ECHO(heater_id);
  2371. }
  2372. SERIAL_ECHOLNPGM(
  2373. " ; sizeof(running_temp):", sizeof(running_temp),
  2374. " ; State:", state, " ; Timer:", timer, " ; Temperature:", current, " ; Target Temp:", target
  2375. #if HEATER_IDLE_HANDLER
  2376. , " ; Idle Timeout:", heater_idle[idle_index].timed_out
  2377. #endif
  2378. );
  2379. */
  2380. #if ENABLED(THERMAL_PROTECTION_VARIANCE_MONITOR)
  2381. if (state == TRMalfunction) { // temperature invariance may continue, regardless of heater state
  2382. variance += ABS(current - last_temp); // no need for detection window now, a single change in variance is enough
  2383. last_temp = current;
  2384. if (!NEAR_ZERO(variance)) {
  2385. variance_timer = millis() + SEC_TO_MS(period_seconds);
  2386. variance = 0.0;
  2387. state = TRStable; // resume from where we detected the problem
  2388. }
  2389. }
  2390. #endif
  2391. if (TERN1(THERMAL_PROTECTION_VARIANCE_MONITOR, state != TRMalfunction)) {
  2392. // If the heater idle timeout expires, restart
  2393. if (TERN0(HEATER_IDLE_HANDLER, heater_idle[idle_index].timed_out)) {
  2394. state = TRInactive;
  2395. running_temp = 0;
  2396. TERN_(THERMAL_PROTECTION_VARIANCE_MONITOR, variance_timer = 0);
  2397. }
  2398. else if (running_temp != target) { // If the target temperature changes, restart
  2399. running_temp = target;
  2400. state = target > 0 ? TRFirstHeating : TRInactive;
  2401. TERN_(THERMAL_PROTECTION_VARIANCE_MONITOR, variance_timer = 0);
  2402. }
  2403. }
  2404. switch (state) {
  2405. // Inactive state waits for a target temperature to be set
  2406. case TRInactive: break;
  2407. // When first heating, wait for the temperature to be reached then go to Stable state
  2408. case TRFirstHeating:
  2409. if (current < running_temp) break;
  2410. state = TRStable;
  2411. // While the temperature is stable watch for a bad temperature
  2412. case TRStable: {
  2413. #if ENABLED(ADAPTIVE_FAN_SLOWING)
  2414. if (adaptive_fan_slowing && heater_id >= 0) {
  2415. const int fan_index = _MIN(heater_id, FAN_COUNT - 1);
  2416. if (fan_speed[fan_index] == 0 || current >= running_temp - (hysteresis_degc * 0.25f))
  2417. fan_speed_scaler[fan_index] = 128;
  2418. else if (current >= running_temp - (hysteresis_degc * 0.3335f))
  2419. fan_speed_scaler[fan_index] = 96;
  2420. else if (current >= running_temp - (hysteresis_degc * 0.5f))
  2421. fan_speed_scaler[fan_index] = 64;
  2422. else if (current >= running_temp - (hysteresis_degc * 0.8f))
  2423. fan_speed_scaler[fan_index] = 32;
  2424. else
  2425. fan_speed_scaler[fan_index] = 0;
  2426. }
  2427. #endif
  2428. const millis_t now = millis();
  2429. #if ENABLED(THERMAL_PROTECTION_VARIANCE_MONITOR)
  2430. if (PENDING(now, variance_timer)) {
  2431. variance += ABS(current - last_temp);
  2432. last_temp = current;
  2433. }
  2434. else {
  2435. if (NEAR_ZERO(variance) && variance_timer) { // valid variance monitoring window
  2436. state = TRMalfunction;
  2437. break;
  2438. }
  2439. variance_timer = now + SEC_TO_MS(period_seconds);
  2440. variance = 0.0;
  2441. last_temp = current;
  2442. }
  2443. #endif
  2444. if (current >= running_temp - hysteresis_degc) {
  2445. timer = now + SEC_TO_MS(period_seconds);
  2446. break;
  2447. }
  2448. else if (PENDING(now, timer)) break;
  2449. state = TRRunaway;
  2450. } // fall through
  2451. case TRRunaway:
  2452. TERN_(HAS_DWIN_E3V2_BASIC, DWIN_Popup_Temperature(0));
  2453. _temp_error(heater_id, FPSTR(str_t_thermal_runaway), GET_TEXT_F(MSG_THERMAL_RUNAWAY));
  2454. #if ENABLED(THERMAL_PROTECTION_VARIANCE_MONITOR)
  2455. case TRMalfunction:
  2456. TERN_(HAS_DWIN_E3V2_BASIC, DWIN_Popup_Temperature(0));
  2457. _temp_error(heater_id, FPSTR(str_t_temp_malfunction), GET_TEXT_F(MSG_TEMP_MALFUNCTION));
  2458. #endif
  2459. }
  2460. }
  2461. #pragma GCC diagnostic pop
  2462. #endif // HAS_THERMAL_PROTECTION
  2463. void Temperature::disable_all_heaters() {
  2464. // Disable autotemp, unpause and reset everything
  2465. TERN_(AUTOTEMP, planner.autotemp_enabled = false);
  2466. TERN_(PROBING_HEATERS_OFF, pause_heaters(false));
  2467. #if HAS_HOTEND
  2468. HOTEND_LOOP() {
  2469. setTargetHotend(0, e);
  2470. temp_hotend[e].soft_pwm_amount = 0;
  2471. }
  2472. #endif
  2473. #if HAS_TEMP_HOTEND
  2474. #define DISABLE_HEATER(N) WRITE_HEATER_##N(LOW);
  2475. REPEAT(HOTENDS, DISABLE_HEATER);
  2476. #endif
  2477. #if HAS_HEATED_BED
  2478. setTargetBed(0);
  2479. temp_bed.soft_pwm_amount = 0;
  2480. WRITE_HEATER_BED(LOW);
  2481. #endif
  2482. #if HAS_HEATED_CHAMBER
  2483. setTargetChamber(0);
  2484. temp_chamber.soft_pwm_amount = 0;
  2485. WRITE_HEATER_CHAMBER(LOW);
  2486. #endif
  2487. #if HAS_COOLER
  2488. setTargetCooler(0);
  2489. temp_cooler.soft_pwm_amount = 0;
  2490. WRITE_HEATER_COOLER(LOW);
  2491. #endif
  2492. }
  2493. #if ENABLED(PRINTJOB_TIMER_AUTOSTART)
  2494. bool Temperature::auto_job_over_threshold() {
  2495. #if HAS_HOTEND
  2496. HOTEND_LOOP() if (degTargetHotend(e) > (EXTRUDE_MINTEMP) / 2) return true;
  2497. #endif
  2498. return TERN0(HAS_HEATED_BED, degTargetBed() > BED_MINTEMP)
  2499. || TERN0(HAS_HEATED_CHAMBER, degTargetChamber() > CHAMBER_MINTEMP);
  2500. }
  2501. void Temperature::auto_job_check_timer(const bool can_start, const bool can_stop) {
  2502. if (auto_job_over_threshold()) {
  2503. if (can_start) startOrResumeJob();
  2504. }
  2505. else if (can_stop) {
  2506. print_job_timer.stop();
  2507. ui.reset_status();
  2508. }
  2509. }
  2510. #endif // PRINTJOB_TIMER_AUTOSTART
  2511. #if ENABLED(PROBING_HEATERS_OFF)
  2512. void Temperature::pause_heaters(const bool p) {
  2513. if (p != paused_for_probing) {
  2514. paused_for_probing = p;
  2515. if (p) {
  2516. HOTEND_LOOP() heater_idle[e].expire(); // Timeout immediately
  2517. TERN_(HAS_HEATED_BED, heater_idle[IDLE_INDEX_BED].expire()); // Timeout immediately
  2518. }
  2519. else {
  2520. HOTEND_LOOP() reset_hotend_idle_timer(e);
  2521. TERN_(HAS_HEATED_BED, reset_bed_idle_timer());
  2522. }
  2523. }
  2524. }
  2525. #endif // PROBING_HEATERS_OFF
  2526. #if EITHER(SINGLENOZZLE_STANDBY_TEMP, SINGLENOZZLE_STANDBY_FAN)
  2527. void Temperature::singlenozzle_change(const uint8_t old_tool, const uint8_t new_tool) {
  2528. #if ENABLED(SINGLENOZZLE_STANDBY_FAN)
  2529. singlenozzle_fan_speed[old_tool] = fan_speed[0];
  2530. fan_speed[0] = singlenozzle_fan_speed[new_tool];
  2531. #endif
  2532. #if ENABLED(SINGLENOZZLE_STANDBY_TEMP)
  2533. singlenozzle_temp[old_tool] = temp_hotend[0].target;
  2534. if (singlenozzle_temp[new_tool] && singlenozzle_temp[new_tool] != singlenozzle_temp[old_tool]) {
  2535. setTargetHotend(singlenozzle_temp[new_tool], 0);
  2536. TERN_(AUTOTEMP, planner.autotemp_update());
  2537. set_heating_message(0);
  2538. (void)wait_for_hotend(0, false); // Wait for heating or cooling
  2539. }
  2540. #endif
  2541. }
  2542. #endif // SINGLENOZZLE_STANDBY_TEMP || SINGLENOZZLE_STANDBY_FAN
  2543. #if HAS_MAX_TC
  2544. #ifndef THERMOCOUPLE_MAX_ERRORS
  2545. #define THERMOCOUPLE_MAX_ERRORS 15
  2546. #endif
  2547. /**
  2548. * @brief Read MAX Thermocouple temperature.
  2549. *
  2550. * Reads the thermocouple board via HW or SW SPI, using a library (LIB_USR_x) or raw SPI reads.
  2551. * Doesn't strictly return a temperature; returns an "ADC Value" (i.e. raw register content).
  2552. *
  2553. * @param hindex the hotend we're referencing (if MULTI_MAX_TC)
  2554. * @return integer representing the board's buffer, to be converted later if needed
  2555. */
  2556. raw_adc_t Temperature::read_max_tc(TERN_(HAS_MULTI_MAX_TC, const uint8_t hindex/*=0*/)) {
  2557. #define MAXTC_HEAT_INTERVAL 250UL
  2558. #if HAS_MAX31855
  2559. #define MAX_TC_ERROR_MASK 7 // D2-0: SCV, SCG, OC
  2560. #define MAX_TC_DISCARD_BITS 18 // Data D31-18; sign bit D31
  2561. #define MAX_TC_SPEED_BITS 3 // ~1MHz
  2562. #elif HAS_MAX31865
  2563. #define MAX_TC_ERROR_MASK 1 // D0 Bit on fault only
  2564. #define MAX_TC_DISCARD_BITS 1 // Data is in D15-D1
  2565. #define MAX_TC_SPEED_BITS 3 // ~1MHz
  2566. #else // MAX6675
  2567. #define MAX_TC_ERROR_MASK 3 // D2 only; 1 = open circuit
  2568. #define MAX_TC_DISCARD_BITS 3 // Data D15-D1
  2569. #define MAX_TC_SPEED_BITS 2 // ~2MHz
  2570. #endif
  2571. #if HAS_MULTI_MAX_TC
  2572. // Needed to return the correct temp when this is called between readings
  2573. static raw_adc_t max_tc_temp_previous[MAX_TC_COUNT] = { 0 };
  2574. #define THERMO_TEMP(I) max_tc_temp_previous[I]
  2575. #define THERMO_SEL(A,B) (hindex ? (B) : (A))
  2576. #define MAXTC_CS_WRITE(V) do{ switch (hindex) { case 1: WRITE(TEMP_1_CS_PIN, V); break; default: WRITE(TEMP_0_CS_PIN, V); } }while(0)
  2577. #else
  2578. // When we have only 1 max tc, THERMO_SEL will pick the appropriate sensor
  2579. // variable, and MAXTC_*() macros will be hardcoded to the correct CS pin.
  2580. constexpr uint8_t hindex = 0;
  2581. #define THERMO_TEMP(I) max_tc_temp
  2582. #if TEMP_SENSOR_IS_ANY_MAX_TC(0)
  2583. #define THERMO_SEL(A,B) A
  2584. #define MAXTC_CS_WRITE(V) WRITE(TEMP_0_CS_PIN, V)
  2585. #else
  2586. #define THERMO_SEL(A,B) B
  2587. #define MAXTC_CS_WRITE(V) WRITE(TEMP_1_CS_PIN, V)
  2588. #endif
  2589. #endif
  2590. static TERN(HAS_MAX31855, uint32_t, uint16_t) max_tc_temp = THERMO_SEL(
  2591. TEMP_SENSOR_0_MAX_TC_TMAX,
  2592. TEMP_SENSOR_1_MAX_TC_TMAX
  2593. );
  2594. static uint8_t max_tc_errors[MAX_TC_COUNT] = { 0 };
  2595. static millis_t next_max_tc_ms[MAX_TC_COUNT] = { 0 };
  2596. // Return last-read value between readings
  2597. const millis_t ms = millis();
  2598. if (PENDING(ms, next_max_tc_ms[hindex]))
  2599. return THERMO_TEMP(hindex);
  2600. next_max_tc_ms[hindex] = ms + MAXTC_HEAT_INTERVAL;
  2601. #if !HAS_MAXTC_LIBRARIES
  2602. max_tc_temp = 0;
  2603. #if !HAS_MAXTC_SW_SPI
  2604. // Initialize SPI using the default Hardware SPI bus.
  2605. // FIXME: spiBegin, spiRec and spiInit doesn't work when soft spi is used.
  2606. spiBegin();
  2607. spiInit(MAX_TC_SPEED_BITS);
  2608. #endif
  2609. MAXTC_CS_WRITE(LOW); // Enable MAXTC
  2610. DELAY_NS(100); // Ensure 100ns delay
  2611. // Read a big-endian temperature value without using a library
  2612. for (uint8_t i = sizeof(max_tc_temp); i--;) {
  2613. max_tc_temp |= TERN(HAS_MAXTC_SW_SPI, max_tc_spi.receive(), spiRec());
  2614. if (i > 0) max_tc_temp <<= 8; // shift left if not the last byte
  2615. }
  2616. MAXTC_CS_WRITE(HIGH); // Disable MAXTC
  2617. #else
  2618. #if HAS_MAX6675_LIBRARY
  2619. MAX6675 &max6675ref = THERMO_SEL(max6675_0, max6675_1);
  2620. max_tc_temp = max6675ref.readRaw16();
  2621. #endif
  2622. #if HAS_MAX31855_LIBRARY
  2623. MAX31855 &max855ref = THERMO_SEL(max31855_0, max31855_1);
  2624. max_tc_temp = max855ref.readRaw32();
  2625. #endif
  2626. #if HAS_MAX31865
  2627. MAX31865 &max865ref = THERMO_SEL(max31865_0, max31865_1);
  2628. max_tc_temp = TERN(LIB_INTERNAL_MAX31865, max865ref.readRaw(), max865ref.readRTD_with_Fault());
  2629. #endif
  2630. #endif
  2631. // Handle an error. If there have been more than THERMOCOUPLE_MAX_ERRORS, send an error over serial.
  2632. // Either way, return the TMAX for the thermocouple to trigger a max_temp_error()
  2633. if (max_tc_temp & MAX_TC_ERROR_MASK) {
  2634. max_tc_errors[hindex]++;
  2635. if (max_tc_errors[hindex] > THERMOCOUPLE_MAX_ERRORS) {
  2636. SERIAL_ERROR_START();
  2637. SERIAL_ECHOPGM("Temp measurement error! ");
  2638. #if HAS_MAX31855
  2639. SERIAL_ECHOPGM("MAX31855 Fault: (", max_tc_temp & 0x7, ") >> ");
  2640. if (max_tc_temp & 0x1)
  2641. SERIAL_ECHOLNPGM("Open Circuit");
  2642. else if (max_tc_temp & 0x2)
  2643. SERIAL_ECHOLNPGM("Short to GND");
  2644. else if (max_tc_temp & 0x4)
  2645. SERIAL_ECHOLNPGM("Short to VCC");
  2646. #elif HAS_MAX31865
  2647. const uint8_t fault_31865 = max865ref.readFault();
  2648. max865ref.clearFault();
  2649. if (fault_31865) {
  2650. SERIAL_EOL();
  2651. SERIAL_ECHOLNPGM("\nMAX31865 Fault: (", fault_31865, ") >>");
  2652. if (fault_31865 & MAX31865_FAULT_HIGHTHRESH)
  2653. SERIAL_ECHOLNPGM("RTD High Threshold");
  2654. if (fault_31865 & MAX31865_FAULT_LOWTHRESH)
  2655. SERIAL_ECHOLNPGM("RTD Low Threshold");
  2656. if (fault_31865 & MAX31865_FAULT_REFINLOW)
  2657. SERIAL_ECHOLNPGM("REFIN- > 0.85 x V bias");
  2658. if (fault_31865 & MAX31865_FAULT_REFINHIGH)
  2659. SERIAL_ECHOLNPGM("REFIN- < 0.85 x V bias (FORCE- open)");
  2660. if (fault_31865 & MAX31865_FAULT_RTDINLOW)
  2661. SERIAL_ECHOLNPGM("REFIN- < 0.85 x V bias (FORCE- open)");
  2662. if (fault_31865 & MAX31865_FAULT_OVUV)
  2663. SERIAL_ECHOLNPGM("Under/Over voltage");
  2664. }
  2665. #else // MAX6675
  2666. SERIAL_ECHOLNPGM("MAX6675 Fault: Open Circuit");
  2667. #endif
  2668. // Set thermocouple above max temperature (TMAX)
  2669. max_tc_temp = THERMO_SEL(TEMP_SENSOR_0_MAX_TC_TMAX, TEMP_SENSOR_1_MAX_TC_TMAX) << (MAX_TC_DISCARD_BITS + 1);
  2670. }
  2671. }
  2672. else {
  2673. max_tc_errors[hindex] = 0; // No error bit, reset error count
  2674. }
  2675. max_tc_temp >>= MAX_TC_DISCARD_BITS;
  2676. #if HAS_MAX31855
  2677. // Support negative temperature for MAX38155
  2678. if (max_tc_temp & 0x00002000) max_tc_temp |= 0xFFFFC000;
  2679. #endif
  2680. THERMO_TEMP(hindex) = max_tc_temp;
  2681. return max_tc_temp;
  2682. }
  2683. #endif // HAS_MAX_TC
  2684. /**
  2685. * Update raw temperatures
  2686. *
  2687. * Called by ISR => readings_ready when new temperatures have been set by updateTemperaturesFromRawValues.
  2688. * Applies all the accumulators to the current raw temperatures.
  2689. */
  2690. void Temperature::update_raw_temperatures() {
  2691. // TODO: can this be collapsed into a HOTEND_LOOP()?
  2692. #if HAS_TEMP_ADC_0 && !TEMP_SENSOR_IS_MAX_TC(0)
  2693. temp_hotend[0].update();
  2694. #endif
  2695. #if HAS_TEMP_ADC_1 && !TEMP_SENSOR_IS_MAX_TC(1)
  2696. temp_hotend[1].update();
  2697. #endif
  2698. #if HAS_TEMP_ADC_REDUNDANT && !TEMP_SENSOR_IS_MAX_TC(REDUNDANT)
  2699. temp_redundant.update();
  2700. #endif
  2701. TERN_(HAS_TEMP_ADC_2, temp_hotend[2].update());
  2702. TERN_(HAS_TEMP_ADC_3, temp_hotend[3].update());
  2703. TERN_(HAS_TEMP_ADC_4, temp_hotend[4].update());
  2704. TERN_(HAS_TEMP_ADC_5, temp_hotend[5].update());
  2705. TERN_(HAS_TEMP_ADC_6, temp_hotend[6].update());
  2706. TERN_(HAS_TEMP_ADC_7, temp_hotend[7].update());
  2707. TERN_(HAS_TEMP_ADC_BED, temp_bed.update());
  2708. TERN_(HAS_TEMP_ADC_CHAMBER, temp_chamber.update());
  2709. TERN_(HAS_TEMP_ADC_PROBE, temp_probe.update());
  2710. TERN_(HAS_TEMP_ADC_COOLER, temp_cooler.update());
  2711. TERN_(HAS_TEMP_ADC_BOARD, temp_board.update());
  2712. TERN_(HAS_JOY_ADC_X, joystick.x.update());
  2713. TERN_(HAS_JOY_ADC_Y, joystick.y.update());
  2714. TERN_(HAS_JOY_ADC_Z, joystick.z.update());
  2715. }
  2716. /**
  2717. * Called by the Temperature ISR when all the ADCs have been processed.
  2718. * Reset all the ADC accumulators for another round of updates.
  2719. */
  2720. void Temperature::readings_ready() {
  2721. // Update raw values only if they're not already set.
  2722. if (!raw_temps_ready) {
  2723. update_raw_temperatures();
  2724. raw_temps_ready = true;
  2725. }
  2726. // Filament Sensor - can be read any time since IIR filtering is used
  2727. TERN_(FILAMENT_WIDTH_SENSOR, filwidth.reading_ready());
  2728. #if HAS_HOTEND
  2729. HOTEND_LOOP() temp_hotend[e].reset();
  2730. #endif
  2731. TERN_(HAS_HEATED_BED, temp_bed.reset());
  2732. TERN_(HAS_TEMP_CHAMBER, temp_chamber.reset());
  2733. TERN_(HAS_TEMP_PROBE, temp_probe.reset());
  2734. TERN_(HAS_TEMP_COOLER, temp_cooler.reset());
  2735. TERN_(HAS_TEMP_BOARD, temp_board.reset());
  2736. TERN_(HAS_TEMP_REDUNDANT, temp_redundant.reset());
  2737. TERN_(HAS_JOY_ADC_X, joystick.x.reset());
  2738. TERN_(HAS_JOY_ADC_Y, joystick.y.reset());
  2739. TERN_(HAS_JOY_ADC_Z, joystick.z.reset());
  2740. }
  2741. /**
  2742. * Timer 0 is shared with millies so don't change the prescaler.
  2743. *
  2744. * On AVR this ISR uses the compare method so it runs at the base
  2745. * frequency (16 MHz / 64 / 256 = 976.5625 Hz), but at the TCNT0 set
  2746. * in OCR0B above (128 or halfway between OVFs).
  2747. *
  2748. * - Manage PWM to all the heaters and fan
  2749. * - Prepare or Measure one of the raw ADC sensor values
  2750. * - Check new temperature values for MIN/MAX errors (kill on error)
  2751. * - Step the babysteps value for each axis towards 0
  2752. * - For PINS_DEBUGGING, monitor and report endstop pins
  2753. * - For ENDSTOP_INTERRUPTS_FEATURE check endstops if flagged
  2754. * - Call planner.isr to count down its "ignore" time
  2755. */
  2756. HAL_TEMP_TIMER_ISR() {
  2757. HAL_timer_isr_prologue(MF_TIMER_TEMP);
  2758. Temperature::isr();
  2759. HAL_timer_isr_epilogue(MF_TIMER_TEMP);
  2760. }
  2761. #if ENABLED(SLOW_PWM_HEATERS) && !defined(MIN_STATE_TIME)
  2762. #define MIN_STATE_TIME 16 // MIN_STATE_TIME * 65.5 = time in milliseconds
  2763. #endif
  2764. class SoftPWM {
  2765. public:
  2766. uint8_t count;
  2767. inline bool add(const uint8_t mask, const uint8_t amount) {
  2768. count = (count & mask) + amount; return (count > mask);
  2769. }
  2770. #if ENABLED(SLOW_PWM_HEATERS)
  2771. bool state_heater;
  2772. uint8_t state_timer_heater;
  2773. inline void dec() { if (state_timer_heater > 0) state_timer_heater--; }
  2774. inline bool ready(const bool v) {
  2775. const bool rdy = !state_timer_heater;
  2776. if (rdy && state_heater != v) {
  2777. state_heater = v;
  2778. state_timer_heater = MIN_STATE_TIME;
  2779. }
  2780. return rdy;
  2781. }
  2782. #endif
  2783. };
  2784. /**
  2785. * Handle various ~1kHz tasks associated with temperature
  2786. * - Check laser safety timeout
  2787. * - Heater PWM (~1kHz with scaler)
  2788. * - LCD Button polling (~500Hz)
  2789. * - Start / Read one ADC sensor
  2790. * - Advance Babysteps
  2791. * - Endstop polling
  2792. * - Planner clean buffer
  2793. */
  2794. void Temperature::isr() {
  2795. // Shut down the laser if steppers are inactive for > LASER_SAFETY_TIMEOUT_MS ms
  2796. #if LASER_SAFETY_TIMEOUT_MS > 0
  2797. if (cutter.last_power_applied && ELAPSED(millis(), gcode.previous_move_ms + (LASER_SAFETY_TIMEOUT_MS))) {
  2798. cutter.power = 0; // Prevent planner idle from re-enabling power
  2799. cutter.apply_power(0);
  2800. }
  2801. #endif
  2802. static int8_t temp_count = -1;
  2803. static ADCSensorState adc_sensor_state = StartupDelay;
  2804. static uint8_t pwm_count = _BV(SOFT_PWM_SCALE);
  2805. // Avoid multiple loads of pwm_count
  2806. uint8_t pwm_count_tmp = pwm_count;
  2807. #if HAS_ADC_BUTTONS
  2808. static raw_adc_t raw_ADCKey_value = 0;
  2809. static bool ADCKey_pressed = false;
  2810. #endif
  2811. #if HAS_HOTEND
  2812. static SoftPWM soft_pwm_hotend[HOTENDS];
  2813. #endif
  2814. #if HAS_HEATED_BED
  2815. static SoftPWM soft_pwm_bed;
  2816. #endif
  2817. #if HAS_HEATED_CHAMBER
  2818. static SoftPWM soft_pwm_chamber;
  2819. #endif
  2820. #if HAS_COOLER
  2821. static SoftPWM soft_pwm_cooler;
  2822. #endif
  2823. #if BOTH(FAN_SOFT_PWM, USE_CONTROLLER_FAN)
  2824. static SoftPWM soft_pwm_controller;
  2825. #endif
  2826. #define WRITE_FAN(n, v) WRITE(FAN##n##_PIN, (v) ^ FAN_INVERTING)
  2827. #if DISABLED(SLOW_PWM_HEATERS)
  2828. #if ANY(HAS_HOTEND, HAS_HEATED_BED, HAS_HEATED_CHAMBER, HAS_COOLER, FAN_SOFT_PWM)
  2829. constexpr uint8_t pwm_mask = TERN0(SOFT_PWM_DITHER, _BV(SOFT_PWM_SCALE) - 1);
  2830. #define _PWM_MOD(N,S,T) do{ \
  2831. const bool on = S.add(pwm_mask, T.soft_pwm_amount); \
  2832. WRITE_HEATER_##N(on); \
  2833. }while(0)
  2834. #endif
  2835. /**
  2836. * Standard heater PWM modulation
  2837. */
  2838. if (pwm_count_tmp >= 127) {
  2839. pwm_count_tmp -= 127;
  2840. #if HAS_HOTEND
  2841. #define _PWM_MOD_E(N) _PWM_MOD(N,soft_pwm_hotend[N],temp_hotend[N]);
  2842. REPEAT(HOTENDS, _PWM_MOD_E);
  2843. #endif
  2844. #if HAS_HEATED_BED
  2845. _PWM_MOD(BED, soft_pwm_bed, temp_bed);
  2846. #endif
  2847. #if HAS_HEATED_CHAMBER
  2848. _PWM_MOD(CHAMBER, soft_pwm_chamber, temp_chamber);
  2849. #endif
  2850. #if HAS_COOLER
  2851. _PWM_MOD(COOLER, soft_pwm_cooler, temp_cooler);
  2852. #endif
  2853. #if ENABLED(FAN_SOFT_PWM)
  2854. #if ENABLED(USE_CONTROLLER_FAN)
  2855. WRITE(CONTROLLER_FAN_PIN, soft_pwm_controller.add(pwm_mask, soft_pwm_controller_speed));
  2856. #endif
  2857. #define _FAN_PWM(N) do{ \
  2858. uint8_t &spcf = soft_pwm_count_fan[N]; \
  2859. spcf = (spcf & pwm_mask) + (soft_pwm_amount_fan[N] >> 1); \
  2860. WRITE_FAN(N, spcf > pwm_mask ? HIGH : LOW); \
  2861. }while(0)
  2862. #if HAS_FAN0
  2863. _FAN_PWM(0);
  2864. #endif
  2865. #if HAS_FAN1
  2866. _FAN_PWM(1);
  2867. #endif
  2868. #if HAS_FAN2
  2869. _FAN_PWM(2);
  2870. #endif
  2871. #if HAS_FAN3
  2872. _FAN_PWM(3);
  2873. #endif
  2874. #if HAS_FAN4
  2875. _FAN_PWM(4);
  2876. #endif
  2877. #if HAS_FAN5
  2878. _FAN_PWM(5);
  2879. #endif
  2880. #if HAS_FAN6
  2881. _FAN_PWM(6);
  2882. #endif
  2883. #if HAS_FAN7
  2884. _FAN_PWM(7);
  2885. #endif
  2886. #endif
  2887. }
  2888. else {
  2889. #define _PWM_LOW(N,S) do{ if (S.count <= pwm_count_tmp) WRITE_HEATER_##N(LOW); }while(0)
  2890. #if HAS_HOTEND
  2891. #define _PWM_LOW_E(N) _PWM_LOW(N, soft_pwm_hotend[N]);
  2892. REPEAT(HOTENDS, _PWM_LOW_E);
  2893. #endif
  2894. #if HAS_HEATED_BED
  2895. _PWM_LOW(BED, soft_pwm_bed);
  2896. #endif
  2897. #if HAS_HEATED_CHAMBER
  2898. _PWM_LOW(CHAMBER, soft_pwm_chamber);
  2899. #endif
  2900. #if HAS_COOLER
  2901. _PWM_LOW(COOLER, soft_pwm_cooler);
  2902. #endif
  2903. #if ENABLED(FAN_SOFT_PWM)
  2904. #if HAS_FAN0
  2905. if (soft_pwm_count_fan[0] <= pwm_count_tmp) WRITE_FAN(0, LOW);
  2906. #endif
  2907. #if HAS_FAN1
  2908. if (soft_pwm_count_fan[1] <= pwm_count_tmp) WRITE_FAN(1, LOW);
  2909. #endif
  2910. #if HAS_FAN2
  2911. if (soft_pwm_count_fan[2] <= pwm_count_tmp) WRITE_FAN(2, LOW);
  2912. #endif
  2913. #if HAS_FAN3
  2914. if (soft_pwm_count_fan[3] <= pwm_count_tmp) WRITE_FAN(3, LOW);
  2915. #endif
  2916. #if HAS_FAN4
  2917. if (soft_pwm_count_fan[4] <= pwm_count_tmp) WRITE_FAN(4, LOW);
  2918. #endif
  2919. #if HAS_FAN5
  2920. if (soft_pwm_count_fan[5] <= pwm_count_tmp) WRITE_FAN(5, LOW);
  2921. #endif
  2922. #if HAS_FAN6
  2923. if (soft_pwm_count_fan[6] <= pwm_count_tmp) WRITE_FAN(6, LOW);
  2924. #endif
  2925. #if HAS_FAN7
  2926. if (soft_pwm_count_fan[7] <= pwm_count_tmp) WRITE_FAN(7, LOW);
  2927. #endif
  2928. #if ENABLED(USE_CONTROLLER_FAN)
  2929. if (soft_pwm_controller.count <= pwm_count_tmp) WRITE(CONTROLLER_FAN_PIN, LOW);
  2930. #endif
  2931. #endif
  2932. }
  2933. // SOFT_PWM_SCALE to frequency:
  2934. //
  2935. // 0: 16000000/64/256/128 = 7.6294 Hz
  2936. // 1: / 64 = 15.2588 Hz
  2937. // 2: / 32 = 30.5176 Hz
  2938. // 3: / 16 = 61.0352 Hz
  2939. // 4: / 8 = 122.0703 Hz
  2940. // 5: / 4 = 244.1406 Hz
  2941. pwm_count = pwm_count_tmp + _BV(SOFT_PWM_SCALE);
  2942. #else // SLOW_PWM_HEATERS
  2943. /**
  2944. * SLOW PWM HEATERS
  2945. *
  2946. * For relay-driven heaters
  2947. */
  2948. #define _SLOW_SET(NR,PWM,V) do{ if (PWM.ready(V)) WRITE_HEATER_##NR(V); }while(0)
  2949. #define _SLOW_PWM(NR,PWM,SRC) do{ PWM.count = SRC.soft_pwm_amount; _SLOW_SET(NR,PWM,(PWM.count > 0)); }while(0)
  2950. #define _PWM_OFF(NR,PWM) do{ if (PWM.count < slow_pwm_count) _SLOW_SET(NR,PWM,0); }while(0)
  2951. static uint8_t slow_pwm_count = 0;
  2952. if (slow_pwm_count == 0) {
  2953. #if HAS_HOTEND
  2954. #define _SLOW_PWM_E(N) _SLOW_PWM(N, soft_pwm_hotend[N], temp_hotend[N]);
  2955. REPEAT(HOTENDS, _SLOW_PWM_E);
  2956. #endif
  2957. #if HAS_HEATED_BED
  2958. _SLOW_PWM(BED, soft_pwm_bed, temp_bed);
  2959. #endif
  2960. #if HAS_HEATED_CHAMBER
  2961. _SLOW_PWM(CHAMBER, soft_pwm_chamber, temp_chamber);
  2962. #endif
  2963. #if HAS_COOLER
  2964. _SLOW_PWM(COOLER, soft_pwm_cooler, temp_cooler);
  2965. #endif
  2966. } // slow_pwm_count == 0
  2967. #if HAS_HOTEND
  2968. #define _PWM_OFF_E(N) _PWM_OFF(N, soft_pwm_hotend[N]);
  2969. REPEAT(HOTENDS, _PWM_OFF_E);
  2970. #endif
  2971. #if HAS_HEATED_BED
  2972. _PWM_OFF(BED, soft_pwm_bed);
  2973. #endif
  2974. #if HAS_HEATED_CHAMBER
  2975. _PWM_OFF(CHAMBER, soft_pwm_chamber);
  2976. #endif
  2977. #if HAS_COOLER
  2978. _PWM_OFF(COOLER, soft_pwm_cooler, temp_cooler);
  2979. #endif
  2980. #if ENABLED(FAN_SOFT_PWM)
  2981. if (pwm_count_tmp >= 127) {
  2982. pwm_count_tmp = 0;
  2983. #define _PWM_FAN(N) do{ \
  2984. soft_pwm_count_fan[N] = soft_pwm_amount_fan[N] >> 1; \
  2985. WRITE_FAN(N, soft_pwm_count_fan[N] > 0 ? HIGH : LOW); \
  2986. }while(0)
  2987. #if HAS_FAN0
  2988. _PWM_FAN(0);
  2989. #endif
  2990. #if HAS_FAN1
  2991. _PWM_FAN(1);
  2992. #endif
  2993. #if HAS_FAN2
  2994. _PWM_FAN(2);
  2995. #endif
  2996. #if HAS_FAN3
  2997. _FAN_PWM(3);
  2998. #endif
  2999. #if HAS_FAN4
  3000. _FAN_PWM(4);
  3001. #endif
  3002. #if HAS_FAN5
  3003. _FAN_PWM(5);
  3004. #endif
  3005. #if HAS_FAN6
  3006. _FAN_PWM(6);
  3007. #endif
  3008. #if HAS_FAN7
  3009. _FAN_PWM(7);
  3010. #endif
  3011. }
  3012. #if HAS_FAN0
  3013. if (soft_pwm_count_fan[0] <= pwm_count_tmp) WRITE_FAN(0, LOW);
  3014. #endif
  3015. #if HAS_FAN1
  3016. if (soft_pwm_count_fan[1] <= pwm_count_tmp) WRITE_FAN(1, LOW);
  3017. #endif
  3018. #if HAS_FAN2
  3019. if (soft_pwm_count_fan[2] <= pwm_count_tmp) WRITE_FAN(2, LOW);
  3020. #endif
  3021. #if HAS_FAN3
  3022. if (soft_pwm_count_fan[3] <= pwm_count_tmp) WRITE_FAN(3, LOW);
  3023. #endif
  3024. #if HAS_FAN4
  3025. if (soft_pwm_count_fan[4] <= pwm_count_tmp) WRITE_FAN(4, LOW);
  3026. #endif
  3027. #if HAS_FAN5
  3028. if (soft_pwm_count_fan[5] <= pwm_count_tmp) WRITE_FAN(5, LOW);
  3029. #endif
  3030. #if HAS_FAN6
  3031. if (soft_pwm_count_fan[6] <= pwm_count_tmp) WRITE_FAN(6, LOW);
  3032. #endif
  3033. #if HAS_FAN7
  3034. if (soft_pwm_count_fan[7] <= pwm_count_tmp) WRITE_FAN(7, LOW);
  3035. #endif
  3036. #endif // FAN_SOFT_PWM
  3037. // SOFT_PWM_SCALE to frequency:
  3038. //
  3039. // 0: 16000000/64/256/128 = 7.6294 Hz
  3040. // 1: / 64 = 15.2588 Hz
  3041. // 2: / 32 = 30.5176 Hz
  3042. // 3: / 16 = 61.0352 Hz
  3043. // 4: / 8 = 122.0703 Hz
  3044. // 5: / 4 = 244.1406 Hz
  3045. pwm_count = pwm_count_tmp + _BV(SOFT_PWM_SCALE);
  3046. // Increment slow_pwm_count only every 64th pwm_count,
  3047. // i.e., yielding a PWM frequency of 16/128 Hz (8s).
  3048. if (((pwm_count >> SOFT_PWM_SCALE) & 0x3F) == 0) {
  3049. slow_pwm_count++;
  3050. slow_pwm_count &= 0x7F;
  3051. #if HAS_HOTEND
  3052. HOTEND_LOOP() soft_pwm_hotend[e].dec();
  3053. #endif
  3054. TERN_(HAS_HEATED_BED, soft_pwm_bed.dec());
  3055. TERN_(HAS_HEATED_CHAMBER, soft_pwm_chamber.dec());
  3056. TERN_(HAS_COOLER, soft_pwm_cooler.dec());
  3057. }
  3058. #endif // SLOW_PWM_HEATERS
  3059. //
  3060. // Update lcd buttons 488 times per second
  3061. //
  3062. static bool do_buttons;
  3063. if ((do_buttons ^= true)) ui.update_buttons();
  3064. /**
  3065. * One sensor is sampled on every other call of the ISR.
  3066. * Each sensor is read 16 (OVERSAMPLENR) times, taking the average.
  3067. *
  3068. * On each Prepare pass, ADC is started for a sensor pin.
  3069. * On the next pass, the ADC value is read and accumulated.
  3070. *
  3071. * This gives each ADC 0.9765ms to charge up.
  3072. */
  3073. #define ACCUMULATE_ADC(obj) do{ \
  3074. if (!hal.adc_ready()) next_sensor_state = adc_sensor_state; \
  3075. else obj.sample(hal.adc_value()); \
  3076. }while(0)
  3077. ADCSensorState next_sensor_state = adc_sensor_state < SensorsReady ? (ADCSensorState)(int(adc_sensor_state) + 1) : StartSampling;
  3078. switch (adc_sensor_state) {
  3079. #pragma GCC diagnostic push
  3080. #pragma GCC diagnostic ignored "-Wimplicit-fallthrough"
  3081. case SensorsReady: {
  3082. // All sensors have been read. Stay in this state for a few
  3083. // ISRs to save on calls to temp update/checking code below.
  3084. constexpr int8_t extra_loops = MIN_ADC_ISR_LOOPS - (int8_t)SensorsReady;
  3085. static uint8_t delay_count = 0;
  3086. if (extra_loops > 0) {
  3087. if (delay_count == 0) delay_count = extra_loops; // Init this delay
  3088. if (--delay_count) // While delaying...
  3089. next_sensor_state = SensorsReady; // retain this state (else, next state will be 0)
  3090. break;
  3091. }
  3092. else {
  3093. adc_sensor_state = StartSampling; // Fall-through to start sampling
  3094. next_sensor_state = (ADCSensorState)(int(StartSampling) + 1);
  3095. }
  3096. }
  3097. #pragma GCC diagnostic pop
  3098. case StartSampling: // Start of sampling loops. Do updates/checks.
  3099. if (++temp_count >= OVERSAMPLENR) { // 10 * 16 * 1/(16000000/64/256) = 164ms.
  3100. temp_count = 0;
  3101. readings_ready();
  3102. }
  3103. break;
  3104. #if HAS_TEMP_ADC_0
  3105. case PrepareTemp_0: hal.adc_start(TEMP_0_PIN); break;
  3106. case MeasureTemp_0: ACCUMULATE_ADC(temp_hotend[0]); break;
  3107. #endif
  3108. #if HAS_TEMP_ADC_BED
  3109. case PrepareTemp_BED: hal.adc_start(TEMP_BED_PIN); break;
  3110. case MeasureTemp_BED: ACCUMULATE_ADC(temp_bed); break;
  3111. #endif
  3112. #if HAS_TEMP_ADC_CHAMBER
  3113. case PrepareTemp_CHAMBER: hal.adc_start(TEMP_CHAMBER_PIN); break;
  3114. case MeasureTemp_CHAMBER: ACCUMULATE_ADC(temp_chamber); break;
  3115. #endif
  3116. #if HAS_TEMP_ADC_COOLER
  3117. case PrepareTemp_COOLER: hal.adc_start(TEMP_COOLER_PIN); break;
  3118. case MeasureTemp_COOLER: ACCUMULATE_ADC(temp_cooler); break;
  3119. #endif
  3120. #if HAS_TEMP_ADC_PROBE
  3121. case PrepareTemp_PROBE: hal.adc_start(TEMP_PROBE_PIN); break;
  3122. case MeasureTemp_PROBE: ACCUMULATE_ADC(temp_probe); break;
  3123. #endif
  3124. #if HAS_TEMP_ADC_BOARD
  3125. case PrepareTemp_BOARD: hal.adc_start(TEMP_BOARD_PIN); break;
  3126. case MeasureTemp_BOARD: ACCUMULATE_ADC(temp_board); break;
  3127. #endif
  3128. #if HAS_TEMP_ADC_REDUNDANT
  3129. case PrepareTemp_REDUNDANT: hal.adc_start(TEMP_REDUNDANT_PIN); break;
  3130. case MeasureTemp_REDUNDANT: ACCUMULATE_ADC(temp_redundant); break;
  3131. #endif
  3132. #if HAS_TEMP_ADC_1
  3133. case PrepareTemp_1: hal.adc_start(TEMP_1_PIN); break;
  3134. case MeasureTemp_1: ACCUMULATE_ADC(temp_hotend[1]); break;
  3135. #endif
  3136. #if HAS_TEMP_ADC_2
  3137. case PrepareTemp_2: hal.adc_start(TEMP_2_PIN); break;
  3138. case MeasureTemp_2: ACCUMULATE_ADC(temp_hotend[2]); break;
  3139. #endif
  3140. #if HAS_TEMP_ADC_3
  3141. case PrepareTemp_3: hal.adc_start(TEMP_3_PIN); break;
  3142. case MeasureTemp_3: ACCUMULATE_ADC(temp_hotend[3]); break;
  3143. #endif
  3144. #if HAS_TEMP_ADC_4
  3145. case PrepareTemp_4: hal.adc_start(TEMP_4_PIN); break;
  3146. case MeasureTemp_4: ACCUMULATE_ADC(temp_hotend[4]); break;
  3147. #endif
  3148. #if HAS_TEMP_ADC_5
  3149. case PrepareTemp_5: hal.adc_start(TEMP_5_PIN); break;
  3150. case MeasureTemp_5: ACCUMULATE_ADC(temp_hotend[5]); break;
  3151. #endif
  3152. #if HAS_TEMP_ADC_6
  3153. case PrepareTemp_6: hal.adc_start(TEMP_6_PIN); break;
  3154. case MeasureTemp_6: ACCUMULATE_ADC(temp_hotend[6]); break;
  3155. #endif
  3156. #if HAS_TEMP_ADC_7
  3157. case PrepareTemp_7: hal.adc_start(TEMP_7_PIN); break;
  3158. case MeasureTemp_7: ACCUMULATE_ADC(temp_hotend[7]); break;
  3159. #endif
  3160. #if ENABLED(FILAMENT_WIDTH_SENSOR)
  3161. case Prepare_FILWIDTH: hal.adc_start(FILWIDTH_PIN); break;
  3162. case Measure_FILWIDTH:
  3163. if (!hal.adc_ready()) next_sensor_state = adc_sensor_state; // Redo this state
  3164. else filwidth.accumulate(hal.adc_value());
  3165. break;
  3166. #endif
  3167. #if ENABLED(POWER_MONITOR_CURRENT)
  3168. case Prepare_POWER_MONITOR_CURRENT:
  3169. hal.adc_start(POWER_MONITOR_CURRENT_PIN);
  3170. break;
  3171. case Measure_POWER_MONITOR_CURRENT:
  3172. if (!hal.adc_ready()) next_sensor_state = adc_sensor_state; // Redo this state
  3173. else power_monitor.add_current_sample(hal.adc_value());
  3174. break;
  3175. #endif
  3176. #if ENABLED(POWER_MONITOR_VOLTAGE)
  3177. case Prepare_POWER_MONITOR_VOLTAGE:
  3178. hal.adc_start(POWER_MONITOR_VOLTAGE_PIN);
  3179. break;
  3180. case Measure_POWER_MONITOR_VOLTAGE:
  3181. if (!hal.adc_ready()) next_sensor_state = adc_sensor_state; // Redo this state
  3182. else power_monitor.add_voltage_sample(hal.adc_value());
  3183. break;
  3184. #endif
  3185. #if HAS_JOY_ADC_X
  3186. case PrepareJoy_X: hal.adc_start(JOY_X_PIN); break;
  3187. case MeasureJoy_X: ACCUMULATE_ADC(joystick.x); break;
  3188. #endif
  3189. #if HAS_JOY_ADC_Y
  3190. case PrepareJoy_Y: hal.adc_start(JOY_Y_PIN); break;
  3191. case MeasureJoy_Y: ACCUMULATE_ADC(joystick.y); break;
  3192. #endif
  3193. #if HAS_JOY_ADC_Z
  3194. case PrepareJoy_Z: hal.adc_start(JOY_Z_PIN); break;
  3195. case MeasureJoy_Z: ACCUMULATE_ADC(joystick.z); break;
  3196. #endif
  3197. #if HAS_ADC_BUTTONS
  3198. #ifndef ADC_BUTTON_DEBOUNCE_DELAY
  3199. #define ADC_BUTTON_DEBOUNCE_DELAY 16
  3200. #endif
  3201. case Prepare_ADC_KEY: hal.adc_start(ADC_KEYPAD_PIN); break;
  3202. case Measure_ADC_KEY:
  3203. if (!hal.adc_ready())
  3204. next_sensor_state = adc_sensor_state; // redo this state
  3205. else if (ADCKey_count < ADC_BUTTON_DEBOUNCE_DELAY) {
  3206. raw_ADCKey_value = hal.adc_value();
  3207. if (raw_ADCKey_value <= 900UL * HAL_ADC_RANGE / 1024UL) {
  3208. NOMORE(current_ADCKey_raw, raw_ADCKey_value);
  3209. ADCKey_count++;
  3210. }
  3211. else { //ADC Key release
  3212. if (ADCKey_count > 0) ADCKey_count++; else ADCKey_pressed = false;
  3213. if (ADCKey_pressed) {
  3214. ADCKey_count = 0;
  3215. current_ADCKey_raw = HAL_ADC_RANGE;
  3216. }
  3217. }
  3218. }
  3219. if (ADCKey_count == ADC_BUTTON_DEBOUNCE_DELAY) ADCKey_pressed = true;
  3220. break;
  3221. #endif // HAS_ADC_BUTTONS
  3222. case StartupDelay: break;
  3223. } // switch(adc_sensor_state)
  3224. // Go to the next state
  3225. adc_sensor_state = next_sensor_state;
  3226. //
  3227. // Additional ~1kHz Tasks
  3228. //
  3229. #if ENABLED(BABYSTEPPING) && DISABLED(INTEGRATED_BABYSTEPPING)
  3230. babystep.task();
  3231. #endif
  3232. // Check fan tachometers
  3233. TERN_(HAS_FANCHECK, fan_check.update_tachometers());
  3234. // Poll endstops state, if required
  3235. endstops.poll();
  3236. // Periodically call the planner timer service routine
  3237. planner.isr();
  3238. }
  3239. #if HAS_TEMP_SENSOR
  3240. /**
  3241. * Print a single heater state in the form:
  3242. * Bed: " B:nnn.nn /nnn.nn"
  3243. * Chamber: " C:nnn.nn /nnn.nn"
  3244. * Probe: " P:nnn.nn /nnn.nn"
  3245. * Cooler: " L:nnn.nn /nnn.nn"
  3246. * Redundant: " R:nnn.nn /nnn.nn"
  3247. * Extruder: " T0:nnn.nn /nnn.nn"
  3248. * With ADC: " T0:nnn.nn /nnn.nn (nnn.nn)"
  3249. */
  3250. static void print_heater_state(const heater_id_t e, const_celsius_float_t c, const_celsius_float_t t
  3251. OPTARG(SHOW_TEMP_ADC_VALUES, const float r)
  3252. ) {
  3253. char k;
  3254. switch (e) {
  3255. default:
  3256. #if HAS_TEMP_HOTEND
  3257. k = 'T'; break;
  3258. #endif
  3259. #if HAS_TEMP_BED
  3260. case H_BED: k = 'B'; break;
  3261. #endif
  3262. #if HAS_TEMP_CHAMBER
  3263. case H_CHAMBER: k = 'C'; break;
  3264. #endif
  3265. #if HAS_TEMP_PROBE
  3266. case H_PROBE: k = 'P'; break;
  3267. #endif
  3268. #if HAS_TEMP_COOLER
  3269. case H_COOLER: k = 'L'; break;
  3270. #endif
  3271. #if HAS_TEMP_BOARD
  3272. case H_BOARD: k = 'M'; break;
  3273. #endif
  3274. #if HAS_TEMP_REDUNDANT
  3275. case H_REDUNDANT: k = 'R'; break;
  3276. #endif
  3277. }
  3278. SERIAL_CHAR(' ', k);
  3279. #if HAS_MULTI_HOTEND
  3280. if (e >= 0) SERIAL_CHAR('0' + e);
  3281. #endif
  3282. #ifdef SERIAL_FLOAT_PRECISION
  3283. #define SFP _MIN(SERIAL_FLOAT_PRECISION, 2)
  3284. #else
  3285. #define SFP 2
  3286. #endif
  3287. SERIAL_CHAR(':');
  3288. SERIAL_PRINT(c, SFP);
  3289. SERIAL_ECHOPGM(" /");
  3290. SERIAL_PRINT(t, SFP);
  3291. #if ENABLED(SHOW_TEMP_ADC_VALUES)
  3292. // Temperature MAX SPI boards do not have an OVERSAMPLENR defined
  3293. SERIAL_ECHOPGM(" (", TERN(HAS_MAXTC_LIBRARIES, k == 'T', false) ? r : r * RECIPROCAL(OVERSAMPLENR));
  3294. SERIAL_CHAR(')');
  3295. #endif
  3296. delay(2);
  3297. }
  3298. void Temperature::print_heater_states(const int8_t target_extruder
  3299. OPTARG(HAS_TEMP_REDUNDANT, const bool include_r/*=false*/)
  3300. ) {
  3301. #if HAS_TEMP_HOTEND
  3302. print_heater_state(H_NONE, degHotend(target_extruder), degTargetHotend(target_extruder) OPTARG(SHOW_TEMP_ADC_VALUES, rawHotendTemp(target_extruder)));
  3303. #endif
  3304. #if HAS_HEATED_BED
  3305. print_heater_state(H_BED, degBed(), degTargetBed() OPTARG(SHOW_TEMP_ADC_VALUES, rawBedTemp()));
  3306. #endif
  3307. #if HAS_TEMP_CHAMBER
  3308. print_heater_state(H_CHAMBER, degChamber(), TERN0(HAS_HEATED_CHAMBER, degTargetChamber()) OPTARG(SHOW_TEMP_ADC_VALUES, rawChamberTemp()));
  3309. #endif
  3310. #if HAS_TEMP_COOLER
  3311. print_heater_state(H_COOLER, degCooler(), TERN0(HAS_COOLER, degTargetCooler()) OPTARG(SHOW_TEMP_ADC_VALUES, rawCoolerTemp()));
  3312. #endif
  3313. #if HAS_TEMP_PROBE
  3314. print_heater_state(H_PROBE, degProbe(), 0 OPTARG(SHOW_TEMP_ADC_VALUES, rawProbeTemp()));
  3315. #endif
  3316. #if HAS_TEMP_BOARD
  3317. print_heater_state(H_BOARD, degBoard(), 0 OPTARG(SHOW_TEMP_ADC_VALUES, rawBoardTemp()));
  3318. #endif
  3319. #if HAS_TEMP_REDUNDANT
  3320. if (include_r) print_heater_state(H_REDUNDANT, degRedundant(), degRedundantTarget() OPTARG(SHOW_TEMP_ADC_VALUES, rawRedundantTemp()));
  3321. #endif
  3322. #if HAS_MULTI_HOTEND
  3323. HOTEND_LOOP() print_heater_state((heater_id_t)e, degHotend(e), degTargetHotend(e) OPTARG(SHOW_TEMP_ADC_VALUES, rawHotendTemp(e)));
  3324. #endif
  3325. SERIAL_ECHOPGM(" @:", getHeaterPower((heater_id_t)target_extruder));
  3326. #if HAS_HEATED_BED
  3327. SERIAL_ECHOPGM(" B@:", getHeaterPower(H_BED));
  3328. #endif
  3329. #if HAS_HEATED_CHAMBER
  3330. SERIAL_ECHOPGM(" C@:", getHeaterPower(H_CHAMBER));
  3331. #endif
  3332. #if HAS_COOLER
  3333. SERIAL_ECHOPGM(" C@:", getHeaterPower(H_COOLER));
  3334. #endif
  3335. #if HAS_MULTI_HOTEND
  3336. HOTEND_LOOP() {
  3337. SERIAL_ECHOPGM(" @", e);
  3338. SERIAL_CHAR(':');
  3339. SERIAL_ECHO(getHeaterPower((heater_id_t)e));
  3340. }
  3341. #endif
  3342. }
  3343. #if ENABLED(AUTO_REPORT_TEMPERATURES)
  3344. AutoReporter<Temperature::AutoReportTemp> Temperature::auto_reporter;
  3345. void Temperature::AutoReportTemp::report() {
  3346. print_heater_states(active_extruder OPTARG(HAS_TEMP_REDUNDANT, ENABLED(AUTO_REPORT_REDUNDANT)));
  3347. SERIAL_EOL();
  3348. }
  3349. #endif
  3350. #if HAS_HOTEND && HAS_STATUS_MESSAGE
  3351. void Temperature::set_heating_message(const uint8_t e, const bool isM104/*=false*/) {
  3352. const bool heating = isHeatingHotend(e);
  3353. ui.status_printf(0,
  3354. #if HAS_MULTI_HOTEND
  3355. F("E%c " S_FMT), '1' + e
  3356. #else
  3357. F("E1 " S_FMT)
  3358. #endif
  3359. , heating ? GET_TEXT(MSG_HEATING) : GET_TEXT(MSG_COOLING)
  3360. );
  3361. if (isM104) {
  3362. static uint8_t wait_e; wait_e = e;
  3363. ui.set_status_reset_fn([]{
  3364. const celsius_t c = degTargetHotend(wait_e);
  3365. return c < 30 || degHotendNear(wait_e, c);
  3366. });
  3367. }
  3368. }
  3369. #endif
  3370. #if HAS_TEMP_HOTEND
  3371. #ifndef MIN_COOLING_SLOPE_DEG
  3372. #define MIN_COOLING_SLOPE_DEG 1.50
  3373. #endif
  3374. #ifndef MIN_COOLING_SLOPE_TIME
  3375. #define MIN_COOLING_SLOPE_TIME 60
  3376. #endif
  3377. bool Temperature::wait_for_hotend(const uint8_t target_extruder, const bool no_wait_for_cooling/*=true*/
  3378. OPTARG(G26_CLICK_CAN_CANCEL, const bool click_to_cancel/*=false*/)
  3379. ) {
  3380. #if ENABLED(AUTOTEMP)
  3381. REMEMBER(1, planner.autotemp_enabled, false);
  3382. #endif
  3383. #if TEMP_RESIDENCY_TIME > 0
  3384. millis_t residency_start_ms = 0;
  3385. bool first_loop = true;
  3386. // Loop until the temperature has stabilized
  3387. #define TEMP_CONDITIONS (!residency_start_ms || PENDING(now, residency_start_ms + SEC_TO_MS(TEMP_RESIDENCY_TIME)))
  3388. #else
  3389. // Loop until the temperature is very close target
  3390. #define TEMP_CONDITIONS (wants_to_cool ? isCoolingHotend(target_extruder) : isHeatingHotend(target_extruder))
  3391. #endif
  3392. #if DISABLED(BUSY_WHILE_HEATING) && ENABLED(HOST_KEEPALIVE_FEATURE)
  3393. KEEPALIVE_STATE(NOT_BUSY);
  3394. #endif
  3395. #if ENABLED(PRINTER_EVENT_LEDS)
  3396. const celsius_float_t start_temp = degHotend(target_extruder);
  3397. printerEventLEDs.onHotendHeatingStart();
  3398. #endif
  3399. bool wants_to_cool = false;
  3400. celsius_float_t target_temp = -1.0, old_temp = 9999.0;
  3401. millis_t now, next_temp_ms = 0, next_cool_check_ms = 0;
  3402. wait_for_heatup = true;
  3403. do {
  3404. // Target temperature might be changed during the loop
  3405. if (target_temp != degTargetHotend(target_extruder)) {
  3406. wants_to_cool = isCoolingHotend(target_extruder);
  3407. target_temp = degTargetHotend(target_extruder);
  3408. // Exit if S<lower>, continue if S<higher>, R<lower>, or R<higher>
  3409. if (no_wait_for_cooling && wants_to_cool) break;
  3410. }
  3411. now = millis();
  3412. if (ELAPSED(now, next_temp_ms)) { // Print temp & remaining time every 1s while waiting
  3413. next_temp_ms = now + 1000UL;
  3414. print_heater_states(target_extruder);
  3415. #if TEMP_RESIDENCY_TIME > 0
  3416. SERIAL_ECHOPGM(" W:");
  3417. if (residency_start_ms)
  3418. SERIAL_ECHO(long((SEC_TO_MS(TEMP_RESIDENCY_TIME) - (now - residency_start_ms)) / 1000UL));
  3419. else
  3420. SERIAL_CHAR('?');
  3421. #endif
  3422. SERIAL_EOL();
  3423. }
  3424. idle();
  3425. gcode.reset_stepper_timeout(); // Keep steppers powered
  3426. const celsius_float_t temp = degHotend(target_extruder);
  3427. #if ENABLED(PRINTER_EVENT_LEDS)
  3428. // Gradually change LED strip from violet to red as nozzle heats up
  3429. if (!wants_to_cool) printerEventLEDs.onHotendHeating(start_temp, temp, target_temp);
  3430. #endif
  3431. #if TEMP_RESIDENCY_TIME > 0
  3432. const celsius_float_t temp_diff = ABS(target_temp - temp);
  3433. if (!residency_start_ms) {
  3434. // Start the TEMP_RESIDENCY_TIME timer when we reach target temp for the first time.
  3435. if (temp_diff < TEMP_WINDOW)
  3436. residency_start_ms = now + (first_loop ? SEC_TO_MS(TEMP_RESIDENCY_TIME) / 3 : 0);
  3437. }
  3438. else if (temp_diff > TEMP_HYSTERESIS) {
  3439. // Restart the timer whenever the temperature falls outside the hysteresis.
  3440. residency_start_ms = now;
  3441. }
  3442. first_loop = false;
  3443. #endif
  3444. // Prevent a wait-forever situation if R is misused i.e. M109 R0
  3445. if (wants_to_cool) {
  3446. // Break after MIN_COOLING_SLOPE_TIME seconds
  3447. // if the temperature did not drop at least MIN_COOLING_SLOPE_DEG
  3448. if (!next_cool_check_ms || ELAPSED(now, next_cool_check_ms)) {
  3449. if (old_temp - temp < float(MIN_COOLING_SLOPE_DEG)) break;
  3450. next_cool_check_ms = now + SEC_TO_MS(MIN_COOLING_SLOPE_TIME);
  3451. old_temp = temp;
  3452. }
  3453. }
  3454. #if G26_CLICK_CAN_CANCEL
  3455. if (click_to_cancel && ui.use_click()) {
  3456. wait_for_heatup = false;
  3457. TERN_(HAS_MARLINUI_MENU, ui.quick_feedback());
  3458. }
  3459. #endif
  3460. } while (wait_for_heatup && TEMP_CONDITIONS);
  3461. if (wait_for_heatup) {
  3462. wait_for_heatup = false;
  3463. #if HAS_DWIN_E3V2_BASIC
  3464. HMI_flag.heat_flag = 0;
  3465. duration_t elapsed = print_job_timer.duration(); // Print timer
  3466. dwin_heat_time = elapsed.value;
  3467. #else
  3468. ui.reset_status();
  3469. #endif
  3470. TERN_(PRINTER_EVENT_LEDS, printerEventLEDs.onHeatingDone());
  3471. return true;
  3472. }
  3473. return false;
  3474. }
  3475. #if ENABLED(WAIT_FOR_HOTEND)
  3476. void Temperature::wait_for_hotend_heating(const uint8_t target_extruder) {
  3477. if (isHeatingHotend(target_extruder)) {
  3478. SERIAL_ECHOLNPGM("Wait for hotend heating...");
  3479. LCD_MESSAGE(MSG_HEATING);
  3480. wait_for_hotend(target_extruder);
  3481. ui.reset_status();
  3482. }
  3483. }
  3484. #endif
  3485. #endif // HAS_TEMP_HOTEND
  3486. #if HAS_HEATED_BED
  3487. #ifndef MIN_COOLING_SLOPE_DEG_BED
  3488. #define MIN_COOLING_SLOPE_DEG_BED 1.00
  3489. #endif
  3490. #ifndef MIN_COOLING_SLOPE_TIME_BED
  3491. #define MIN_COOLING_SLOPE_TIME_BED 60
  3492. #endif
  3493. bool Temperature::wait_for_bed(const bool no_wait_for_cooling/*=true*/
  3494. OPTARG(G26_CLICK_CAN_CANCEL, const bool click_to_cancel/*=false*/)
  3495. ) {
  3496. #if TEMP_BED_RESIDENCY_TIME > 0
  3497. millis_t residency_start_ms = 0;
  3498. bool first_loop = true;
  3499. // Loop until the temperature has stabilized
  3500. #define TEMP_BED_CONDITIONS (!residency_start_ms || PENDING(now, residency_start_ms + SEC_TO_MS(TEMP_BED_RESIDENCY_TIME)))
  3501. #else
  3502. // Loop until the temperature is very close target
  3503. #define TEMP_BED_CONDITIONS (wants_to_cool ? isCoolingBed() : isHeatingBed())
  3504. #endif
  3505. #if DISABLED(BUSY_WHILE_HEATING) && ENABLED(HOST_KEEPALIVE_FEATURE)
  3506. KEEPALIVE_STATE(NOT_BUSY);
  3507. #endif
  3508. #if ENABLED(PRINTER_EVENT_LEDS)
  3509. const celsius_float_t start_temp = degBed();
  3510. printerEventLEDs.onBedHeatingStart();
  3511. #endif
  3512. bool wants_to_cool = false;
  3513. celsius_float_t target_temp = -1, old_temp = 9999;
  3514. millis_t now, next_temp_ms = 0, next_cool_check_ms = 0;
  3515. wait_for_heatup = true;
  3516. do {
  3517. // Target temperature might be changed during the loop
  3518. if (target_temp != degTargetBed()) {
  3519. wants_to_cool = isCoolingBed();
  3520. target_temp = degTargetBed();
  3521. // Exit if S<lower>, continue if S<higher>, R<lower>, or R<higher>
  3522. if (no_wait_for_cooling && wants_to_cool) break;
  3523. }
  3524. now = millis();
  3525. if (ELAPSED(now, next_temp_ms)) { //Print Temp Reading every 1 second while heating up.
  3526. next_temp_ms = now + 1000UL;
  3527. print_heater_states(active_extruder);
  3528. #if TEMP_BED_RESIDENCY_TIME > 0
  3529. SERIAL_ECHOPGM(" W:");
  3530. if (residency_start_ms)
  3531. SERIAL_ECHO(long((SEC_TO_MS(TEMP_BED_RESIDENCY_TIME) - (now - residency_start_ms)) / 1000UL));
  3532. else
  3533. SERIAL_CHAR('?');
  3534. #endif
  3535. SERIAL_EOL();
  3536. }
  3537. idle();
  3538. gcode.reset_stepper_timeout(); // Keep steppers powered
  3539. const celsius_float_t temp = degBed();
  3540. #if ENABLED(PRINTER_EVENT_LEDS)
  3541. // Gradually change LED strip from blue to violet as bed heats up
  3542. if (!wants_to_cool) printerEventLEDs.onBedHeating(start_temp, temp, target_temp);
  3543. #endif
  3544. #if TEMP_BED_RESIDENCY_TIME > 0
  3545. const celsius_float_t temp_diff = ABS(target_temp - temp);
  3546. if (!residency_start_ms) {
  3547. // Start the TEMP_BED_RESIDENCY_TIME timer when we reach target temp for the first time.
  3548. if (temp_diff < TEMP_BED_WINDOW)
  3549. residency_start_ms = now + (first_loop ? SEC_TO_MS(TEMP_BED_RESIDENCY_TIME) / 3 : 0);
  3550. }
  3551. else if (temp_diff > TEMP_BED_HYSTERESIS) {
  3552. // Restart the timer whenever the temperature falls outside the hysteresis.
  3553. residency_start_ms = now;
  3554. }
  3555. #endif // TEMP_BED_RESIDENCY_TIME > 0
  3556. // Prevent a wait-forever situation if R is misused i.e. M190 R0
  3557. if (wants_to_cool) {
  3558. // Break after MIN_COOLING_SLOPE_TIME_BED seconds
  3559. // if the temperature did not drop at least MIN_COOLING_SLOPE_DEG_BED
  3560. if (!next_cool_check_ms || ELAPSED(now, next_cool_check_ms)) {
  3561. if (old_temp - temp < float(MIN_COOLING_SLOPE_DEG_BED)) break;
  3562. next_cool_check_ms = now + SEC_TO_MS(MIN_COOLING_SLOPE_TIME_BED);
  3563. old_temp = temp;
  3564. }
  3565. }
  3566. #if G26_CLICK_CAN_CANCEL
  3567. if (click_to_cancel && ui.use_click()) {
  3568. wait_for_heatup = false;
  3569. TERN_(HAS_MARLINUI_MENU, ui.quick_feedback());
  3570. }
  3571. #endif
  3572. #if TEMP_BED_RESIDENCY_TIME > 0
  3573. first_loop = false;
  3574. #endif
  3575. } while (wait_for_heatup && TEMP_BED_CONDITIONS);
  3576. if (wait_for_heatup) {
  3577. wait_for_heatup = false;
  3578. ui.reset_status();
  3579. return true;
  3580. }
  3581. return false;
  3582. }
  3583. void Temperature::wait_for_bed_heating() {
  3584. if (isHeatingBed()) {
  3585. SERIAL_ECHOLNPGM("Wait for bed heating...");
  3586. LCD_MESSAGE(MSG_BED_HEATING);
  3587. wait_for_bed();
  3588. ui.reset_status();
  3589. }
  3590. }
  3591. #endif // HAS_HEATED_BED
  3592. #if HAS_TEMP_PROBE
  3593. #ifndef MIN_DELTA_SLOPE_DEG_PROBE
  3594. #define MIN_DELTA_SLOPE_DEG_PROBE 1.0
  3595. #endif
  3596. #ifndef MIN_DELTA_SLOPE_TIME_PROBE
  3597. #define MIN_DELTA_SLOPE_TIME_PROBE 600
  3598. #endif
  3599. bool Temperature::wait_for_probe(const celsius_t target_temp, bool no_wait_for_cooling/*=true*/) {
  3600. const bool wants_to_cool = isProbeAboveTemp(target_temp),
  3601. will_wait = !(wants_to_cool && no_wait_for_cooling);
  3602. if (will_wait)
  3603. SERIAL_ECHOLNPGM("Waiting for probe to ", wants_to_cool ? F("cool down") : F("heat up"), " to ", target_temp, " degrees.");
  3604. #if DISABLED(BUSY_WHILE_HEATING) && ENABLED(HOST_KEEPALIVE_FEATURE)
  3605. KEEPALIVE_STATE(NOT_BUSY);
  3606. #endif
  3607. float old_temp = 9999;
  3608. millis_t next_temp_ms = 0, next_delta_check_ms = 0;
  3609. wait_for_heatup = true;
  3610. while (will_wait && wait_for_heatup) {
  3611. // Print Temp Reading every 10 seconds while heating up.
  3612. millis_t now = millis();
  3613. if (!next_temp_ms || ELAPSED(now, next_temp_ms)) {
  3614. next_temp_ms = now + 10000UL;
  3615. print_heater_states(active_extruder);
  3616. SERIAL_EOL();
  3617. }
  3618. idle();
  3619. gcode.reset_stepper_timeout(); // Keep steppers powered
  3620. // Break after MIN_DELTA_SLOPE_TIME_PROBE seconds if the temperature
  3621. // did not drop at least MIN_DELTA_SLOPE_DEG_PROBE. This avoids waiting
  3622. // forever as the probe is not actively heated.
  3623. if (!next_delta_check_ms || ELAPSED(now, next_delta_check_ms)) {
  3624. const float temp = degProbe(),
  3625. delta_temp = old_temp > temp ? old_temp - temp : temp - old_temp;
  3626. if (delta_temp < float(MIN_DELTA_SLOPE_DEG_PROBE)) {
  3627. SERIAL_ECHOLNPGM("Timed out waiting for probe temperature.");
  3628. break;
  3629. }
  3630. next_delta_check_ms = now + SEC_TO_MS(MIN_DELTA_SLOPE_TIME_PROBE);
  3631. old_temp = temp;
  3632. }
  3633. // Loop until the temperature is very close target
  3634. if (!(wants_to_cool ? isProbeAboveTemp(target_temp) : isProbeBelowTemp(target_temp))) {
  3635. SERIAL_ECHOLN(wants_to_cool ? PSTR("Cooldown") : PSTR("Heatup"));
  3636. SERIAL_ECHOLNPGM(" complete, target probe temperature reached.");
  3637. break;
  3638. }
  3639. }
  3640. if (wait_for_heatup) {
  3641. wait_for_heatup = false;
  3642. ui.reset_status();
  3643. return true;
  3644. }
  3645. else if (will_wait)
  3646. SERIAL_ECHOLNPGM("Canceled wait for probe temperature.");
  3647. return false;
  3648. }
  3649. #endif // HAS_TEMP_PROBE
  3650. #if HAS_HEATED_CHAMBER
  3651. #ifndef MIN_COOLING_SLOPE_DEG_CHAMBER
  3652. #define MIN_COOLING_SLOPE_DEG_CHAMBER 1.50
  3653. #endif
  3654. #ifndef MIN_COOLING_SLOPE_TIME_CHAMBER
  3655. #define MIN_COOLING_SLOPE_TIME_CHAMBER 120
  3656. #endif
  3657. bool Temperature::wait_for_chamber(const bool no_wait_for_cooling/*=true*/) {
  3658. #if TEMP_CHAMBER_RESIDENCY_TIME > 0
  3659. millis_t residency_start_ms = 0;
  3660. bool first_loop = true;
  3661. // Loop until the temperature has stabilized
  3662. #define TEMP_CHAMBER_CONDITIONS (!residency_start_ms || PENDING(now, residency_start_ms + SEC_TO_MS(TEMP_CHAMBER_RESIDENCY_TIME)))
  3663. #else
  3664. // Loop until the temperature is very close target
  3665. #define TEMP_CHAMBER_CONDITIONS (wants_to_cool ? isCoolingChamber() : isHeatingChamber())
  3666. #endif
  3667. #if DISABLED(BUSY_WHILE_HEATING) && ENABLED(HOST_KEEPALIVE_FEATURE)
  3668. KEEPALIVE_STATE(NOT_BUSY);
  3669. #endif
  3670. bool wants_to_cool = false;
  3671. float target_temp = -1, old_temp = 9999;
  3672. millis_t now, next_temp_ms = 0, next_cool_check_ms = 0;
  3673. wait_for_heatup = true;
  3674. do {
  3675. // Target temperature might be changed during the loop
  3676. if (target_temp != degTargetChamber()) {
  3677. wants_to_cool = isCoolingChamber();
  3678. target_temp = degTargetChamber();
  3679. // Exit if S<lower>, continue if S<higher>, R<lower>, or R<higher>
  3680. if (no_wait_for_cooling && wants_to_cool) break;
  3681. }
  3682. now = millis();
  3683. if (ELAPSED(now, next_temp_ms)) { // Print Temp Reading every 1 second while heating up.
  3684. next_temp_ms = now + 1000UL;
  3685. print_heater_states(active_extruder);
  3686. #if TEMP_CHAMBER_RESIDENCY_TIME > 0
  3687. SERIAL_ECHOPGM(" W:");
  3688. if (residency_start_ms)
  3689. SERIAL_ECHO(long((SEC_TO_MS(TEMP_CHAMBER_RESIDENCY_TIME) - (now - residency_start_ms)) / 1000UL));
  3690. else
  3691. SERIAL_CHAR('?');
  3692. #endif
  3693. SERIAL_EOL();
  3694. }
  3695. idle();
  3696. gcode.reset_stepper_timeout(); // Keep steppers powered
  3697. const float temp = degChamber();
  3698. #if TEMP_CHAMBER_RESIDENCY_TIME > 0
  3699. const float temp_diff = ABS(target_temp - temp);
  3700. if (!residency_start_ms) {
  3701. // Start the TEMP_CHAMBER_RESIDENCY_TIME timer when we reach target temp for the first time.
  3702. if (temp_diff < TEMP_CHAMBER_WINDOW)
  3703. residency_start_ms = now + (first_loop ? SEC_TO_MS(TEMP_CHAMBER_RESIDENCY_TIME) / 3 : 0);
  3704. }
  3705. else if (temp_diff > TEMP_CHAMBER_HYSTERESIS) {
  3706. // Restart the timer whenever the temperature falls outside the hysteresis.
  3707. residency_start_ms = now;
  3708. }
  3709. first_loop = false;
  3710. #endif // TEMP_CHAMBER_RESIDENCY_TIME > 0
  3711. // Prevent a wait-forever situation if R is misused i.e. M191 R0
  3712. if (wants_to_cool) {
  3713. // Break after MIN_COOLING_SLOPE_TIME_CHAMBER seconds
  3714. // if the temperature did not drop at least MIN_COOLING_SLOPE_DEG_CHAMBER
  3715. if (!next_cool_check_ms || ELAPSED(now, next_cool_check_ms)) {
  3716. if (old_temp - temp < float(MIN_COOLING_SLOPE_DEG_CHAMBER)) break;
  3717. next_cool_check_ms = now + SEC_TO_MS(MIN_COOLING_SLOPE_TIME_CHAMBER);
  3718. old_temp = temp;
  3719. }
  3720. }
  3721. } while (wait_for_heatup && TEMP_CHAMBER_CONDITIONS);
  3722. if (wait_for_heatup) {
  3723. wait_for_heatup = false;
  3724. ui.reset_status();
  3725. return true;
  3726. }
  3727. return false;
  3728. }
  3729. #endif // HAS_HEATED_CHAMBER
  3730. #if HAS_COOLER
  3731. #ifndef MIN_COOLING_SLOPE_DEG_COOLER
  3732. #define MIN_COOLING_SLOPE_DEG_COOLER 1.50
  3733. #endif
  3734. #ifndef MIN_COOLING_SLOPE_TIME_COOLER
  3735. #define MIN_COOLING_SLOPE_TIME_COOLER 120
  3736. #endif
  3737. bool Temperature::wait_for_cooler(const bool no_wait_for_cooling/*=true*/) {
  3738. #if TEMP_COOLER_RESIDENCY_TIME > 0
  3739. millis_t residency_start_ms = 0;
  3740. bool first_loop = true;
  3741. // Loop until the temperature has stabilized
  3742. #define TEMP_COOLER_CONDITIONS (!residency_start_ms || PENDING(now, residency_start_ms + SEC_TO_MS(TEMP_COOLER_RESIDENCY_TIME)))
  3743. #else
  3744. // Loop until the temperature is very close target
  3745. #define TEMP_COOLER_CONDITIONS (wants_to_cool ? isLaserHeating() : isLaserCooling())
  3746. #endif
  3747. #if DISABLED(BUSY_WHILE_HEATING) && ENABLED(HOST_KEEPALIVE_FEATURE)
  3748. KEEPALIVE_STATE(NOT_BUSY);
  3749. #endif
  3750. bool wants_to_cool = false;
  3751. float target_temp = -1, previous_temp = 9999;
  3752. millis_t now, next_temp_ms = 0, next_cooling_check_ms = 0;
  3753. wait_for_heatup = true;
  3754. do {
  3755. // Target temperature might be changed during the loop
  3756. if (target_temp != degTargetCooler()) {
  3757. wants_to_cool = isLaserHeating();
  3758. target_temp = degTargetCooler();
  3759. // Exit if S<lower>, continue if S<higher>, R<lower>, or R<higher>
  3760. if (no_wait_for_cooling && wants_to_cool) break;
  3761. }
  3762. now = millis();
  3763. if (ELAPSED(now, next_temp_ms)) { // Print Temp Reading every 1 second while heating up.
  3764. next_temp_ms = now + 1000UL;
  3765. print_heater_states(active_extruder);
  3766. #if TEMP_COOLER_RESIDENCY_TIME > 0
  3767. SERIAL_ECHOPGM(" W:");
  3768. if (residency_start_ms)
  3769. SERIAL_ECHO(long((SEC_TO_MS(TEMP_COOLER_RESIDENCY_TIME) - (now - residency_start_ms)) / 1000UL));
  3770. else
  3771. SERIAL_CHAR('?');
  3772. #endif
  3773. SERIAL_EOL();
  3774. }
  3775. idle();
  3776. gcode.reset_stepper_timeout(); // Keep steppers powered
  3777. const celsius_float_t current_temp = degCooler();
  3778. #if TEMP_COOLER_RESIDENCY_TIME > 0
  3779. const celsius_float_t temp_diff = ABS(target_temp - temp);
  3780. if (!residency_start_ms) {
  3781. // Start the TEMP_COOLER_RESIDENCY_TIME timer when we reach target temp for the first time.
  3782. if (temp_diff < TEMP_COOLER_WINDOW)
  3783. residency_start_ms = now + (first_loop ? SEC_TO_MS(TEMP_COOLER_RESIDENCY_TIME) / 3 : 0);
  3784. }
  3785. else if (temp_diff > TEMP_COOLER_HYSTERESIS) {
  3786. // Restart the timer whenever the temperature falls outside the hysteresis.
  3787. residency_start_ms = now;
  3788. }
  3789. first_loop = false;
  3790. #endif // TEMP_COOLER_RESIDENCY_TIME > 0
  3791. if (wants_to_cool) {
  3792. // Break after MIN_COOLING_SLOPE_TIME_CHAMBER seconds
  3793. // if the temperature did not drop at least MIN_COOLING_SLOPE_DEG_CHAMBER
  3794. if (!next_cooling_check_ms || ELAPSED(now, next_cooling_check_ms)) {
  3795. if (previous_temp - current_temp < float(MIN_COOLING_SLOPE_DEG_COOLER)) break;
  3796. next_cooling_check_ms = now + SEC_TO_MS(MIN_COOLING_SLOPE_TIME_COOLER);
  3797. previous_temp = current_temp;
  3798. }
  3799. }
  3800. } while (wait_for_heatup && TEMP_COOLER_CONDITIONS);
  3801. // Prevent a wait-forever situation if R is misused i.e. M191 R0
  3802. if (wait_for_heatup) {
  3803. wait_for_heatup = false;
  3804. ui.reset_status();
  3805. return true;
  3806. }
  3807. return false;
  3808. }
  3809. #endif // HAS_COOLER
  3810. #endif // HAS_TEMP_SENSOR