tmc2130.cpp 18 KB

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  1. #include "Marlin.h"
  2. #ifdef TMC2130
  3. #include "tmc2130.h"
  4. #include <SPI.h>
  5. #define TMC2130_GCONF_NORMAL 0x00000000 // spreadCycle
  6. #define TMC2130_GCONF_SGSENS 0x00003180 // spreadCycle with stallguard (stall activates DIAG0 and DIAG1 [pushpull])
  7. #define TMC2130_GCONF_SILENT 0x00000004 // stealthChop
  8. //externals for debuging
  9. extern float current_position[4];
  10. extern void st_get_position_xy(long &x, long &y);
  11. extern long st_get_position(uint8_t axis);
  12. //chipselect pins
  13. uint8_t tmc2130_cs[4] = { X_TMC2130_CS, Y_TMC2130_CS, Z_TMC2130_CS, E0_TMC2130_CS };
  14. //diag pins
  15. uint8_t tmc2130_diag[4] = { X_TMC2130_DIAG, Y_TMC2130_DIAG, Z_TMC2130_DIAG, E0_TMC2130_DIAG };
  16. //mode
  17. uint8_t tmc2130_mode = TMC2130_MODE_NORMAL;
  18. //holding currents
  19. uint8_t tmc2130_current_h[4] = TMC2130_CURRENTS_H;
  20. //running currents
  21. uint8_t tmc2130_current_r[4] = TMC2130_CURRENTS_R;
  22. //axis stalled flags
  23. uint8_t tmc2130_axis_stalled[3] = {0, 0, 0};
  24. //pwm_ampl
  25. uint8_t tmc2130_pwm_ampl[2] = {TMC2130_PWM_AMPL_XY, TMC2130_PWM_AMPL_XY};
  26. //pwm_grad
  27. uint8_t tmc2130_pwm_grad[2] = {TMC2130_PWM_GRAD_XY, TMC2130_PWM_GRAD_XY};
  28. //pwm_auto
  29. uint8_t tmc2130_pwm_auto[2] = {TMC2130_PWM_AUTO_XY, TMC2130_PWM_AUTO_XY};
  30. //pwm_freq
  31. uint8_t tmc2130_pwm_freq[2] = {TMC2130_PWM_FREQ_XY, TMC2130_PWM_FREQ_XY};
  32. uint8_t tmc2131_axis_sg_thr[3] = {TMC2130_SG_THRS_X, TMC2130_SG_THRS_Y, TMC2130_SG_THRS_Z};
  33. uint32_t tmc2131_axis_sg_pos[3] = {0, 0, 0};
  34. uint8_t sg_homing_axes_mask = 0x00;
  35. bool skip_debug_msg = false;
  36. //TMC2130 registers
  37. #define TMC2130_REG_GCONF 0x00 // 17 bits
  38. #define TMC2130_REG_GSTAT 0x01 // 3 bits
  39. #define TMC2130_REG_IOIN 0x04 // 8+8 bits
  40. #define TMC2130_REG_IHOLD_IRUN 0x10 // 5+5+4 bits
  41. #define TMC2130_REG_TPOWERDOWN 0x11 // 8 bits
  42. #define TMC2130_REG_TSTEP 0x12 // 20 bits
  43. #define TMC2130_REG_TPWMTHRS 0x13 // 20 bits
  44. #define TMC2130_REG_TCOOLTHRS 0x14 // 20 bits
  45. #define TMC2130_REG_THIGH 0x15 // 20 bits
  46. #define TMC2130_REG_XDIRECT 0x2d // 32 bits
  47. #define TMC2130_REG_VDCMIN 0x33 // 23 bits
  48. #define TMC2130_REG_MSLUT0 0x60 // 32 bits
  49. #define TMC2130_REG_MSLUT1 0x61 // 32 bits
  50. #define TMC2130_REG_MSLUT2 0x62 // 32 bits
  51. #define TMC2130_REG_MSLUT3 0x63 // 32 bits
  52. #define TMC2130_REG_MSLUT4 0x64 // 32 bits
  53. #define TMC2130_REG_MSLUT5 0x65 // 32 bits
  54. #define TMC2130_REG_MSLUT6 0x66 // 32 bits
  55. #define TMC2130_REG_MSLUT7 0x67 // 32 bits
  56. #define TMC2130_REG_MSLUTSEL 0x68 // 32 bits
  57. #define TMC2130_REG_MSLUTSTART 0x69 // 8+8 bits
  58. #define TMC2130_REG_MSCNT 0x6a // 10 bits
  59. #define TMC2130_REG_MSCURACT 0x6b // 9+9 bits
  60. #define TMC2130_REG_CHOPCONF 0x6c // 32 bits
  61. #define TMC2130_REG_COOLCONF 0x6d // 25 bits
  62. #define TMC2130_REG_DCCTRL 0x6e // 24 bits
  63. #define TMC2130_REG_DRV_STATUS 0x6f // 32 bits
  64. #define TMC2130_REG_PWMCONF 0x70 // 22 bits
  65. #define TMC2130_REG_PWM_SCALE 0x71 // 8 bits
  66. #define TMC2130_REG_ENCM_CTRL 0x72 // 2 bits
  67. #define TMC2130_REG_LOST_STEPS 0x73 // 20 bits
  68. uint16_t tmc2130_rd_TSTEP(uint8_t cs);
  69. uint16_t tmc2130_rd_MSCNT(uint8_t cs);
  70. uint16_t tmc2130_rd_DRV_STATUS(uint8_t cs);
  71. void tmc2130_wr_CHOPCONF(uint8_t cs, uint8_t toff = 3, uint8_t hstrt = 4, uint8_t hend = 1, uint8_t fd3 = 0, uint8_t disfdcc = 0, uint8_t rndtf = 0, uint8_t chm = 0, uint8_t tbl = 2, uint8_t vsense = 0, uint8_t vhighfs = 0, uint8_t vhighchm = 0, uint8_t sync = 0, uint8_t mres = 0b0100, uint8_t intpol = 1, uint8_t dedge = 0, uint8_t diss2g = 0);
  72. void tmc2130_wr_PWMCONF(uint8_t cs, uint8_t pwm_ampl, uint8_t pwm_grad, uint8_t pwm_freq, uint8_t pwm_auto, uint8_t pwm_symm, uint8_t freewheel);
  73. void tmc2130_wr_TPWMTHRS(uint8_t cs, uint32_t val32);
  74. void tmc2130_wr_THIGH(uint8_t cs, uint32_t val32);
  75. uint8_t tmc2130_axis_by_cs(uint8_t cs);
  76. uint8_t tmc2130_mres(uint16_t microstep_resolution);
  77. uint8_t tmc2130_wr(uint8_t cs, uint8_t addr, uint32_t wval);
  78. uint8_t tmc2130_rd(uint8_t cs, uint8_t addr, uint32_t* rval);
  79. uint8_t tmc2130_txrx(uint8_t cs, uint8_t addr, uint32_t wval, uint32_t* rval);
  80. void tmc2130_init()
  81. {
  82. MYSERIAL.print("tmc2130_init mode=");
  83. MYSERIAL.println(tmc2130_mode, DEC);
  84. WRITE(X_TMC2130_CS, HIGH);
  85. WRITE(Y_TMC2130_CS, HIGH);
  86. WRITE(Z_TMC2130_CS, HIGH);
  87. WRITE(E0_TMC2130_CS, HIGH);
  88. SET_OUTPUT(X_TMC2130_CS);
  89. SET_OUTPUT(Y_TMC2130_CS);
  90. SET_OUTPUT(Z_TMC2130_CS);
  91. SET_OUTPUT(E0_TMC2130_CS);
  92. SET_INPUT(X_TMC2130_DIAG);
  93. SET_INPUT(Y_TMC2130_DIAG);
  94. SET_INPUT(Z_TMC2130_DIAG);
  95. SET_INPUT(E0_TMC2130_DIAG);
  96. SPI.begin();
  97. for (int i = 0; i < 2; i++) // X Y axes
  98. {
  99. uint8_t mres = tmc2130_mres(TMC2130_USTEPS_XY);
  100. tmc2130_wr_CHOPCONF(tmc2130_cs[i], 3, 5, 1, 0, 0, 0, 0, 2, 1, 0, 0, 0, mres, TMC2130_INTPOL_XY, 0, 0);
  101. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | ((tmc2130_current_r[i] & 0x1f) << 8) | (tmc2130_current_h[i] & 0x1f));
  102. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_TPOWERDOWN, 0x00000000);
  103. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_GCONF, (tmc2130_mode == TMC2130_MODE_SILENT)?TMC2130_GCONF_SILENT:TMC2130_GCONF_SGSENS);
  104. tmc2130_wr_PWMCONF(tmc2130_cs[i], tmc2130_pwm_ampl[i], tmc2130_pwm_grad[i], tmc2130_pwm_freq[i], tmc2130_pwm_auto[i], 0, 0);
  105. tmc2130_wr_TPWMTHRS(tmc2130_cs[i], TMC2130_TPWMTHRS);
  106. //tmc2130_wr_THIGH(tmc2130_cs[i], TMC2130_THIGH);
  107. }
  108. for (int i = 2; i < 3; i++) // Z axis
  109. {
  110. uint8_t mres = tmc2130_mres(TMC2130_USTEPS_Z);
  111. if (tmc2130_current_r[i] <= 31)
  112. {
  113. tmc2130_wr_CHOPCONF(tmc2130_cs[i], 3, 5, 1, 0, 0, 0, 0, 2, 1, 0, 0, 0, mres, TMC2130_INTPOL_Z, 0, 0);
  114. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | ((tmc2130_current_r[i] & 0x1f) << 8) | (tmc2130_current_h[i] & 0x1f));
  115. }
  116. else
  117. {
  118. tmc2130_wr_CHOPCONF(tmc2130_cs[i], 3, 5, 1, 0, 0, 0, 0, 2, 0, 0, 0, 0, mres, TMC2130_INTPOL_Z, 0, 0);
  119. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | (((tmc2130_current_r[i] >> 1) & 0x1f) << 8) | ((tmc2130_current_h[i] >> 1) & 0x1f));
  120. }
  121. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_TPOWERDOWN, 0x00000000);
  122. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_GCONF, TMC2130_GCONF_SGSENS);
  123. }
  124. for (int i = 3; i < 4; i++) // E axis
  125. {
  126. uint8_t mres = tmc2130_mres(TMC2130_USTEPS_E);
  127. tmc2130_wr_CHOPCONF(tmc2130_cs[i], 3, 5, 1, 0, 0, 0, 0, 2, 1, 0, 0, 0, mres, TMC2130_INTPOL_E, 0, 0);
  128. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | ((tmc2130_current_r[i] & 0x1f) << 8) | (tmc2130_current_h[i] & 0x1f));
  129. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_TPOWERDOWN, 0x00000000);
  130. tmc2130_wr(tmc2130_cs[i], TMC2130_REG_GCONF, 0x00000000);
  131. }
  132. }
  133. void tmc2130_update_sg_axis(uint8_t axis)
  134. {
  135. if (!tmc2130_axis_stalled[axis])
  136. {
  137. uint8_t cs = tmc2130_cs[axis];
  138. uint16_t tstep = tmc2130_rd_TSTEP(cs);
  139. if (tstep < TMC2130_TCOOLTHRS)
  140. {
  141. long pos = st_get_position(axis);
  142. if (abs(pos - tmc2131_axis_sg_pos[axis]) > TMC2130_SG_DELTA)
  143. {
  144. uint16_t sg = tmc2130_rd_DRV_STATUS(cs) & 0x3ff;
  145. if (sg == 0)
  146. tmc2130_axis_stalled[axis] = true;
  147. }
  148. }
  149. }
  150. }
  151. bool tmc2130_update_sg()
  152. {
  153. #ifdef TMC2130_SG_HOMING_SW_XY
  154. if (sg_homing_axes_mask & X_AXIS_MASK) tmc2130_update_sg_axis(X_AXIS);
  155. if (sg_homing_axes_mask & Y_AXIS_MASK) tmc2130_update_sg_axis(Y_AXIS);
  156. #endif //TMC2130_SG_HOMING_SW_XY
  157. #ifdef TMC2130_SG_HOMING_SW_Z
  158. if (sg_homing_axes_mask & Z_AXIS_MASK) tmc2130_update_sg_axis(Z_AXIS);
  159. #endif //TMC2130_SG_HOMING_SW_Z
  160. #if (defined(TMC2130_SG_HOMING) && defined(TMC2130_SG_HOMING_SW_XY))
  161. if (sg_homing_axes_mask == 0) return false;
  162. #ifdef TMC2130_DEBUG
  163. MYSERIAL.print("tmc2130_update_sg mask=0x");
  164. MYSERIAL.print((int)sg_homing_axes_mask, 16);
  165. MYSERIAL.print(" stalledX=");
  166. MYSERIAL.print((int)tmc2130_axis_stalled[0]);
  167. MYSERIAL.print(" stalledY=");
  168. MYSERIAL.println((int)tmc2130_axis_stalled[1]);
  169. #endif //TMC2130_DEBUG
  170. for (uint8_t axis = X_AXIS; axis <= Y_AXIS; axis++) //only X and Y axes
  171. {
  172. uint8_t mask = (X_AXIS_MASK << axis);
  173. if (sg_homing_axes_mask & mask)
  174. {
  175. if (!tmc2130_axis_stalled[axis])
  176. {
  177. uint8_t cs = tmc2130_cs[axis];
  178. uint16_t tstep = tmc2130_rd_TSTEP(cs);
  179. if (tstep < TMC2130_TCOOLTHRS)
  180. {
  181. long pos = st_get_position(axis);
  182. if (abs(pos - tmc2131_axis_sg_pos[axis]) > TMC2130_SG_DELTA)
  183. {
  184. uint16_t sg = tmc2130_rd_DRV_STATUS(cs) & 0x3ff;
  185. if (sg == 0)
  186. {
  187. tmc2130_axis_stalled[axis] = true;
  188. #ifdef TMC2130_DEBUG
  189. MYSERIAL.print("tmc2130_update_sg AXIS STALLED ");
  190. MYSERIAL.println((int)axis);
  191. #endif //TMC2130_DEBUG
  192. }
  193. }
  194. }
  195. }
  196. }
  197. }
  198. return true;
  199. #endif
  200. return false;
  201. }
  202. void tmc2130_home_enter(uint8_t axes_mask)
  203. {
  204. #ifdef TMC2130_DEBUG
  205. MYSERIAL.print("tmc2130_home_enter mask=0x");
  206. MYSERIAL.println((int)axes_mask, 16);
  207. #endif //TMC2130_DEBUG
  208. #ifdef TMC2130_SG_HOMING
  209. for (uint8_t axis = X_AXIS; axis <= Z_AXIS; axis++) //X Y and Z axes
  210. {
  211. uint8_t mask = (X_AXIS_MASK << axis);
  212. uint8_t cs = tmc2130_cs[axis];
  213. if (axes_mask & mask)
  214. {
  215. sg_homing_axes_mask |= mask;
  216. tmc2131_axis_sg_pos[axis] = st_get_position(axis);
  217. tmc2130_axis_stalled[axis] = false;
  218. //Configuration to spreadCycle
  219. tmc2130_wr(cs, TMC2130_REG_GCONF, TMC2130_GCONF_NORMAL);
  220. tmc2130_wr(cs, TMC2130_REG_COOLCONF, ((unsigned long)tmc2131_axis_sg_thr[axis]) << 16);
  221. tmc2130_wr(cs, TMC2130_REG_TCOOLTHRS, TMC2130_TCOOLTHRS);
  222. #ifndef TMC2130_SG_HOMING_SW_XY
  223. if (mask & (X_AXIS_MASK | Y_AXIS_MASK))
  224. tmc2130_wr(cs, TMC2130_REG_GCONF, TMC2130_GCONF_SGSENS); //stallguard output DIAG1, DIAG1 = pushpull
  225. #endif //TMC2130_SG_HOMING_SW_XY
  226. }
  227. }
  228. #endif //TMC2130_SG_HOMING
  229. }
  230. void tmc2130_home_exit()
  231. {
  232. #ifdef TMC2130_DEBUG
  233. MYSERIAL.print("tmc2130_home_exit mask=0x");
  234. MYSERIAL.println((int)sg_homing_axes_mask, 16);
  235. #endif //TMC2130_DEBUG
  236. #ifdef TMC2130_SG_HOMING
  237. if (sg_homing_axes_mask)
  238. {
  239. for (uint8_t axis = X_AXIS; axis <= Z_AXIS; axis++) //X Y and Z axes
  240. {
  241. uint8_t mask = (X_AXIS_MASK << axis);
  242. if (sg_homing_axes_mask & mask & (X_AXIS_MASK | Y_AXIS_MASK))
  243. {
  244. if (tmc2130_mode == TMC2130_MODE_SILENT)
  245. tmc2130_wr(tmc2130_cs[axis], TMC2130_REG_GCONF, TMC2130_GCONF_SILENT); // Configuration back to stealthChop
  246. else
  247. #ifdef TMC2130_SG_HOMING_SW_XY
  248. tmc2130_wr(tmc2130_cs[axis], TMC2130_REG_GCONF, TMC2130_GCONF_NORMAL);
  249. #else //TMC2130_SG_HOMING_SW_XY
  250. tmc2130_wr(tmc2130_cs[axis], TMC2130_REG_GCONF, TMC2130_GCONF_SGSENS);
  251. #endif //TMC2130_SG_HOMING_SW_XY
  252. }
  253. tmc2130_axis_stalled[axis] = false;
  254. }
  255. sg_homing_axes_mask = 0x00;
  256. }
  257. #endif
  258. }
  259. void tmc2130_home_restart(uint8_t axis)
  260. {
  261. tmc2131_axis_sg_pos[axis] = st_get_position(axis);
  262. tmc2130_axis_stalled[axis] = false;
  263. }
  264. void tmc2130_check_overtemp()
  265. {
  266. const static char TMC_OVERTEMP_MSG[] PROGMEM = "TMC DRIVER OVERTEMP ";
  267. static uint32_t checktime = 0;
  268. if (millis() - checktime > 1000 )
  269. {
  270. for (int i = 0; i < 4; i++)
  271. {
  272. uint32_t drv_status = 0;
  273. skip_debug_msg = true;
  274. tmc2130_rd(tmc2130_cs[i], TMC2130_REG_DRV_STATUS, &drv_status);
  275. if (drv_status & ((uint32_t)1 << 26))
  276. { // BIT 26 - over temp prewarning ~120C (+-20C)
  277. SERIAL_ERRORRPGM(TMC_OVERTEMP_MSG);
  278. SERIAL_ECHOLN(i);
  279. for (int j = 0; j < 4; j++)
  280. tmc2130_wr(tmc2130_cs[j], TMC2130_REG_CHOPCONF, 0x00010000);
  281. kill(TMC_OVERTEMP_MSG);
  282. }
  283. }
  284. checktime = millis();
  285. }
  286. }
  287. void tmc2130_set_current_h(uint8_t axis, uint8_t current)
  288. {
  289. MYSERIAL.print("tmc2130_set_current_h ");
  290. MYSERIAL.print((int)axis);
  291. MYSERIAL.print(" ");
  292. MYSERIAL.println((int)current);
  293. tmc2130_current_h[axis] = current;
  294. tmc2130_wr(tmc2130_cs[axis], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | ((tmc2130_current_r[axis] & 0x1f) << 8) | (tmc2130_current_h[axis] & 0x1f));
  295. }
  296. void tmc2130_set_current_r(uint8_t axis, uint8_t current)
  297. {
  298. MYSERIAL.print("tmc2130_set_current_r ");
  299. MYSERIAL.print((int)axis);
  300. MYSERIAL.print(" ");
  301. MYSERIAL.println((int)current);
  302. tmc2130_current_r[axis] = current;
  303. tmc2130_wr(tmc2130_cs[axis], TMC2130_REG_IHOLD_IRUN, 0x000f0000 | ((tmc2130_current_r[axis] & 0x1f) << 8) | (tmc2130_current_h[axis] & 0x1f));
  304. }
  305. void tmc2130_print_currents()
  306. {
  307. MYSERIAL.println("tmc2130_print_currents");
  308. MYSERIAL.println("\tH\rR");
  309. MYSERIAL.print("X\t");
  310. MYSERIAL.print((int)tmc2130_current_h[0]);
  311. MYSERIAL.print("\t");
  312. MYSERIAL.println((int)tmc2130_current_r[0]);
  313. MYSERIAL.print("Y\t");
  314. MYSERIAL.print((int)tmc2130_current_h[1]);
  315. MYSERIAL.print("\t");
  316. MYSERIAL.println((int)tmc2130_current_r[1]);
  317. MYSERIAL.print("Z\t");
  318. MYSERIAL.print((int)tmc2130_current_h[2]);
  319. MYSERIAL.print("\t");
  320. MYSERIAL.println((int)tmc2130_current_r[2]);
  321. MYSERIAL.print("E\t");
  322. MYSERIAL.print((int)tmc2130_current_h[3]);
  323. MYSERIAL.print("\t");
  324. MYSERIAL.println((int)tmc2130_current_r[3]);
  325. }
  326. void tmc2130_set_pwm_ampl(uint8_t axis, uint8_t pwm_ampl)
  327. {
  328. MYSERIAL.print("tmc2130_set_pwm_ampl ");
  329. MYSERIAL.print((int)axis);
  330. MYSERIAL.print(" ");
  331. MYSERIAL.println((int)pwm_ampl);
  332. tmc2130_pwm_ampl[axis] = pwm_ampl;
  333. if (((axis == 0) || (axis == 1)) && (tmc2130_mode == TMC2130_MODE_SILENT))
  334. tmc2130_wr_PWMCONF(tmc2130_cs[axis], tmc2130_pwm_ampl[axis], tmc2130_pwm_grad[axis], tmc2130_pwm_freq[axis], tmc2130_pwm_auto[axis], 0, 0);
  335. }
  336. void tmc2130_set_pwm_grad(uint8_t axis, uint8_t pwm_grad)
  337. {
  338. MYSERIAL.print("tmc2130_set_pwm_grad ");
  339. MYSERIAL.print((int)axis);
  340. MYSERIAL.print(" ");
  341. MYSERIAL.println((int)pwm_grad);
  342. tmc2130_pwm_grad[axis] = pwm_grad;
  343. if (((axis == 0) || (axis == 1)) && (tmc2130_mode == TMC2130_MODE_SILENT))
  344. tmc2130_wr_PWMCONF(tmc2130_cs[axis], tmc2130_pwm_ampl[axis], tmc2130_pwm_grad[axis], tmc2130_pwm_freq[axis], tmc2130_pwm_auto[axis], 0, 0);
  345. }
  346. uint16_t tmc2130_rd_TSTEP(uint8_t cs)
  347. {
  348. uint32_t val32 = 0;
  349. tmc2130_rd(cs, TMC2130_REG_TSTEP, &val32);
  350. if (val32 & 0x000f0000) return 0xffff;
  351. return val32 & 0xffff;
  352. }
  353. uint16_t tmc2130_rd_MSCNT(uint8_t cs)
  354. {
  355. uint32_t val32 = 0;
  356. tmc2130_rd(cs, TMC2130_REG_MSCNT, &val32);
  357. return val32 & 0x3ff;
  358. }
  359. uint16_t tmc2130_rd_DRV_STATUS(uint8_t cs)
  360. {
  361. uint32_t val32 = 0;
  362. tmc2130_rd(cs, TMC2130_REG_DRV_STATUS, &val32);
  363. return val32;
  364. }
  365. void tmc2130_wr_CHOPCONF(uint8_t cs, uint8_t toff, uint8_t hstrt, uint8_t hend, uint8_t fd3, uint8_t disfdcc, uint8_t rndtf, uint8_t chm, uint8_t tbl, uint8_t vsense, uint8_t vhighfs, uint8_t vhighchm, uint8_t sync, uint8_t mres, uint8_t intpol, uint8_t dedge, uint8_t diss2g)
  366. {
  367. uint32_t val = 0;
  368. val |= (uint32_t)(toff & 15);
  369. val |= (uint32_t)(hstrt & 7) << 4;
  370. val |= (uint32_t)(hend & 15) << 7;
  371. val |= (uint32_t)(fd3 & 1) << 11;
  372. val |= (uint32_t)(disfdcc & 1) << 12;
  373. val |= (uint32_t)(rndtf & 1) << 13;
  374. val |= (uint32_t)(chm & 1) << 14;
  375. val |= (uint32_t)(tbl & 3) << 15;
  376. val |= (uint32_t)(vsense & 1) << 17;
  377. val |= (uint32_t)(vhighfs & 1) << 18;
  378. val |= (uint32_t)(vhighchm & 1) << 19;
  379. val |= (uint32_t)(sync & 15) << 20;
  380. val |= (uint32_t)(mres & 15) << 24;
  381. val |= (uint32_t)(intpol & 1) << 28;
  382. val |= (uint32_t)(dedge & 1) << 29;
  383. val |= (uint32_t)(diss2g & 1) << 30;
  384. tmc2130_wr(cs, TMC2130_REG_CHOPCONF, val);
  385. }
  386. //void tmc2130_wr_PWMCONF(uint8_t cs, uint8_t PWMautoScale, uint8_t PWMfreq, uint8_t PWMgrad, uint8_t PWMampl)
  387. void tmc2130_wr_PWMCONF(uint8_t cs, uint8_t pwm_ampl, uint8_t pwm_grad, uint8_t pwm_freq, uint8_t pwm_auto, uint8_t pwm_symm, uint8_t freewheel)
  388. {
  389. uint32_t val = 0;
  390. val |= (uint32_t)(pwm_ampl & 255);
  391. val |= (uint32_t)(pwm_grad & 255) << 8;
  392. val |= (uint32_t)(pwm_freq & 3) << 16;
  393. val |= (uint32_t)(pwm_auto & 1) << 18;
  394. val |= (uint32_t)(pwm_symm & 1) << 19;
  395. val |= (uint32_t)(freewheel & 3) << 20;
  396. tmc2130_wr(cs, TMC2130_REG_PWMCONF, val);
  397. // tmc2130_wr(cs, TMC2130_REG_PWMCONF, ((uint32_t)(PWMautoScale+PWMfreq) << 16) | ((uint32_t)PWMgrad << 8) | PWMampl); // TMC LJ -> For better readability changed to 0x00 and added PWMautoScale and PWMfreq
  398. }
  399. void tmc2130_wr_TPWMTHRS(uint8_t cs, uint32_t val32)
  400. {
  401. tmc2130_wr(cs, TMC2130_REG_TPWMTHRS, val32);
  402. }
  403. void tmc2130_wr_THIGH(uint8_t cs, uint32_t val32)
  404. {
  405. tmc2130_wr(cs, TMC2130_REG_THIGH, val32);
  406. }
  407. #if defined(TMC2130_DEBUG_RD) || defined(TMC2130_DEBUG_WR)
  408. uint8_t tmc2130_axis_by_cs(uint8_t cs)
  409. {
  410. switch (cs)
  411. {
  412. case X_TMC2130_CS: return 0;
  413. case Y_TMC2130_CS: return 1;
  414. case Z_TMC2130_CS: return 2;
  415. case E0_TMC2130_CS: return 3;
  416. }
  417. return -1;
  418. }
  419. #endif //TMC2130_DEBUG
  420. uint8_t tmc2130_mres(uint16_t microstep_resolution)
  421. {
  422. if (microstep_resolution == 256) return 0b0000;
  423. if (microstep_resolution == 128) return 0b0001;
  424. if (microstep_resolution == 64) return 0b0010;
  425. if (microstep_resolution == 32) return 0b0011;
  426. if (microstep_resolution == 16) return 0b0100;
  427. if (microstep_resolution == 8) return 0b0101;
  428. if (microstep_resolution == 4) return 0b0110;
  429. if (microstep_resolution == 2) return 0b0111;
  430. if (microstep_resolution == 1) return 0b1000;
  431. return 0;
  432. }
  433. uint8_t tmc2130_wr(uint8_t cs, uint8_t addr, uint32_t wval)
  434. {
  435. uint8_t stat = tmc2130_txrx(cs, addr | 0x80, wval, 0);
  436. #ifdef TMC2130_DEBUG_WR
  437. MYSERIAL.print("tmc2130_wr(");
  438. MYSERIAL.print((unsigned char)tmc2130_axis_by_cs(cs), DEC);
  439. MYSERIAL.print(", 0x");
  440. MYSERIAL.print((unsigned char)addr, HEX);
  441. MYSERIAL.print(", 0x");
  442. MYSERIAL.print((unsigned long)wval, HEX);
  443. MYSERIAL.print(")=0x");
  444. MYSERIAL.println((unsigned char)stat, HEX);
  445. #endif //TMC2130_DEBUG_WR
  446. return stat;
  447. }
  448. uint8_t tmc2130_rd(uint8_t cs, uint8_t addr, uint32_t* rval)
  449. {
  450. uint32_t val32 = 0;
  451. uint8_t stat = tmc2130_txrx(cs, addr, 0x00000000, &val32);
  452. if (rval != 0) *rval = val32;
  453. #ifdef TMC2130_DEBUG_RD
  454. if (!skip_debug_msg)
  455. {
  456. MYSERIAL.print("tmc2130_rd(");
  457. MYSERIAL.print((unsigned char)tmc2130_axis_by_cs(cs), DEC);
  458. MYSERIAL.print(", 0x");
  459. MYSERIAL.print((unsigned char)addr, HEX);
  460. MYSERIAL.print(", 0x");
  461. MYSERIAL.print((unsigned long)val32, HEX);
  462. MYSERIAL.print(")=0x");
  463. MYSERIAL.println((unsigned char)stat, HEX);
  464. }
  465. skip_debug_msg = false;
  466. #endif //TMC2130_DEBUG_RD
  467. return stat;
  468. }
  469. uint8_t tmc2130_txrx(uint8_t cs, uint8_t addr, uint32_t wval, uint32_t* rval)
  470. {
  471. //datagram1 - request
  472. SPI.beginTransaction(SPISettings(4000000, MSBFIRST, SPI_MODE3));
  473. digitalWrite(cs, LOW);
  474. SPI.transfer(addr); // address
  475. SPI.transfer((wval >> 24) & 0xff); // MSB
  476. SPI.transfer((wval >> 16) & 0xff);
  477. SPI.transfer((wval >> 8) & 0xff);
  478. SPI.transfer(wval & 0xff); // LSB
  479. digitalWrite(cs, HIGH);
  480. SPI.endTransaction();
  481. //datagram2 - response
  482. SPI.beginTransaction(SPISettings(4000000, MSBFIRST, SPI_MODE3));
  483. digitalWrite(cs, LOW);
  484. uint8_t stat = SPI.transfer(0); // status
  485. uint32_t val32 = 0;
  486. val32 = SPI.transfer(0); // MSB
  487. val32 = (val32 << 8) | SPI.transfer(0);
  488. val32 = (val32 << 8) | SPI.transfer(0);
  489. val32 = (val32 << 8) | SPI.transfer(0); // LSB
  490. digitalWrite(cs, HIGH);
  491. SPI.endTransaction();
  492. if (rval != 0) *rval = val32;
  493. return stat;
  494. }
  495. #endif //TMC2130