My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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stepper.cpp 50KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (C) 2016 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 <http://www.gnu.org/licenses/>.
  20. *
  21. */
  22. /**
  23. * stepper.cpp - A singleton object to execute motion plans using stepper motors
  24. * Marlin Firmware
  25. *
  26. * Derived from Grbl
  27. * Copyright (c) 2009-2011 Simen Svale Skogsrud
  28. *
  29. * Grbl is free software: you can redistribute it and/or modify
  30. * it under the terms of the GNU General Public License as published by
  31. * the Free Software Foundation, either version 3 of the License, or
  32. * (at your option) any later version.
  33. *
  34. * Grbl is distributed in the hope that it will be useful,
  35. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  36. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  37. * GNU General Public License for more details.
  38. *
  39. * You should have received a copy of the GNU General Public License
  40. * along with Grbl. If not, see <http://www.gnu.org/licenses/>.
  41. */
  42. /* The timer calculations of this module informed by the 'RepRap cartesian firmware' by Zack Smith
  43. and Philipp Tiefenbacher. */
  44. #include "stepper.h"
  45. #ifdef __AVR__
  46. #include "speed_lookuptable.h"
  47. #endif
  48. #include "endstops.h"
  49. #include "planner.h"
  50. #include "motion.h"
  51. #include "../module/temperature.h"
  52. #include "../lcd/ultralcd.h"
  53. #include "../core/language.h"
  54. #include "../gcode/queue.h"
  55. #include "../sd/cardreader.h"
  56. #include "../Marlin.h"
  57. #if MB(ALLIGATOR)
  58. #include "../feature/dac/dac_dac084s085.h"
  59. #endif
  60. #if HAS_LEVELING
  61. #include "../feature/bedlevel/bedlevel.h"
  62. #endif
  63. #if HAS_DIGIPOTSS
  64. #include <SPI.h>
  65. #endif
  66. Stepper stepper; // Singleton
  67. // public:
  68. block_t* Stepper::current_block = NULL; // A pointer to the block currently being traced
  69. #if ENABLED(ABORT_ON_ENDSTOP_HIT_FEATURE_ENABLED)
  70. bool Stepper::abort_on_endstop_hit = false;
  71. #endif
  72. #if ENABLED(X_DUAL_ENDSTOPS) || ENABLED(Y_DUAL_ENDSTOPS) || ENABLED(Z_DUAL_ENDSTOPS)
  73. bool Stepper::performing_homing = false;
  74. #endif
  75. #if HAS_MOTOR_CURRENT_PWM
  76. uint32_t Stepper::motor_current_setting[3]; // Initialized by settings.load()
  77. #endif
  78. // private:
  79. uint8_t Stepper::last_direction_bits = 0; // The next stepping-bits to be output
  80. int16_t Stepper::cleaning_buffer_counter = 0;
  81. #if ENABLED(X_DUAL_ENDSTOPS)
  82. bool Stepper::locked_x_motor = false, Stepper::locked_x2_motor = false;
  83. #endif
  84. #if ENABLED(Y_DUAL_ENDSTOPS)
  85. bool Stepper::locked_y_motor = false, Stepper::locked_y2_motor = false;
  86. #endif
  87. #if ENABLED(Z_DUAL_ENDSTOPS)
  88. bool Stepper::locked_z_motor = false, Stepper::locked_z2_motor = false;
  89. #endif
  90. long Stepper::counter_X = 0,
  91. Stepper::counter_Y = 0,
  92. Stepper::counter_Z = 0,
  93. Stepper::counter_E = 0;
  94. volatile uint32_t Stepper::step_events_completed = 0; // The number of step events executed in the current block
  95. #if ENABLED(LIN_ADVANCE)
  96. constexpr hal_timer_t ADV_NEVER = HAL_TIMER_TYPE_MAX;
  97. hal_timer_t Stepper::nextMainISR = 0,
  98. Stepper::nextAdvanceISR = ADV_NEVER,
  99. Stepper::eISR_Rate = ADV_NEVER;
  100. volatile int Stepper::e_steps[E_STEPPERS];
  101. int Stepper::final_estep_rate,
  102. Stepper::current_estep_rate[E_STEPPERS],
  103. Stepper::current_adv_steps[E_STEPPERS];
  104. /**
  105. * See https://github.com/MarlinFirmware/Marlin/issues/5699#issuecomment-309264382
  106. *
  107. * This fix isn't perfect and may lose steps - but better than locking up completely
  108. * in future the planner should slow down if advance stepping rate would be too high
  109. */
  110. FORCE_INLINE hal_timer_t adv_rate(const int steps, const hal_timer_t timer, const uint8_t loops) {
  111. if (steps) {
  112. const hal_timer_t rate = (timer * loops) / abs(steps);
  113. //return constrain(rate, 1, ADV_NEVER - 1)
  114. return rate ? rate : 1;
  115. }
  116. return ADV_NEVER;
  117. }
  118. #endif // LIN_ADVANCE
  119. long Stepper::acceleration_time, Stepper::deceleration_time;
  120. volatile long Stepper::count_position[NUM_AXIS] = { 0 };
  121. volatile signed char Stepper::count_direction[NUM_AXIS] = { 1, 1, 1, 1 };
  122. #if ENABLED(MIXING_EXTRUDER)
  123. long Stepper::counter_m[MIXING_STEPPERS];
  124. #endif
  125. uint8_t Stepper::step_loops, Stepper::step_loops_nominal;
  126. hal_timer_t Stepper::OCR1A_nominal,
  127. Stepper::acc_step_rate; // needed for deceleration start point
  128. volatile long Stepper::endstops_trigsteps[XYZ];
  129. #if ENABLED(X_DUAL_ENDSTOPS) || ENABLED(Y_DUAL_ENDSTOPS) || ENABLED(Z_DUAL_ENDSTOPS)
  130. #define LOCKED_X_MOTOR locked_x_motor
  131. #define LOCKED_Y_MOTOR locked_y_motor
  132. #define LOCKED_Z_MOTOR locked_z_motor
  133. #define LOCKED_X2_MOTOR locked_x2_motor
  134. #define LOCKED_Y2_MOTOR locked_y2_motor
  135. #define LOCKED_Z2_MOTOR locked_z2_motor
  136. #define DUAL_ENDSTOP_APPLY_STEP(AXIS,v) \
  137. if (performing_homing) { \
  138. if (AXIS##_HOME_DIR < 0) { \
  139. if (!(TEST(endstops.old_endstop_bits, AXIS##_MIN) && (count_direction[AXIS##_AXIS] < 0)) && !LOCKED_##AXIS##_MOTOR) AXIS##_STEP_WRITE(v); \
  140. if (!(TEST(endstops.old_endstop_bits, AXIS##2_MIN) && (count_direction[AXIS##_AXIS] < 0)) && !LOCKED_##AXIS##2_MOTOR) AXIS##2_STEP_WRITE(v); \
  141. } \
  142. else { \
  143. if (!(TEST(endstops.old_endstop_bits, AXIS##_MAX) && (count_direction[AXIS##_AXIS] > 0)) && !LOCKED_##AXIS##_MOTOR) AXIS##_STEP_WRITE(v); \
  144. if (!(TEST(endstops.old_endstop_bits, AXIS##2_MAX) && (count_direction[AXIS##_AXIS] > 0)) && !LOCKED_##AXIS##2_MOTOR) AXIS##2_STEP_WRITE(v); \
  145. } \
  146. } \
  147. else { \
  148. AXIS##_STEP_WRITE(v); \
  149. AXIS##2_STEP_WRITE(v); \
  150. }
  151. #endif
  152. #if ENABLED(X_DUAL_STEPPER_DRIVERS)
  153. #define X_APPLY_DIR(v,Q) do{ X_DIR_WRITE(v); X2_DIR_WRITE((v) != INVERT_X2_VS_X_DIR); }while(0)
  154. #if ENABLED(DUAL_X_CARRIAGE)
  155. #define X_APPLY_DIR(v,ALWAYS) \
  156. if (extruder_duplication_enabled || ALWAYS) { \
  157. X_DIR_WRITE(v); \
  158. X2_DIR_WRITE(v); \
  159. } \
  160. else { \
  161. if (current_block->active_extruder) X2_DIR_WRITE(v); else X_DIR_WRITE(v); \
  162. }
  163. #define X_APPLY_STEP(v,ALWAYS) \
  164. if (extruder_duplication_enabled || ALWAYS) { \
  165. X_STEP_WRITE(v); \
  166. X2_STEP_WRITE(v); \
  167. } \
  168. else { \
  169. if (current_block->active_extruder) X2_STEP_WRITE(v); else X_STEP_WRITE(v); \
  170. }
  171. #elif ENABLED(X_DUAL_ENDSTOPS)
  172. #define X_APPLY_STEP(v,Q) DUAL_ENDSTOP_APPLY_STEP(X,v)
  173. #else
  174. #define X_APPLY_STEP(v,Q) do{ X_STEP_WRITE(v); X2_STEP_WRITE(v); }while(0)
  175. #endif
  176. #else
  177. #define X_APPLY_DIR(v,Q) X_DIR_WRITE(v)
  178. #define X_APPLY_STEP(v,Q) X_STEP_WRITE(v)
  179. #endif
  180. #if ENABLED(Y_DUAL_STEPPER_DRIVERS)
  181. #define Y_APPLY_DIR(v,Q) do{ Y_DIR_WRITE(v); Y2_DIR_WRITE((v) != INVERT_Y2_VS_Y_DIR); }while(0)
  182. #if ENABLED(Y_DUAL_ENDSTOPS)
  183. #define Y_APPLY_STEP(v,Q) DUAL_ENDSTOP_APPLY_STEP(Y,v)
  184. #else
  185. #define Y_APPLY_STEP(v,Q) do{ Y_STEP_WRITE(v); Y2_STEP_WRITE(v); }while(0)
  186. #endif
  187. #else
  188. #define Y_APPLY_DIR(v,Q) Y_DIR_WRITE(v)
  189. #define Y_APPLY_STEP(v,Q) Y_STEP_WRITE(v)
  190. #endif
  191. #if ENABLED(Z_DUAL_STEPPER_DRIVERS)
  192. #define Z_APPLY_DIR(v,Q) do{ Z_DIR_WRITE(v); Z2_DIR_WRITE(v); }while(0)
  193. #if ENABLED(Z_DUAL_ENDSTOPS)
  194. #define Z_APPLY_STEP(v,Q) DUAL_ENDSTOP_APPLY_STEP(Z,v)
  195. #else
  196. #define Z_APPLY_STEP(v,Q) do{ Z_STEP_WRITE(v); Z2_STEP_WRITE(v); }while(0)
  197. #endif
  198. #else
  199. #define Z_APPLY_DIR(v,Q) Z_DIR_WRITE(v)
  200. #define Z_APPLY_STEP(v,Q) Z_STEP_WRITE(v)
  201. #endif
  202. #if DISABLED(MIXING_EXTRUDER)
  203. #define E_APPLY_STEP(v,Q) E_STEP_WRITE(v)
  204. #endif
  205. /**
  206. * __________________________
  207. * /| |\ _________________ ^
  208. * / | | \ /| |\ |
  209. * / | | \ / | | \ s
  210. * / | | | | | \ p
  211. * / | | | | | \ e
  212. * +-----+------------------------+---+--+---------------+----+ e
  213. * | BLOCK 1 | BLOCK 2 | d
  214. *
  215. * time ----->
  216. *
  217. * The trapezoid is the shape the speed curve over time. It starts at block->initial_rate, accelerates
  218. * first block->accelerate_until step_events_completed, then keeps going at constant speed until
  219. * step_events_completed reaches block->decelerate_after after which it decelerates until the trapezoid generator is reset.
  220. * The slope of acceleration is calculated using v = u + at where t is the accumulated timer values of the steps so far.
  221. */
  222. void Stepper::wake_up() {
  223. // TCNT1 = 0;
  224. ENABLE_STEPPER_DRIVER_INTERRUPT();
  225. }
  226. /**
  227. * Set the stepper direction of each axis
  228. *
  229. * COREXY: X_AXIS=A_AXIS and Y_AXIS=B_AXIS
  230. * COREXZ: X_AXIS=A_AXIS and Z_AXIS=C_AXIS
  231. * COREYZ: Y_AXIS=B_AXIS and Z_AXIS=C_AXIS
  232. */
  233. void Stepper::set_directions() {
  234. #define SET_STEP_DIR(AXIS) \
  235. if (motor_direction(AXIS ##_AXIS)) { \
  236. AXIS ##_APPLY_DIR(INVERT_## AXIS ##_DIR, false); \
  237. count_direction[AXIS ##_AXIS] = -1; \
  238. } \
  239. else { \
  240. AXIS ##_APPLY_DIR(!INVERT_## AXIS ##_DIR, false); \
  241. count_direction[AXIS ##_AXIS] = 1; \
  242. }
  243. #if HAS_X_DIR
  244. SET_STEP_DIR(X); // A
  245. #endif
  246. #if HAS_Y_DIR
  247. SET_STEP_DIR(Y); // B
  248. #endif
  249. #if HAS_Z_DIR
  250. SET_STEP_DIR(Z); // C
  251. #endif
  252. #if DISABLED(LIN_ADVANCE)
  253. if (motor_direction(E_AXIS)) {
  254. REV_E_DIR();
  255. count_direction[E_AXIS] = -1;
  256. }
  257. else {
  258. NORM_E_DIR();
  259. count_direction[E_AXIS] = 1;
  260. }
  261. #endif // !LIN_ADVANCE
  262. }
  263. #if ENABLED(ENDSTOP_INTERRUPTS_FEATURE)
  264. extern volatile uint8_t e_hit;
  265. #endif
  266. /**
  267. * Stepper Driver Interrupt
  268. *
  269. * Directly pulses the stepper motors at high frequency.
  270. *
  271. * AVR :
  272. * Timer 1 runs at a base frequency of 2MHz, with this ISR using OCR1A compare mode.
  273. *
  274. * OCR1A Frequency
  275. * 1 2 MHz
  276. * 50 40 KHz
  277. * 100 20 KHz - capped max rate
  278. * 200 10 KHz - nominal max rate
  279. * 2000 1 KHz - sleep rate
  280. * 4000 500 Hz - init rate
  281. */
  282. HAL_STEP_TIMER_ISR {
  283. HAL_timer_isr_prologue(STEP_TIMER_NUM);
  284. #if ENABLED(LIN_ADVANCE)
  285. Stepper::advance_isr_scheduler();
  286. #else
  287. Stepper::isr();
  288. #endif
  289. }
  290. void Stepper::isr() {
  291. #define ENDSTOP_NOMINAL_OCR_VAL 1500 * HAL_TICKS_PER_US // Check endstops every 1.5ms to guarantee two stepper ISRs within 5ms for BLTouch
  292. #define OCR_VAL_TOLERANCE 500 * HAL_TICKS_PER_US // First max delay is 2.0ms, last min delay is 0.5ms, all others 1.5ms
  293. #if DISABLED(LIN_ADVANCE)
  294. // Disable Timer0 ISRs and enable global ISR again to capture UART events (incoming chars)
  295. DISABLE_TEMPERATURE_INTERRUPT(); // Temperature ISR
  296. DISABLE_STEPPER_DRIVER_INTERRUPT();
  297. #ifndef CPU_32_BIT
  298. sei();
  299. #endif
  300. #endif
  301. hal_timer_t ocr_val;
  302. static uint32_t step_remaining = 0; // SPLIT function always runs. This allows 16 bit timers to be
  303. // used to generate the stepper ISR.
  304. #define SPLIT(L) do { \
  305. if (L > ENDSTOP_NOMINAL_OCR_VAL) { \
  306. const uint32_t remainder = (uint32_t)L % (ENDSTOP_NOMINAL_OCR_VAL); \
  307. ocr_val = (remainder < OCR_VAL_TOLERANCE) ? ENDSTOP_NOMINAL_OCR_VAL + remainder : ENDSTOP_NOMINAL_OCR_VAL; \
  308. step_remaining = (uint32_t)L - ocr_val; \
  309. } \
  310. else \
  311. ocr_val = L;\
  312. }while(0)
  313. // Time remaining before the next step?
  314. if (step_remaining) {
  315. // Make sure endstops are updated
  316. if (ENDSTOPS_ENABLED) endstops.update();
  317. // Next ISR either for endstops or stepping
  318. ocr_val = step_remaining <= ENDSTOP_NOMINAL_OCR_VAL ? step_remaining : ENDSTOP_NOMINAL_OCR_VAL;
  319. step_remaining -= ocr_val;
  320. _NEXT_ISR(ocr_val);
  321. #if DISABLED(LIN_ADVANCE)
  322. #ifdef CPU_32_BIT
  323. HAL_timer_set_count(STEP_TIMER_NUM, ocr_val);
  324. #else
  325. NOLESS(OCR1A, TCNT1 + 16);
  326. #endif
  327. HAL_ENABLE_ISRs(); // re-enable ISRs
  328. #endif
  329. return;
  330. }
  331. //
  332. // When cleaning, discard the current block and run fast
  333. //
  334. if (cleaning_buffer_counter) {
  335. if (cleaning_buffer_counter < 0) { // Count up for endstop hit
  336. if (current_block) planner.discard_current_block(); // Discard the active block that led to the trigger
  337. if (!planner.discard_continued_block()) // Discard next CONTINUED block
  338. cleaning_buffer_counter = 0; // Keep discarding until non-CONTINUED
  339. }
  340. else {
  341. planner.discard_current_block();
  342. --cleaning_buffer_counter; // Count down for abort print
  343. #ifdef SD_FINISHED_RELEASECOMMAND
  344. if (!cleaning_buffer_counter && (SD_FINISHED_STEPPERRELEASE)) enqueue_and_echo_commands_P(PSTR(SD_FINISHED_RELEASECOMMAND));
  345. #endif
  346. }
  347. current_block = NULL; // Prep to get a new block after cleaning
  348. _NEXT_ISR(HAL_STEPPER_TIMER_RATE / 10000); // Run at max speed - 10 KHz
  349. HAL_ENABLE_ISRs();
  350. return;
  351. }
  352. // If there is no current block, attempt to pop one from the buffer
  353. bool first_step = false;
  354. if (!current_block) {
  355. // Anything in the buffer?
  356. if ((current_block = planner.get_current_block())) {
  357. trapezoid_generator_reset();
  358. HAL_timer_set_current_count(STEP_TIMER_NUM, 0);
  359. first_step = true;
  360. // Initialize Bresenham counters to 1/2 the ceiling
  361. counter_X = counter_Y = counter_Z = counter_E = -(current_block->step_event_count >> 1);
  362. #if ENABLED(MIXING_EXTRUDER)
  363. MIXING_STEPPERS_LOOP(i)
  364. counter_m[i] = -(current_block->mix_event_count[i] >> 1);
  365. #endif
  366. step_events_completed = 0;
  367. #if ENABLED(ENDSTOP_INTERRUPTS_FEATURE)
  368. e_hit = 2; // Needed for the case an endstop is already triggered before the new move begins.
  369. // No 'change' can be detected.
  370. #endif
  371. #if ENABLED(Z_LATE_ENABLE)
  372. if (current_block->steps[Z_AXIS] > 0) {
  373. enable_Z();
  374. _NEXT_ISR(HAL_STEPPER_TIMER_RATE / 1000); // Run at slow speed - 1 KHz
  375. HAL_ENABLE_ISRs(); // re-enable ISRs
  376. return;
  377. }
  378. #endif
  379. }
  380. else {
  381. _NEXT_ISR(HAL_STEPPER_TIMER_RATE / 1000); // Run at slow speed - 1 KHz
  382. HAL_ENABLE_ISRs(); // re-enable ISRs
  383. return;
  384. }
  385. }
  386. // Update endstops state, if enabled
  387. #if ENABLED(ENDSTOP_INTERRUPTS_FEATURE)
  388. if (e_hit && ENDSTOPS_ENABLED) {
  389. endstops.update();
  390. e_hit--;
  391. }
  392. #else
  393. if (ENDSTOPS_ENABLED) endstops.update();
  394. #endif
  395. // Take multiple steps per interrupt (For high speed moves)
  396. bool all_steps_done = false;
  397. for (uint8_t i = step_loops; i--;) {
  398. #if ENABLED(LIN_ADVANCE)
  399. counter_E += current_block->steps[E_AXIS];
  400. if (counter_E > 0) {
  401. counter_E -= current_block->step_event_count;
  402. #if DISABLED(MIXING_EXTRUDER)
  403. // Don't step E here for mixing extruder
  404. count_position[E_AXIS] += count_direction[E_AXIS];
  405. motor_direction(E_AXIS) ? --e_steps[TOOL_E_INDEX] : ++e_steps[TOOL_E_INDEX];
  406. #endif
  407. }
  408. #if ENABLED(MIXING_EXTRUDER)
  409. // Step mixing steppers proportionally
  410. const bool dir = motor_direction(E_AXIS);
  411. MIXING_STEPPERS_LOOP(j) {
  412. counter_m[j] += current_block->steps[E_AXIS];
  413. if (counter_m[j] > 0) {
  414. counter_m[j] -= current_block->mix_event_count[j];
  415. dir ? --e_steps[j] : ++e_steps[j];
  416. }
  417. }
  418. #endif
  419. #endif // LIN_ADVANCE
  420. #define _COUNTER(AXIS) counter_## AXIS
  421. #define _APPLY_STEP(AXIS) AXIS ##_APPLY_STEP
  422. #define _INVERT_STEP_PIN(AXIS) INVERT_## AXIS ##_STEP_PIN
  423. // Advance the Bresenham counter; start a pulse if the axis needs a step
  424. #define PULSE_START(AXIS) \
  425. _COUNTER(AXIS) += current_block->steps[_AXIS(AXIS)]; \
  426. if (_COUNTER(AXIS) > 0) { _APPLY_STEP(AXIS)(!_INVERT_STEP_PIN(AXIS),0); }
  427. // Stop an active pulse, reset the Bresenham counter, update the position
  428. #define PULSE_STOP(AXIS) \
  429. if (_COUNTER(AXIS) > 0) { \
  430. _COUNTER(AXIS) -= current_block->step_event_count; \
  431. count_position[_AXIS(AXIS)] += count_direction[_AXIS(AXIS)]; \
  432. _APPLY_STEP(AXIS)(_INVERT_STEP_PIN(AXIS),0); \
  433. }
  434. /**
  435. * Estimate the number of cycles that the stepper logic already takes
  436. * up between the start and stop of the X stepper pulse.
  437. *
  438. * Currently this uses very modest estimates of around 5 cycles.
  439. * True values may be derived by careful testing.
  440. *
  441. * Once any delay is added, the cost of the delay code itself
  442. * may be subtracted from this value to get a more accurate delay.
  443. * Delays under 20 cycles (1.25µs) will be very accurate, using NOPs.
  444. * Longer delays use a loop. The resolution is 8 cycles.
  445. */
  446. #if HAS_X_STEP
  447. #define _CYCLE_APPROX_1 5
  448. #else
  449. #define _CYCLE_APPROX_1 0
  450. #endif
  451. #if ENABLED(X_DUAL_STEPPER_DRIVERS)
  452. #define _CYCLE_APPROX_2 _CYCLE_APPROX_1 + 4
  453. #else
  454. #define _CYCLE_APPROX_2 _CYCLE_APPROX_1
  455. #endif
  456. #if HAS_Y_STEP
  457. #define _CYCLE_APPROX_3 _CYCLE_APPROX_2 + 5
  458. #else
  459. #define _CYCLE_APPROX_3 _CYCLE_APPROX_2
  460. #endif
  461. #if ENABLED(Y_DUAL_STEPPER_DRIVERS)
  462. #define _CYCLE_APPROX_4 _CYCLE_APPROX_3 + 4
  463. #else
  464. #define _CYCLE_APPROX_4 _CYCLE_APPROX_3
  465. #endif
  466. #if HAS_Z_STEP
  467. #define _CYCLE_APPROX_5 _CYCLE_APPROX_4 + 5
  468. #else
  469. #define _CYCLE_APPROX_5 _CYCLE_APPROX_4
  470. #endif
  471. #if ENABLED(Z_DUAL_STEPPER_DRIVERS)
  472. #define _CYCLE_APPROX_6 _CYCLE_APPROX_5 + 4
  473. #else
  474. #define _CYCLE_APPROX_6 _CYCLE_APPROX_5
  475. #endif
  476. #if DISABLED(LIN_ADVANCE)
  477. #if ENABLED(MIXING_EXTRUDER)
  478. #define _CYCLE_APPROX_7 _CYCLE_APPROX_6 + (MIXING_STEPPERS) * 6
  479. #else
  480. #define _CYCLE_APPROX_7 _CYCLE_APPROX_6 + 5
  481. #endif
  482. #else
  483. #define _CYCLE_APPROX_7 _CYCLE_APPROX_6
  484. #endif
  485. #define CYCLES_EATEN_XYZE _CYCLE_APPROX_7
  486. #define EXTRA_CYCLES_XYZE (STEP_PULSE_CYCLES - (CYCLES_EATEN_XYZE))
  487. /**
  488. * If a minimum pulse time was specified get the timer 0 value.
  489. *
  490. * On AVR the TCNT0 timer has an 8x prescaler, so it increments every 8 cycles.
  491. * That's every 0.5µs on 16MHz and every 0.4µs on 20MHz.
  492. * 20 counts of TCNT0 -by itself- is a good pulse delay.
  493. * 10µs = 160 or 200 cycles.
  494. */
  495. #if EXTRA_CYCLES_XYZE > 20
  496. hal_timer_t pulse_start = HAL_timer_get_current_count(PULSE_TIMER_NUM);
  497. #endif
  498. #if HAS_X_STEP
  499. PULSE_START(X);
  500. #endif
  501. #if HAS_Y_STEP
  502. PULSE_START(Y);
  503. #endif
  504. #if HAS_Z_STEP
  505. PULSE_START(Z);
  506. #endif
  507. // For non-advance use linear interpolation for E also
  508. #if DISABLED(LIN_ADVANCE)
  509. #if ENABLED(MIXING_EXTRUDER)
  510. // Keep updating the single E axis
  511. counter_E += current_block->steps[E_AXIS];
  512. // Tick the counters used for this mix
  513. MIXING_STEPPERS_LOOP(j) {
  514. // Step mixing steppers (proportionally)
  515. counter_m[j] += current_block->steps[E_AXIS];
  516. // Step when the counter goes over zero
  517. if (counter_m[j] > 0) En_STEP_WRITE(j, !INVERT_E_STEP_PIN);
  518. }
  519. #else // !MIXING_EXTRUDER
  520. PULSE_START(E);
  521. #endif
  522. #endif // !LIN_ADVANCE
  523. // For minimum pulse time wait before stopping pulses
  524. #if EXTRA_CYCLES_XYZE > 20
  525. while (EXTRA_CYCLES_XYZE > (uint32_t)(HAL_timer_get_current_count(PULSE_TIMER_NUM) - pulse_start) * (PULSE_TIMER_PRESCALE)) { /* nada */ }
  526. pulse_start = HAL_timer_get_current_count(PULSE_TIMER_NUM);
  527. #elif EXTRA_CYCLES_XYZE > 0
  528. DELAY_NOPS(EXTRA_CYCLES_XYZE);
  529. #endif
  530. #if HAS_X_STEP
  531. PULSE_STOP(X);
  532. #endif
  533. #if HAS_Y_STEP
  534. PULSE_STOP(Y);
  535. #endif
  536. #if HAS_Z_STEP
  537. PULSE_STOP(Z);
  538. #endif
  539. #if DISABLED(LIN_ADVANCE)
  540. #if ENABLED(MIXING_EXTRUDER)
  541. // Always step the single E axis
  542. if (counter_E > 0) {
  543. counter_E -= current_block->step_event_count;
  544. count_position[E_AXIS] += count_direction[E_AXIS];
  545. }
  546. MIXING_STEPPERS_LOOP(j) {
  547. if (counter_m[j] > 0) {
  548. counter_m[j] -= current_block->mix_event_count[j];
  549. En_STEP_WRITE(j, INVERT_E_STEP_PIN);
  550. }
  551. }
  552. #else // !MIXING_EXTRUDER
  553. PULSE_STOP(E);
  554. #endif
  555. #endif // !LIN_ADVANCE
  556. if (++step_events_completed >= current_block->step_event_count) {
  557. all_steps_done = true;
  558. break;
  559. }
  560. // For minimum pulse time wait after stopping pulses also
  561. #if EXTRA_CYCLES_XYZE > 20
  562. if (i) while (EXTRA_CYCLES_XYZE > (uint32_t)(HAL_timer_get_current_count(PULSE_TIMER_NUM) - pulse_start) * (PULSE_TIMER_PRESCALE)) { /* nada */ }
  563. #elif EXTRA_CYCLES_XYZE > 0
  564. if (i) DELAY_NOPS(EXTRA_CYCLES_XYZE);
  565. #endif
  566. } // steps_loop
  567. #if ENABLED(LIN_ADVANCE)
  568. if (current_block->use_advance_lead) {
  569. const int delta_adv_steps = current_estep_rate[TOOL_E_INDEX] - current_adv_steps[TOOL_E_INDEX];
  570. current_adv_steps[TOOL_E_INDEX] += delta_adv_steps;
  571. #if ENABLED(MIXING_EXTRUDER)
  572. // Mixing extruders apply advance lead proportionally
  573. MIXING_STEPPERS_LOOP(j)
  574. e_steps[j] += delta_adv_steps * current_block->step_event_count / current_block->mix_event_count[j];
  575. #else
  576. // For most extruders, advance the single E stepper
  577. e_steps[TOOL_E_INDEX] += delta_adv_steps;
  578. #endif
  579. }
  580. // If we have esteps to execute, fire the next advance_isr "now"
  581. if (e_steps[TOOL_E_INDEX]) nextAdvanceISR = 0;
  582. #endif // LIN_ADVANCE
  583. // Calculate new timer value
  584. if (step_events_completed <= (uint32_t)current_block->accelerate_until) {
  585. if (first_step) {
  586. acc_step_rate = current_block->initial_rate;
  587. acceleration_time = 0;
  588. }
  589. else {
  590. #ifdef CPU_32_BIT
  591. MultiU32X24toH32(acc_step_rate, acceleration_time, current_block->acceleration_rate);
  592. #else
  593. MultiU24X32toH16(acc_step_rate, acceleration_time, current_block->acceleration_rate);
  594. #endif
  595. acc_step_rate += current_block->initial_rate;
  596. }
  597. // upper limit
  598. NOMORE(acc_step_rate, current_block->nominal_rate);
  599. // step_rate to timer interval
  600. const hal_timer_t interval = calc_timer_interval(acc_step_rate);
  601. SPLIT(interval); // split step into multiple ISRs if larger than ENDSTOP_NOMINAL_OCR_VAL
  602. _NEXT_ISR(ocr_val);
  603. acceleration_time += interval;
  604. #if ENABLED(LIN_ADVANCE)
  605. if (current_block->use_advance_lead) {
  606. #if ENABLED(MIXING_EXTRUDER)
  607. MIXING_STEPPERS_LOOP(j)
  608. current_estep_rate[j] = ((uint32_t)acc_step_rate * current_block->abs_adv_steps_multiplier8 * current_block->step_event_count / current_block->mix_event_count[j]) >> 17;
  609. #else
  610. current_estep_rate[TOOL_E_INDEX] = ((uint32_t)acc_step_rate * current_block->abs_adv_steps_multiplier8) >> 17;
  611. #endif
  612. }
  613. eISR_Rate = adv_rate(e_steps[TOOL_E_INDEX], interval, step_loops);
  614. #endif // LIN_ADVANCE
  615. }
  616. else if (step_events_completed > (uint32_t)current_block->decelerate_after) {
  617. hal_timer_t step_rate;
  618. #ifdef CPU_32_BIT
  619. MultiU32X24toH32(step_rate, deceleration_time, current_block->acceleration_rate);
  620. #else
  621. MultiU24X32toH16(step_rate, deceleration_time, current_block->acceleration_rate);
  622. #endif
  623. if (step_rate < acc_step_rate) { // Still decelerating?
  624. step_rate = acc_step_rate - step_rate;
  625. NOLESS(step_rate, current_block->final_rate);
  626. }
  627. else
  628. step_rate = current_block->final_rate;
  629. // step_rate to timer interval
  630. const hal_timer_t interval = calc_timer_interval(step_rate);
  631. SPLIT(interval); // split step into multiple ISRs if larger than ENDSTOP_NOMINAL_OCR_VAL
  632. _NEXT_ISR(ocr_val);
  633. deceleration_time += interval;
  634. #if ENABLED(LIN_ADVANCE)
  635. if (current_block->use_advance_lead) {
  636. #if ENABLED(MIXING_EXTRUDER)
  637. MIXING_STEPPERS_LOOP(j)
  638. current_estep_rate[j] = ((uint32_t)step_rate * current_block->abs_adv_steps_multiplier8 * current_block->step_event_count / current_block->mix_event_count[j]) >> 17;
  639. #else
  640. current_estep_rate[TOOL_E_INDEX] = ((uint32_t)step_rate * current_block->abs_adv_steps_multiplier8) >> 17;
  641. #endif
  642. }
  643. eISR_Rate = adv_rate(e_steps[TOOL_E_INDEX], interval, step_loops);
  644. #endif // LIN_ADVANCE
  645. }
  646. else {
  647. #if ENABLED(LIN_ADVANCE)
  648. if (current_block->use_advance_lead)
  649. current_estep_rate[TOOL_E_INDEX] = final_estep_rate;
  650. eISR_Rate = adv_rate(e_steps[TOOL_E_INDEX], OCR1A_nominal, step_loops_nominal);
  651. #endif
  652. SPLIT(OCR1A_nominal); // split step into multiple ISRs if larger than ENDSTOP_NOMINAL_OCR_VAL
  653. _NEXT_ISR(ocr_val);
  654. // ensure we're running at the correct step rate, even if we just came off an acceleration
  655. step_loops = step_loops_nominal;
  656. }
  657. #if DISABLED(LIN_ADVANCE)
  658. #ifdef CPU_32_BIT
  659. // Make sure stepper interrupt does not monopolise CPU by adjusting count to give about 8 us room
  660. hal_timer_t stepper_timer_count = HAL_timer_get_count(STEP_TIMER_NUM),
  661. stepper_timer_current_count = HAL_timer_get_current_count(STEP_TIMER_NUM) + 8 * HAL_TICKS_PER_US;
  662. HAL_timer_set_count(STEP_TIMER_NUM, max(stepper_timer_count, stepper_timer_current_count));
  663. #else
  664. NOLESS(OCR1A, TCNT1 + 16);
  665. #endif
  666. #endif
  667. // If current block is finished, reset pointer
  668. if (all_steps_done) {
  669. current_block = NULL;
  670. planner.discard_current_block();
  671. }
  672. #if DISABLED(LIN_ADVANCE)
  673. HAL_ENABLE_ISRs(); // re-enable ISRs
  674. #endif
  675. }
  676. #if ENABLED(LIN_ADVANCE)
  677. #define CYCLES_EATEN_E (E_STEPPERS * 5)
  678. #define EXTRA_CYCLES_E (STEP_PULSE_CYCLES - (CYCLES_EATEN_E))
  679. // Timer interrupt for E. e_steps is set in the main routine;
  680. void Stepper::advance_isr() {
  681. nextAdvanceISR = eISR_Rate;
  682. #if ENABLED(MK2_MULTIPLEXER)
  683. // Even-numbered steppers are reversed
  684. #define SET_E_STEP_DIR(INDEX) \
  685. if (e_steps[INDEX]) E## INDEX ##_DIR_WRITE(e_steps[INDEX] < 0 ? !INVERT_E## INDEX ##_DIR ^ TEST(INDEX, 0) : INVERT_E## INDEX ##_DIR ^ TEST(INDEX, 0))
  686. #else
  687. #define SET_E_STEP_DIR(INDEX) \
  688. if (e_steps[INDEX]) E## INDEX ##_DIR_WRITE(e_steps[INDEX] < 0 ? INVERT_E## INDEX ##_DIR : !INVERT_E## INDEX ##_DIR)
  689. #endif
  690. #define START_E_PULSE(INDEX) \
  691. if (e_steps[INDEX]) E## INDEX ##_STEP_WRITE(!INVERT_E_STEP_PIN)
  692. #define STOP_E_PULSE(INDEX) \
  693. if (e_steps[INDEX]) { \
  694. e_steps[INDEX] < 0 ? ++e_steps[INDEX] : --e_steps[INDEX]; \
  695. E## INDEX ##_STEP_WRITE(INVERT_E_STEP_PIN); \
  696. }
  697. SET_E_STEP_DIR(0);
  698. #if E_STEPPERS > 1
  699. SET_E_STEP_DIR(1);
  700. #if E_STEPPERS > 2
  701. SET_E_STEP_DIR(2);
  702. #if E_STEPPERS > 3
  703. SET_E_STEP_DIR(3);
  704. #if E_STEPPERS > 4
  705. SET_E_STEP_DIR(4);
  706. #endif
  707. #endif
  708. #endif
  709. #endif
  710. // Step all E steppers that have steps
  711. for (uint8_t i = step_loops; i--;) {
  712. #if EXTRA_CYCLES_E > 20
  713. hal_timer_t pulse_start = HAL_timer_get_current_count(PULSE_TIMER_NUM);
  714. #endif
  715. START_E_PULSE(0);
  716. #if E_STEPPERS > 1
  717. START_E_PULSE(1);
  718. #if E_STEPPERS > 2
  719. START_E_PULSE(2);
  720. #if E_STEPPERS > 3
  721. START_E_PULSE(3);
  722. #if E_STEPPERS > 4
  723. START_E_PULSE(4);
  724. #endif
  725. #endif
  726. #endif
  727. #endif
  728. // For minimum pulse time wait before stopping pulses
  729. #if EXTRA_CYCLES_E > 20
  730. while (EXTRA_CYCLES_E > (hal_timer_t)(HAL_timer_get_current_count(PULSE_TIMER_NUM) - pulse_start) * (PULSE_TIMER_PRESCALE)) { /* nada */ }
  731. pulse_start = HAL_timer_get_current_count(PULSE_TIMER_NUM);
  732. #elif EXTRA_CYCLES_E > 0
  733. DELAY_NOPS(EXTRA_CYCLES_E);
  734. #endif
  735. STOP_E_PULSE(0);
  736. #if E_STEPPERS > 1
  737. STOP_E_PULSE(1);
  738. #if E_STEPPERS > 2
  739. STOP_E_PULSE(2);
  740. #if E_STEPPERS > 3
  741. STOP_E_PULSE(3);
  742. #if E_STEPPERS > 4
  743. STOP_E_PULSE(4);
  744. #endif
  745. #endif
  746. #endif
  747. #endif
  748. // For minimum pulse time wait before looping
  749. #if EXTRA_CYCLES_E > 20
  750. if (i) while (EXTRA_CYCLES_E > (hal_timer_t)(HAL_timer_get_current_count(PULSE_TIMER_NUM) - pulse_start) * (PULSE_TIMER_PRESCALE)) { /* nada */ }
  751. #elif EXTRA_CYCLES_E > 0
  752. if (i) DELAY_NOPS(EXTRA_CYCLES_E);
  753. #endif
  754. } // steps_loop
  755. }
  756. void Stepper::advance_isr_scheduler() {
  757. // Disable Timer0 ISRs and enable global ISR again to capture UART events (incoming chars)
  758. DISABLE_TEMPERATURE_INTERRUPT(); // Temperature ISR
  759. DISABLE_STEPPER_DRIVER_INTERRUPT();
  760. sei();
  761. // Run main stepping ISR if flagged
  762. if (!nextMainISR) isr();
  763. // Run Advance stepping ISR if flagged
  764. if (!nextAdvanceISR) advance_isr();
  765. // Is the next advance ISR scheduled before the next main ISR?
  766. if (nextAdvanceISR <= nextMainISR) {
  767. // Set up the next interrupt
  768. HAL_timer_set_count(STEP_TIMER_NUM, nextAdvanceISR);
  769. // New interval for the next main ISR
  770. if (nextMainISR) nextMainISR -= nextAdvanceISR;
  771. // Will call Stepper::advance_isr on the next interrupt
  772. nextAdvanceISR = 0;
  773. }
  774. else {
  775. // The next main ISR comes first
  776. HAL_timer_set_count(STEP_TIMER_NUM, nextMainISR);
  777. // New interval for the next advance ISR, if any
  778. if (nextAdvanceISR && nextAdvanceISR != ADV_NEVER)
  779. nextAdvanceISR -= nextMainISR;
  780. // Will call Stepper::isr on the next interrupt
  781. nextMainISR = 0;
  782. }
  783. // Don't run the ISR faster than possible
  784. #ifdef CPU_32_BIT
  785. // Make sure stepper interrupt does not monopolise CPU by adjusting count to give about 8 us room
  786. uint32_t stepper_timer_count = HAL_timer_get_count(STEP_TIMER_NUM),
  787. stepper_timer_current_count = HAL_timer_get_current_count(STEP_TIMER_NUM) + 8 * HAL_TICKS_PER_US;
  788. HAL_timer_set_count(STEP_TIMER_NUM, max(stepper_timer_count, stepper_timer_current_count));
  789. #else
  790. NOLESS(OCR1A, TCNT1 + 16);
  791. #endif
  792. // Restore original ISR settings
  793. HAL_ENABLE_ISRs();
  794. }
  795. #endif // LIN_ADVANCE
  796. void Stepper::init() {
  797. // Init Digipot Motor Current
  798. #if HAS_DIGIPOTSS || HAS_MOTOR_CURRENT_PWM
  799. digipot_init();
  800. #endif
  801. #if MB(ALLIGATOR)
  802. const float motor_current[] = MOTOR_CURRENT;
  803. unsigned int digipot_motor = 0;
  804. for (uint8_t i = 0; i < 3 + EXTRUDERS; i++) {
  805. digipot_motor = 255 * (motor_current[i] / 2.5);
  806. dac084s085::setValue(i, digipot_motor);
  807. }
  808. #endif//MB(ALLIGATOR)
  809. // Init Microstepping Pins
  810. #if HAS_MICROSTEPS
  811. microstep_init();
  812. #endif
  813. // Init TMC Steppers
  814. #if ENABLED(HAVE_TMCDRIVER)
  815. tmc_init();
  816. #endif
  817. // Init TMC2130 Steppers
  818. #if ENABLED(HAVE_TMC2130)
  819. tmc2130_init();
  820. #endif
  821. // Init TMC2208 Steppers
  822. #if ENABLED(HAVE_TMC2208)
  823. tmc2208_init();
  824. #endif
  825. // TRAMS, TMC2130 and TMC2208 advanced settings
  826. #if HAS_TRINAMIC
  827. TMC_ADV()
  828. #endif
  829. // Init L6470 Steppers
  830. #if ENABLED(HAVE_L6470DRIVER)
  831. L6470_init();
  832. #endif
  833. // Init Dir Pins
  834. #if HAS_X_DIR
  835. X_DIR_INIT;
  836. #endif
  837. #if HAS_X2_DIR
  838. X2_DIR_INIT;
  839. #endif
  840. #if HAS_Y_DIR
  841. Y_DIR_INIT;
  842. #if ENABLED(Y_DUAL_STEPPER_DRIVERS) && HAS_Y2_DIR
  843. Y2_DIR_INIT;
  844. #endif
  845. #endif
  846. #if HAS_Z_DIR
  847. Z_DIR_INIT;
  848. #if ENABLED(Z_DUAL_STEPPER_DRIVERS) && HAS_Z2_DIR
  849. Z2_DIR_INIT;
  850. #endif
  851. #endif
  852. #if HAS_E0_DIR
  853. E0_DIR_INIT;
  854. #endif
  855. #if HAS_E1_DIR
  856. E1_DIR_INIT;
  857. #endif
  858. #if HAS_E2_DIR
  859. E2_DIR_INIT;
  860. #endif
  861. #if HAS_E3_DIR
  862. E3_DIR_INIT;
  863. #endif
  864. #if HAS_E4_DIR
  865. E4_DIR_INIT;
  866. #endif
  867. // Init Enable Pins - steppers default to disabled.
  868. #if HAS_X_ENABLE
  869. X_ENABLE_INIT;
  870. if (!X_ENABLE_ON) X_ENABLE_WRITE(HIGH);
  871. #if ENABLED(DUAL_X_CARRIAGE) && HAS_X2_ENABLE
  872. X2_ENABLE_INIT;
  873. if (!X_ENABLE_ON) X2_ENABLE_WRITE(HIGH);
  874. #endif
  875. #endif
  876. #if HAS_Y_ENABLE
  877. Y_ENABLE_INIT;
  878. if (!Y_ENABLE_ON) Y_ENABLE_WRITE(HIGH);
  879. #if ENABLED(Y_DUAL_STEPPER_DRIVERS) && HAS_Y2_ENABLE
  880. Y2_ENABLE_INIT;
  881. if (!Y_ENABLE_ON) Y2_ENABLE_WRITE(HIGH);
  882. #endif
  883. #endif
  884. #if HAS_Z_ENABLE
  885. Z_ENABLE_INIT;
  886. if (!Z_ENABLE_ON) Z_ENABLE_WRITE(HIGH);
  887. #if ENABLED(Z_DUAL_STEPPER_DRIVERS) && HAS_Z2_ENABLE
  888. Z2_ENABLE_INIT;
  889. if (!Z_ENABLE_ON) Z2_ENABLE_WRITE(HIGH);
  890. #endif
  891. #endif
  892. #if HAS_E0_ENABLE
  893. E0_ENABLE_INIT;
  894. if (!E_ENABLE_ON) E0_ENABLE_WRITE(HIGH);
  895. #endif
  896. #if HAS_E1_ENABLE
  897. E1_ENABLE_INIT;
  898. if (!E_ENABLE_ON) E1_ENABLE_WRITE(HIGH);
  899. #endif
  900. #if HAS_E2_ENABLE
  901. E2_ENABLE_INIT;
  902. if (!E_ENABLE_ON) E2_ENABLE_WRITE(HIGH);
  903. #endif
  904. #if HAS_E3_ENABLE
  905. E3_ENABLE_INIT;
  906. if (!E_ENABLE_ON) E3_ENABLE_WRITE(HIGH);
  907. #endif
  908. #if HAS_E4_ENABLE
  909. E4_ENABLE_INIT;
  910. if (!E_ENABLE_ON) E4_ENABLE_WRITE(HIGH);
  911. #endif
  912. // Init endstops and pullups
  913. endstops.init();
  914. #define _STEP_INIT(AXIS) AXIS ##_STEP_INIT
  915. #define _WRITE_STEP(AXIS, HIGHLOW) AXIS ##_STEP_WRITE(HIGHLOW)
  916. #define _DISABLE(AXIS) disable_## AXIS()
  917. #define AXIS_INIT(AXIS, PIN) \
  918. _STEP_INIT(AXIS); \
  919. _WRITE_STEP(AXIS, _INVERT_STEP_PIN(PIN)); \
  920. _DISABLE(AXIS)
  921. #define E_AXIS_INIT(NUM) AXIS_INIT(E## NUM, E)
  922. // Init Step Pins
  923. #if HAS_X_STEP
  924. #if ENABLED(X_DUAL_STEPPER_DRIVERS) || ENABLED(DUAL_X_CARRIAGE)
  925. X2_STEP_INIT;
  926. X2_STEP_WRITE(INVERT_X_STEP_PIN);
  927. #endif
  928. AXIS_INIT(X, X);
  929. #endif
  930. #if HAS_Y_STEP
  931. #if ENABLED(Y_DUAL_STEPPER_DRIVERS)
  932. Y2_STEP_INIT;
  933. Y2_STEP_WRITE(INVERT_Y_STEP_PIN);
  934. #endif
  935. AXIS_INIT(Y, Y);
  936. #endif
  937. #if HAS_Z_STEP
  938. #if ENABLED(Z_DUAL_STEPPER_DRIVERS)
  939. Z2_STEP_INIT;
  940. Z2_STEP_WRITE(INVERT_Z_STEP_PIN);
  941. #endif
  942. AXIS_INIT(Z, Z);
  943. #endif
  944. #if HAS_E0_STEP
  945. E_AXIS_INIT(0);
  946. #endif
  947. #if HAS_E1_STEP
  948. E_AXIS_INIT(1);
  949. #endif
  950. #if HAS_E2_STEP
  951. E_AXIS_INIT(2);
  952. #endif
  953. #if HAS_E3_STEP
  954. E_AXIS_INIT(3);
  955. #endif
  956. #if HAS_E4_STEP
  957. E_AXIS_INIT(4);
  958. #endif
  959. #ifdef __AVR__
  960. // waveform generation = 0100 = CTC
  961. SET_WGM(1, CTC_OCRnA);
  962. // output mode = 00 (disconnected)
  963. SET_COMA(1, NORMAL);
  964. // Set the timer pre-scaler
  965. // Generally we use a divider of 8, resulting in a 2MHz timer
  966. // frequency on a 16MHz MCU. If you are going to change this, be
  967. // sure to regenerate speed_lookuptable.h with
  968. // create_speed_lookuptable.py
  969. SET_CS(1, PRESCALER_8); // CS 2 = 1/8 prescaler
  970. // Init Stepper ISR to 122 Hz for quick starting
  971. OCR1A = 0x4000;
  972. TCNT1 = 0;
  973. #else
  974. // Init Stepper ISR to 122 Hz for quick starting
  975. HAL_timer_start(STEP_TIMER_NUM, 122);
  976. #endif
  977. ENABLE_STEPPER_DRIVER_INTERRUPT();
  978. #if ENABLED(LIN_ADVANCE)
  979. for (uint8_t i = 0; i < COUNT(e_steps); i++) e_steps[i] = 0;
  980. ZERO(current_adv_steps);
  981. #endif
  982. endstops.enable(true); // Start with endstops active. After homing they can be disabled
  983. sei();
  984. set_directions(); // Init directions to last_direction_bits = 0
  985. }
  986. /**
  987. * Block until all buffered steps are executed / cleaned
  988. */
  989. void Stepper::synchronize() { while (planner.blocks_queued() || cleaning_buffer_counter) idle(); }
  990. /**
  991. * Set the stepper positions directly in steps
  992. *
  993. * The input is based on the typical per-axis XYZ steps.
  994. * For CORE machines XYZ needs to be translated to ABC.
  995. *
  996. * This allows get_axis_position_mm to correctly
  997. * derive the current XYZ position later on.
  998. */
  999. void Stepper::set_position(const long &a, const long &b, const long &c, const long &e) {
  1000. synchronize(); // Bad to set stepper counts in the middle of a move
  1001. CRITICAL_SECTION_START;
  1002. #if CORE_IS_XY
  1003. // corexy positioning
  1004. // these equations follow the form of the dA and dB equations on http://www.corexy.com/theory.html
  1005. count_position[A_AXIS] = a + b;
  1006. count_position[B_AXIS] = CORESIGN(a - b);
  1007. count_position[Z_AXIS] = c;
  1008. #elif CORE_IS_XZ
  1009. // corexz planning
  1010. count_position[A_AXIS] = a + c;
  1011. count_position[Y_AXIS] = b;
  1012. count_position[C_AXIS] = CORESIGN(a - c);
  1013. #elif CORE_IS_YZ
  1014. // coreyz planning
  1015. count_position[X_AXIS] = a;
  1016. count_position[B_AXIS] = b + c;
  1017. count_position[C_AXIS] = CORESIGN(b - c);
  1018. #else
  1019. // default non-h-bot planning
  1020. count_position[X_AXIS] = a;
  1021. count_position[Y_AXIS] = b;
  1022. count_position[Z_AXIS] = c;
  1023. #endif
  1024. count_position[E_AXIS] = e;
  1025. CRITICAL_SECTION_END;
  1026. }
  1027. void Stepper::set_position(const AxisEnum &axis, const long &v) {
  1028. CRITICAL_SECTION_START;
  1029. count_position[axis] = v;
  1030. CRITICAL_SECTION_END;
  1031. }
  1032. void Stepper::set_e_position(const long &e) {
  1033. CRITICAL_SECTION_START;
  1034. count_position[E_AXIS] = e;
  1035. CRITICAL_SECTION_END;
  1036. }
  1037. /**
  1038. * Get a stepper's position in steps.
  1039. */
  1040. long Stepper::position(const AxisEnum axis) {
  1041. CRITICAL_SECTION_START;
  1042. const long count_pos = count_position[axis];
  1043. CRITICAL_SECTION_END;
  1044. return count_pos;
  1045. }
  1046. /**
  1047. * Get an axis position according to stepper position(s)
  1048. * For CORE machines apply translation from ABC to XYZ.
  1049. */
  1050. float Stepper::get_axis_position_mm(const AxisEnum axis) {
  1051. float axis_steps;
  1052. #if IS_CORE
  1053. // Requesting one of the "core" axes?
  1054. if (axis == CORE_AXIS_1 || axis == CORE_AXIS_2) {
  1055. CRITICAL_SECTION_START;
  1056. // ((a1+a2)+(a1-a2))/2 -> (a1+a2+a1-a2)/2 -> (a1+a1)/2 -> a1
  1057. // ((a1+a2)-(a1-a2))/2 -> (a1+a2-a1+a2)/2 -> (a2+a2)/2 -> a2
  1058. axis_steps = 0.5f * (
  1059. axis == CORE_AXIS_2 ? CORESIGN(count_position[CORE_AXIS_1] - count_position[CORE_AXIS_2])
  1060. : count_position[CORE_AXIS_1] + count_position[CORE_AXIS_2]
  1061. );
  1062. CRITICAL_SECTION_END;
  1063. }
  1064. else
  1065. axis_steps = position(axis);
  1066. #else
  1067. axis_steps = position(axis);
  1068. #endif
  1069. return axis_steps * planner.steps_to_mm[axis];
  1070. }
  1071. void Stepper::finish_and_disable() {
  1072. synchronize();
  1073. disable_all_steppers();
  1074. }
  1075. void Stepper::quick_stop() {
  1076. cleaning_buffer_counter = 5000;
  1077. DISABLE_STEPPER_DRIVER_INTERRUPT();
  1078. while (planner.blocks_queued()) planner.discard_current_block();
  1079. current_block = NULL;
  1080. ENABLE_STEPPER_DRIVER_INTERRUPT();
  1081. #if ENABLED(ULTRA_LCD)
  1082. planner.clear_block_buffer_runtime();
  1083. #endif
  1084. }
  1085. void Stepper::endstop_triggered(const AxisEnum axis) {
  1086. #if IS_CORE
  1087. endstops_trigsteps[axis] = 0.5f * (
  1088. axis == CORE_AXIS_2 ? CORESIGN(count_position[CORE_AXIS_1] - count_position[CORE_AXIS_2])
  1089. : count_position[CORE_AXIS_1] + count_position[CORE_AXIS_2]
  1090. );
  1091. #else // !COREXY && !COREXZ && !COREYZ
  1092. endstops_trigsteps[axis] = count_position[axis];
  1093. #endif // !COREXY && !COREXZ && !COREYZ
  1094. kill_current_block();
  1095. cleaning_buffer_counter = -1; // Discard the rest of the move
  1096. }
  1097. void Stepper::report_positions() {
  1098. CRITICAL_SECTION_START;
  1099. const long xpos = count_position[X_AXIS],
  1100. ypos = count_position[Y_AXIS],
  1101. zpos = count_position[Z_AXIS];
  1102. CRITICAL_SECTION_END;
  1103. #if CORE_IS_XY || CORE_IS_XZ || IS_SCARA
  1104. SERIAL_PROTOCOLPGM(MSG_COUNT_A);
  1105. #else
  1106. SERIAL_PROTOCOLPGM(MSG_COUNT_X);
  1107. #endif
  1108. SERIAL_PROTOCOL(xpos);
  1109. #if CORE_IS_XY || CORE_IS_YZ || IS_SCARA
  1110. SERIAL_PROTOCOLPGM(" B:");
  1111. #else
  1112. SERIAL_PROTOCOLPGM(" Y:");
  1113. #endif
  1114. SERIAL_PROTOCOL(ypos);
  1115. #if CORE_IS_XZ || CORE_IS_YZ
  1116. SERIAL_PROTOCOLPGM(" C:");
  1117. #else
  1118. SERIAL_PROTOCOLPGM(" Z:");
  1119. #endif
  1120. SERIAL_PROTOCOL(zpos);
  1121. SERIAL_EOL();
  1122. }
  1123. #if ENABLED(BABYSTEPPING)
  1124. #if ENABLED(DELTA)
  1125. #define CYCLES_EATEN_BABYSTEP (2 * 15)
  1126. #else
  1127. #define CYCLES_EATEN_BABYSTEP 0
  1128. #endif
  1129. #define EXTRA_CYCLES_BABYSTEP (STEP_PULSE_CYCLES - (CYCLES_EATEN_BABYSTEP))
  1130. #define _ENABLE(AXIS) enable_## AXIS()
  1131. #define _READ_DIR(AXIS) AXIS ##_DIR_READ
  1132. #define _INVERT_DIR(AXIS) INVERT_## AXIS ##_DIR
  1133. #define _APPLY_DIR(AXIS, INVERT) AXIS ##_APPLY_DIR(INVERT, true)
  1134. #if EXTRA_CYCLES_BABYSTEP > 20
  1135. #define _SAVE_START const hal_timer_t pulse_start = HAL_timer_get_current_count(STEP_TIMER_NUM)
  1136. #define _PULSE_WAIT while (EXTRA_CYCLES_BABYSTEP > (uint32_t)(HAL_timer_get_current_count(STEP_TIMER_NUM) - pulse_start) * (PULSE_TIMER_PRESCALE)) { /* nada */ }
  1137. #else
  1138. #define _SAVE_START NOOP
  1139. #if EXTRA_CYCLES_BABYSTEP > 0
  1140. #define _PULSE_WAIT DELAY_NOPS(EXTRA_CYCLES_BABYSTEP)
  1141. #elif STEP_PULSE_CYCLES > 0
  1142. #define _PULSE_WAIT NOOP
  1143. #elif ENABLED(DELTA)
  1144. #define _PULSE_WAIT delayMicroseconds(2);
  1145. #else
  1146. #define _PULSE_WAIT delayMicroseconds(4);
  1147. #endif
  1148. #endif
  1149. #define BABYSTEP_AXIS(AXIS, INVERT) { \
  1150. const uint8_t old_dir = _READ_DIR(AXIS); \
  1151. _ENABLE(AXIS); \
  1152. _SAVE_START; \
  1153. _APPLY_DIR(AXIS, _INVERT_DIR(AXIS)^direction^INVERT); \
  1154. _PULSE_WAIT; \
  1155. _APPLY_STEP(AXIS)(!_INVERT_STEP_PIN(AXIS), true); \
  1156. _PULSE_WAIT; \
  1157. _APPLY_STEP(AXIS)(_INVERT_STEP_PIN(AXIS), true); \
  1158. _APPLY_DIR(AXIS, old_dir); \
  1159. }
  1160. // MUST ONLY BE CALLED BY AN ISR,
  1161. // No other ISR should ever interrupt this!
  1162. void Stepper::babystep(const AxisEnum axis, const bool direction) {
  1163. cli();
  1164. switch (axis) {
  1165. #if ENABLED(BABYSTEP_XY)
  1166. case X_AXIS:
  1167. BABYSTEP_AXIS(X, false);
  1168. break;
  1169. case Y_AXIS:
  1170. BABYSTEP_AXIS(Y, false);
  1171. break;
  1172. #endif
  1173. case Z_AXIS: {
  1174. #if DISABLED(DELTA)
  1175. BABYSTEP_AXIS(Z, BABYSTEP_INVERT_Z);
  1176. #else // DELTA
  1177. const bool z_direction = direction ^ BABYSTEP_INVERT_Z;
  1178. enable_X();
  1179. enable_Y();
  1180. enable_Z();
  1181. const uint8_t old_x_dir_pin = X_DIR_READ,
  1182. old_y_dir_pin = Y_DIR_READ,
  1183. old_z_dir_pin = Z_DIR_READ;
  1184. X_DIR_WRITE(INVERT_X_DIR ^ z_direction);
  1185. Y_DIR_WRITE(INVERT_Y_DIR ^ z_direction);
  1186. Z_DIR_WRITE(INVERT_Z_DIR ^ z_direction);
  1187. _SAVE_START;
  1188. X_STEP_WRITE(!INVERT_X_STEP_PIN);
  1189. Y_STEP_WRITE(!INVERT_Y_STEP_PIN);
  1190. Z_STEP_WRITE(!INVERT_Z_STEP_PIN);
  1191. _PULSE_WAIT;
  1192. X_STEP_WRITE(INVERT_X_STEP_PIN);
  1193. Y_STEP_WRITE(INVERT_Y_STEP_PIN);
  1194. Z_STEP_WRITE(INVERT_Z_STEP_PIN);
  1195. // Restore direction bits
  1196. X_DIR_WRITE(old_x_dir_pin);
  1197. Y_DIR_WRITE(old_y_dir_pin);
  1198. Z_DIR_WRITE(old_z_dir_pin);
  1199. #endif
  1200. } break;
  1201. default: break;
  1202. }
  1203. sei();
  1204. }
  1205. #endif // BABYSTEPPING
  1206. /**
  1207. * Software-controlled Stepper Motor Current
  1208. */
  1209. #if HAS_DIGIPOTSS
  1210. // From Arduino DigitalPotControl example
  1211. void Stepper::digitalPotWrite(const int16_t address, const int16_t value) {
  1212. WRITE(DIGIPOTSS_PIN, LOW); // Take the SS pin low to select the chip
  1213. SPI.transfer(address); // Send the address and value via SPI
  1214. SPI.transfer(value);
  1215. WRITE(DIGIPOTSS_PIN, HIGH); // Take the SS pin high to de-select the chip
  1216. //delay(10);
  1217. }
  1218. #endif // HAS_DIGIPOTSS
  1219. #if HAS_MOTOR_CURRENT_PWM
  1220. void Stepper::refresh_motor_power() {
  1221. for (uint8_t i = 0; i < COUNT(motor_current_setting); ++i) {
  1222. switch (i) {
  1223. #if PIN_EXISTS(MOTOR_CURRENT_PWM_XY)
  1224. case 0:
  1225. #endif
  1226. #if PIN_EXISTS(MOTOR_CURRENT_PWM_Z)
  1227. case 1:
  1228. #endif
  1229. #if PIN_EXISTS(MOTOR_CURRENT_PWM_E)
  1230. case 2:
  1231. #endif
  1232. digipot_current(i, motor_current_setting[i]);
  1233. default: break;
  1234. }
  1235. }
  1236. }
  1237. #endif // HAS_MOTOR_CURRENT_PWM
  1238. #if HAS_DIGIPOTSS || HAS_MOTOR_CURRENT_PWM
  1239. void Stepper::digipot_current(const uint8_t driver, const int current) {
  1240. #if HAS_DIGIPOTSS
  1241. const uint8_t digipot_ch[] = DIGIPOT_CHANNELS;
  1242. digitalPotWrite(digipot_ch[driver], current);
  1243. #elif HAS_MOTOR_CURRENT_PWM
  1244. if (WITHIN(driver, 0, 2))
  1245. motor_current_setting[driver] = current; // update motor_current_setting
  1246. #define _WRITE_CURRENT_PWM(P) analogWrite(MOTOR_CURRENT_PWM_## P ##_PIN, 255L * current / (MOTOR_CURRENT_PWM_RANGE))
  1247. switch (driver) {
  1248. #if PIN_EXISTS(MOTOR_CURRENT_PWM_XY)
  1249. case 0: _WRITE_CURRENT_PWM(XY); break;
  1250. #endif
  1251. #if PIN_EXISTS(MOTOR_CURRENT_PWM_Z)
  1252. case 1: _WRITE_CURRENT_PWM(Z); break;
  1253. #endif
  1254. #if PIN_EXISTS(MOTOR_CURRENT_PWM_E)
  1255. case 2: _WRITE_CURRENT_PWM(E); break;
  1256. #endif
  1257. }
  1258. #endif
  1259. }
  1260. void Stepper::digipot_init() {
  1261. #if HAS_DIGIPOTSS
  1262. static const uint8_t digipot_motor_current[] = DIGIPOT_MOTOR_CURRENT;
  1263. SPI.begin();
  1264. SET_OUTPUT(DIGIPOTSS_PIN);
  1265. for (uint8_t i = 0; i < COUNT(digipot_motor_current); i++) {
  1266. //digitalPotWrite(digipot_ch[i], digipot_motor_current[i]);
  1267. digipot_current(i, digipot_motor_current[i]);
  1268. }
  1269. #elif HAS_MOTOR_CURRENT_PWM
  1270. #if PIN_EXISTS(MOTOR_CURRENT_PWM_XY)
  1271. SET_OUTPUT(MOTOR_CURRENT_PWM_XY_PIN);
  1272. #endif
  1273. #if PIN_EXISTS(MOTOR_CURRENT_PWM_Z)
  1274. SET_OUTPUT(MOTOR_CURRENT_PWM_Z_PIN);
  1275. #endif
  1276. #if PIN_EXISTS(MOTOR_CURRENT_PWM_E)
  1277. SET_OUTPUT(MOTOR_CURRENT_PWM_E_PIN);
  1278. #endif
  1279. refresh_motor_power();
  1280. // Set Timer5 to 31khz so the PWM of the motor power is as constant as possible. (removes a buzzing noise)
  1281. SET_CS5(PRESCALER_1);
  1282. #endif
  1283. }
  1284. #endif
  1285. #if HAS_MICROSTEPS
  1286. /**
  1287. * Software-controlled Microstepping
  1288. */
  1289. void Stepper::microstep_init() {
  1290. SET_OUTPUT(X_MS1_PIN);
  1291. SET_OUTPUT(X_MS2_PIN);
  1292. #if HAS_Y_MICROSTEPS
  1293. SET_OUTPUT(Y_MS1_PIN);
  1294. SET_OUTPUT(Y_MS2_PIN);
  1295. #endif
  1296. #if HAS_Z_MICROSTEPS
  1297. SET_OUTPUT(Z_MS1_PIN);
  1298. SET_OUTPUT(Z_MS2_PIN);
  1299. #endif
  1300. #if HAS_E0_MICROSTEPS
  1301. SET_OUTPUT(E0_MS1_PIN);
  1302. SET_OUTPUT(E0_MS2_PIN);
  1303. #endif
  1304. #if HAS_E1_MICROSTEPS
  1305. SET_OUTPUT(E1_MS1_PIN);
  1306. SET_OUTPUT(E1_MS2_PIN);
  1307. #endif
  1308. #if HAS_E2_MICROSTEPS
  1309. SET_OUTPUT(E2_MS1_PIN);
  1310. SET_OUTPUT(E2_MS2_PIN);
  1311. #endif
  1312. #if HAS_E3_MICROSTEPS
  1313. SET_OUTPUT(E3_MS1_PIN);
  1314. SET_OUTPUT(E3_MS2_PIN);
  1315. #endif
  1316. #if HAS_E4_MICROSTEPS
  1317. SET_OUTPUT(E4_MS1_PIN);
  1318. SET_OUTPUT(E4_MS2_PIN);
  1319. #endif
  1320. static const uint8_t microstep_modes[] = MICROSTEP_MODES;
  1321. for (uint16_t i = 0; i < COUNT(microstep_modes); i++)
  1322. microstep_mode(i, microstep_modes[i]);
  1323. }
  1324. void Stepper::microstep_ms(const uint8_t driver, const int8_t ms1, const int8_t ms2) {
  1325. if (ms1 >= 0) switch (driver) {
  1326. case 0: WRITE(X_MS1_PIN, ms1); break;
  1327. #if HAS_Y_MICROSTEPS
  1328. case 1: WRITE(Y_MS1_PIN, ms1); break;
  1329. #endif
  1330. #if HAS_Z_MICROSTEPS
  1331. case 2: WRITE(Z_MS1_PIN, ms1); break;
  1332. #endif
  1333. #if HAS_E0_MICROSTEPS
  1334. case 3: WRITE(E0_MS1_PIN, ms1); break;
  1335. #endif
  1336. #if HAS_E1_MICROSTEPS
  1337. case 4: WRITE(E1_MS1_PIN, ms1); break;
  1338. #endif
  1339. #if HAS_E2_MICROSTEPS
  1340. case 5: WRITE(E2_MS1_PIN, ms1); break;
  1341. #endif
  1342. #if HAS_E3_MICROSTEPS
  1343. case 6: WRITE(E3_MS1_PIN, ms1); break;
  1344. #endif
  1345. #if HAS_E4_MICROSTEPS
  1346. case 7: WRITE(E4_MS1_PIN, ms1); break;
  1347. #endif
  1348. }
  1349. if (ms2 >= 0) switch (driver) {
  1350. case 0: WRITE(X_MS2_PIN, ms2); break;
  1351. #if HAS_Y_MICROSTEPS
  1352. case 1: WRITE(Y_MS2_PIN, ms2); break;
  1353. #endif
  1354. #if HAS_Z_MICROSTEPS
  1355. case 2: WRITE(Z_MS2_PIN, ms2); break;
  1356. #endif
  1357. #if HAS_E0_MICROSTEPS
  1358. case 3: WRITE(E0_MS2_PIN, ms2); break;
  1359. #endif
  1360. #if HAS_E1_MICROSTEPS
  1361. case 4: WRITE(E1_MS2_PIN, ms2); break;
  1362. #endif
  1363. #if HAS_E2_MICROSTEPS
  1364. case 5: WRITE(E2_MS2_PIN, ms2); break;
  1365. #endif
  1366. #if HAS_E3_MICROSTEPS
  1367. case 6: WRITE(E3_MS2_PIN, ms2); break;
  1368. #endif
  1369. #if HAS_E4_MICROSTEPS
  1370. case 7: WRITE(E4_MS2_PIN, ms2); break;
  1371. #endif
  1372. }
  1373. }
  1374. void Stepper::microstep_mode(const uint8_t driver, const uint8_t stepping_mode) {
  1375. switch (stepping_mode) {
  1376. case 1: microstep_ms(driver, MICROSTEP1); break;
  1377. case 2: microstep_ms(driver, MICROSTEP2); break;
  1378. case 4: microstep_ms(driver, MICROSTEP4); break;
  1379. case 8: microstep_ms(driver, MICROSTEP8); break;
  1380. case 16: microstep_ms(driver, MICROSTEP16); break;
  1381. #if MB(ALLIGATOR)
  1382. case 32: microstep_ms(driver, MICROSTEP32); break;
  1383. #endif
  1384. }
  1385. }
  1386. void Stepper::microstep_readings() {
  1387. SERIAL_PROTOCOLLNPGM("MS1,MS2 Pins");
  1388. SERIAL_PROTOCOLPGM("X: ");
  1389. SERIAL_PROTOCOL(READ(X_MS1_PIN));
  1390. SERIAL_PROTOCOLLN(READ(X_MS2_PIN));
  1391. #if HAS_Y_MICROSTEPS
  1392. SERIAL_PROTOCOLPGM("Y: ");
  1393. SERIAL_PROTOCOL(READ(Y_MS1_PIN));
  1394. SERIAL_PROTOCOLLN(READ(Y_MS2_PIN));
  1395. #endif
  1396. #if HAS_Z_MICROSTEPS
  1397. SERIAL_PROTOCOLPGM("Z: ");
  1398. SERIAL_PROTOCOL(READ(Z_MS1_PIN));
  1399. SERIAL_PROTOCOLLN(READ(Z_MS2_PIN));
  1400. #endif
  1401. #if HAS_E0_MICROSTEPS
  1402. SERIAL_PROTOCOLPGM("E0: ");
  1403. SERIAL_PROTOCOL(READ(E0_MS1_PIN));
  1404. SERIAL_PROTOCOLLN(READ(E0_MS2_PIN));
  1405. #endif
  1406. #if HAS_E1_MICROSTEPS
  1407. SERIAL_PROTOCOLPGM("E1: ");
  1408. SERIAL_PROTOCOL(READ(E1_MS1_PIN));
  1409. SERIAL_PROTOCOLLN(READ(E1_MS2_PIN));
  1410. #endif
  1411. #if HAS_E2_MICROSTEPS
  1412. SERIAL_PROTOCOLPGM("E2: ");
  1413. SERIAL_PROTOCOL(READ(E2_MS1_PIN));
  1414. SERIAL_PROTOCOLLN(READ(E2_MS2_PIN));
  1415. #endif
  1416. #if HAS_E3_MICROSTEPS
  1417. SERIAL_PROTOCOLPGM("E3: ");
  1418. SERIAL_PROTOCOL(READ(E3_MS1_PIN));
  1419. SERIAL_PROTOCOLLN(READ(E3_MS2_PIN));
  1420. #endif
  1421. #if HAS_E4_MICROSTEPS
  1422. SERIAL_PROTOCOLPGM("E4: ");
  1423. SERIAL_PROTOCOL(READ(E4_MS1_PIN));
  1424. SERIAL_PROTOCOLLN(READ(E4_MS2_PIN));
  1425. #endif
  1426. }
  1427. #endif // HAS_MICROSTEPS