commands.c 12 KB

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  1. #include "os/os_task.h"
  2. #include "os/queue.h"
  3. #include "libs/logger.h"
  4. #include "libs/utils.h"
  5. #include "prot/can_message.h"
  6. #include "bsp/bsp.h"
  7. #include "bsp/pwm.h"
  8. #include "bsp/adc.h"
  9. #include "foc/motor/motor.h"
  10. #include "foc/commands.h"
  11. #include "prot/can_foc_msg.h"
  12. #include "app/nv_storage.h"
  13. #ifdef CONFIG_DQ_STEP_RESPONSE
  14. extern float target_d;
  15. extern float target_q;
  16. #endif
  17. static void _reboot_timer_handler(shark_timer_t *);
  18. static shark_timer_t _reboot_timer = TIMER_INIT(_reboot_timer, _reboot_timer_handler);
  19. static u32 foc_command_task(void *args);
  20. static void process_foc_command(foc_cmd_body_t *command);
  21. static co_queue_t _cmd_queue;
  22. void foc_command_init(void) {
  23. _cmd_queue = queue_create(16, sizeof(foc_cmd_body_t));
  24. shark_task_create(foc_command_task, NULL);
  25. }
  26. bool foc_send_command(foc_cmd_body_t *command) {
  27. if (!queue_put(_cmd_queue, command)) {
  28. if (command->data) {
  29. os_free(command->data);
  30. }
  31. return false;
  32. }
  33. return true;
  34. }
  35. static u32 foc_command_task(void *args) {
  36. foc_cmd_body_t command;
  37. if (queue_get(_cmd_queue, &command)) {
  38. process_foc_command(&command);
  39. if (command.data) {
  40. os_free(command.data);
  41. }
  42. }
  43. return 0;
  44. }
  45. static void process_ext_command(foc_cmd_body_t *command) {
  46. if (command->ext_key == 0x1A01) {
  47. return;
  48. }else if (command->ext_key == 0x1A02) {
  49. u8 b0 = decode_u8(command->data);
  50. u8 p_mode = decode_8bits(b0, 0, 1);
  51. if (p_mode == 1) {
  52. mc_start(CTRL_MODE_TRQ);
  53. }else if (p_mode == 2) {
  54. mc_stop();
  55. }
  56. s8 ext_gear = decode_8bits(b0, 5, 7);
  57. if (ext_gear >= 0 && ext_gear <= 5) {
  58. if (ext_gear == 0) {
  59. mc_set_gear(3);
  60. }else {
  61. mc_set_gear(ext_gear - 1);
  62. }
  63. }
  64. sys_debug("gear %d\n", ext_gear);
  65. u8 b1 = decode_u8((u8 *)command->data + 1);
  66. u8 cruise = decode_8bits(b1, 0, 1);
  67. if (cruise == 2) {
  68. PMSM_FOC_EnableCruise(true);
  69. }else if (cruise == 1) {
  70. PMSM_FOC_EnableCruise(false);
  71. }
  72. u8 epm = decode_8bits(b0, 2, 3);
  73. if (epm == 2) {
  74. mc_start_epm(true);
  75. }else if(epm == 1) {
  76. mc_start_epm(false);
  77. }
  78. u8 m_4896 = decode_8bits(b1, 4, 5);
  79. u8 epm_dir = decode_8bits(b1, 6, 7);
  80. if (epm_dir == 0) {
  81. mc_command_epm_move(EPM_Dir_None);
  82. }else if (epm_dir == 1) {
  83. mc_command_epm_move(EPM_Dir_Back);
  84. }else if (epm_dir == 2) {
  85. mc_command_epm_move(EPM_Dir_Forward);
  86. }
  87. u16 cruise_spd = decode_u16((u8 *)command->data + 3);
  88. if ((cruise_spd > 0) && (cruise_spd != 0xFFFF)) {
  89. PMSM_FOC_Set_CruiseSpeed((float)cruise_spd);
  90. }
  91. u8 response[8] = {0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF};
  92. response[0] &= 0xFC;
  93. response[0] |= (mc_is_start()?1:2);
  94. response[0] |= (mc_get_gear() << 5);
  95. response[1] &= 0xC0;
  96. response[1] |= (PMSM_FOC_Is_CruiseEnabled()?2:1);
  97. response[1] |= (mc_is_epm()?1:2) << 2;
  98. response[1] |= m_4896<<4;
  99. shark_can0_send_ext_message(0x1A024D43, response, sizeof(response));
  100. }else if (command->ext_key == 0x1A05) {
  101. shark_can0_send_ext_message(0x1A054D43, command->data, command->len);
  102. }
  103. }
  104. static void process_foc_command(foc_cmd_body_t *command) {
  105. u8 erroCode = 0;
  106. u8 response[32];
  107. int len = 3;
  108. if ((command->ext_key != 0) && (command->cmd == 0)) {
  109. process_ext_command(command);
  110. return;
  111. }
  112. switch (command->cmd) {
  113. case Foc_Start_Motor:
  114. {
  115. bool success;
  116. foc_start_cmd_t *scmd = (foc_start_cmd_t *)command->data;
  117. sys_debug("start cmd %d\n", scmd->start_stop);
  118. if (scmd->start_stop == Foc_Start) {
  119. success = mc_start(CTRL_MODE_TRQ);
  120. }else if (scmd->start_stop == Foc_Stop) {
  121. success = mc_stop();
  122. }
  123. if (!success) {
  124. erroCode = PMSM_FOC_GetErrCode();
  125. }
  126. sys_debug("start motor %d\n", erroCode);
  127. break;
  128. }
  129. case Foc_Set_Cruise_Mode:
  130. {
  131. u8 enable = decode_u8(command->data);
  132. if (!PMSM_FOC_EnableCruise(enable)) {
  133. erroCode = PMSM_FOC_GetErrCode();
  134. }
  135. break;
  136. }
  137. case Foc_Set_Cruise_Speed:
  138. {
  139. u8 mode = decode_u8(command->data);
  140. float rpm = (float)decode_s16((u8 *)command->data + 1);
  141. if (mode == 0) {
  142. rpm = PMSM_FOC_GetSpeed() + rpm;
  143. }
  144. if (!PMSM_FOC_Set_CruiseSpeed(rpm)) {
  145. erroCode = PMSM_FOC_GetErrCode();
  146. }
  147. sys_debug("Cruise RPM %d\n", (int)rpm);
  148. encode_u16(response + 3, (s16)rpm);
  149. len += 2;
  150. break;
  151. }
  152. case Foc_Set_Ctrl_Mode:
  153. {
  154. u8 mode = decode_u8(command->data);
  155. sys_debug("mode = %d\n", mode);
  156. if (!mc_set_foc_mode(mode)) {
  157. erroCode = PMSM_FOC_GetErrCode();
  158. }
  159. response[len++] = PMSM_FOC_GetCtrlMode();
  160. break;
  161. }
  162. case Foc_Set_Gear_Limit:
  163. {
  164. sys_debug("len = %d\n", command->len);
  165. if (command->len < 9) {
  166. erroCode = FOC_Param_Err;
  167. }else {
  168. u8 gear = decode_u8(command->data);
  169. u16 maxRPM = decode_u16((u8 *)command->data + 1);
  170. u16 maxPhaseCurr = decode_u16((u8 *)command->data + 3);
  171. u16 maxiDC = decode_u16((u8 *)command->data + 5);
  172. u16 accline = decode_u16((u8 *)command->data + 7);
  173. sys_debug("gear 0x%x, rpm %d, phase %d idc %d acc %d\n", gear, maxRPM, maxPhaseCurr, maxiDC, accline);
  174. if (!nv_set_gear_config((gear>>4 & 0xF), (gear & 0xF), maxRPM, maxPhaseCurr, maxiDC, accline)){
  175. erroCode = FOC_Param_Err;
  176. }
  177. }
  178. break;
  179. }
  180. case Foc_Get_Gear_Limit:
  181. {
  182. u8 gear = decode_u8(command->data);
  183. u16 maxRPM;
  184. u16 maxPhaseCurr;
  185. u16 maxiDC;
  186. u16 accline;
  187. sys_debug("gear = 0x%x\n", gear);
  188. if (!nv_get_gear_config((gear>>4 & 0xF), (gear & 0xF), &maxRPM, &maxPhaseCurr, &maxiDC, &accline)){
  189. erroCode = FOC_Param_Err;
  190. }else {
  191. encode_u8(response + 3, gear);
  192. encode_u16(response + 4, maxRPM);
  193. encode_u16(response + 6, maxPhaseCurr);
  194. encode_u16(response + 8, maxiDC);
  195. encode_u16(response + 10, accline);
  196. len += 9;
  197. }
  198. break;
  199. }
  200. case Foc_Set_Speed_Limit:
  201. {
  202. s16 speed = decode_s16(((u8 *)command->data));
  203. PMSM_FOC_SpeedLimit(speed);
  204. encode_u16(response + 3, (u16)PMSM_FOC_GetSpeedLimit());
  205. len += 2;
  206. break;
  207. }
  208. case Foc_Set_iDC_Limit:
  209. {
  210. u8 current = decode_u8(((u8 *)command->data));
  211. PMSM_FOC_DCCurrLimit((float)current);
  212. encode_u8(response + 3, (u8)PMSM_FOC_GetDCCurrLimit());
  213. len += 1;
  214. break;
  215. }
  216. case Foc_Set_Phase_CurrLim:
  217. {
  218. s16 curr = decode_s16(((u8 *)command->data));
  219. PMSM_FOC_PhaseCurrLim((float)curr);
  220. encode_u16(response + 3, (u16)PMSM_FOC_GetPhaseCurrLim());
  221. len += 2;
  222. break;
  223. }
  224. case Foc_Cali_Hall_Phase:
  225. {
  226. s16 vd = decode_s16((u8 *)command->data);
  227. sys_debug("cali encoder %d\n", vd);
  228. //mc_encoder_off_calibrate((vd));
  229. mc_encoder_zero_calibrate(vd);
  230. break;
  231. }
  232. case Foc_Set_Open_Dq_Vol:
  233. {
  234. s16 vd = decode_s16(((u8 *)command->data));
  235. s16 vq = decode_s16(((u8 *)command->data) + 2);
  236. sys_debug("set v_q %d, %d\n", vd, vq);
  237. PMSM_FOC_SetOpenVdq(vd, (vq));
  238. break;
  239. }
  240. case Foc_Conf_Pid:
  241. {
  242. if (command->len < 13) {
  243. erroCode = FOC_Param_Err;
  244. break;
  245. }
  246. pid_conf_t pid;
  247. u8 id = decode_u8((u8 *)command->data);
  248. memcpy((char *)&pid, (char *)command->data + 1, sizeof(pid_conf_t));
  249. sys_debug("id = %d, kp = %f, ki = %f, kb = %f\n", id, pid.kp, pid.ki, pid.kb);
  250. PMSM_FOC_SetPid(id, pid.kp, pid.ki, pid.kb);
  251. nv_set_pid(id, &pid);
  252. break;
  253. }
  254. case Foc_Get_Pid:
  255. {
  256. pid_conf_t pid;
  257. u8 id = decode_u8((u8 *)command->data);
  258. if (id < PID_Max_id) {
  259. nv_get_pid(id, &pid);
  260. erroCode = id;
  261. memcpy(response+3, &pid, sizeof(pid));
  262. len = sizeof(pid) + 3;
  263. sys_debug("id = %d, kp = %f, ki = %f, kb = %f\n", id, pid.kp, pid.ki, pid.kb);
  264. }else {
  265. erroCode = 1;
  266. len = 3;
  267. }
  268. break;
  269. }
  270. case Foc_Set_EPM_Mode:
  271. {
  272. bool mode = decode_u8((u8 *)command->data) == 0?false:true;
  273. if (!mc_start_epm(mode)) {
  274. erroCode = PMSM_FOC_GetErrCode();
  275. }
  276. break;
  277. }
  278. case Foc_Lock_Motor:
  279. {
  280. u8 lock = decode_u8((u8 *)command->data);
  281. if (lock == Foc_Start) {
  282. mc_lock_motor(true);
  283. }else {
  284. mc_lock_motor(false);
  285. }
  286. erroCode = PMSM_FOC_GetErrCode();
  287. break;
  288. }
  289. case Foc_Auto_Hold:
  290. {
  291. u8 hold = decode_u8((u8 *)command->data);
  292. if (hold == Foc_Start) {
  293. mc_auto_hold(true);
  294. }else {
  295. mc_auto_hold(false);
  296. }
  297. erroCode = PMSM_FOC_GetErrCode();
  298. break;
  299. }
  300. case Foc_Start_EPM_Move:
  301. {
  302. EPM_Dir_t dir = (EPM_Dir_t)decode_u8((u8 *)command->data);
  303. if(!mc_command_epm_move(dir)) {
  304. erroCode = PMSM_FOC_GetErrCode();
  305. }
  306. break;
  307. }
  308. case Foc_Start_DQ_Calibrate:
  309. {
  310. u8 start = decode_u8((u8 *)command->data);
  311. if (start == Foc_Start) {
  312. sys_debug("start mpta cali\n");
  313. mc_set_foc_mode(CTRL_MODE_CURRENT);
  314. PMSM_FOC_MTPA_Calibrate(true);
  315. }else {
  316. PMSM_FOC_MTPA_Calibrate(false);
  317. mc_set_foc_mode(CTRL_MODE_TRQ);
  318. }
  319. break;
  320. }
  321. case Foc_Set_IS_Curr_Angle:
  322. {
  323. if (command->len != 4) {
  324. erroCode = FOC_Param_Err;
  325. }else {
  326. s16 is_curr = decode_s16((u8 *)command->data);
  327. s16 is_angle = decode_s16((u8 *)command->data + 2);
  328. sys_debug("curr %d, angle %d\n", is_curr, is_angle);
  329. PMSM_FOC_Set_Current(is_curr);
  330. PMSM_FOC_Set_Angle(is_angle);
  331. }
  332. break;
  333. }
  334. case Foc_Set_Plot_Type:
  335. {
  336. u8 plot = decode_u8((u8 *)command->data);
  337. if (plot >= Plot_t_Max) {
  338. erroCode = FOC_Param_Err;
  339. }else {
  340. PMSM_FOC_Set_PlotType((Plot_t)plot);
  341. }
  342. break;
  343. }
  344. case Foc_Set_Throttle_throld:
  345. {
  346. if (mc_is_start()) {
  347. erroCode = FOC_NotAllowed;
  348. }else {
  349. u16 min = decode_u16((u8 *)command->data);
  350. u16 max = decode_u16((u8 *)command->data + 2);
  351. nv_get_foc_params()->n_minThroVol = (float)min/100.0f;
  352. nv_get_foc_params()->n_maxThroVol = (float)max/100.0f;
  353. nv_save_foc_params();
  354. }
  355. break;
  356. }
  357. case Foc_Get_Config:
  358. {
  359. len = sizeof(foc_params_t) + 2 - sizeof(pid_conf_t) * PID_Max_id - 2;
  360. u8 *config = os_alloc(len);
  361. if (config == NULL) {
  362. erroCode = FOC_MEM_Err;
  363. break;
  364. }
  365. memcpy((void *)(config + 2), (void *)nv_get_foc_params(), sizeof(foc_params_t) - sizeof(pid_conf_t) * PID_Max_id - 2);
  366. config[0] = command->cmd;
  367. config[1] = CAN_MY_ADDRESS;
  368. can_send_response(command->can_src, config, len);
  369. os_free(config);
  370. return;
  371. }
  372. case Foc_Set_Config:
  373. {
  374. if (mc_is_start()) {
  375. erroCode = FOC_NotAllowed;
  376. }else if (command->len < 32) {
  377. erroCode = FOC_Param_Err;
  378. }else {
  379. nv_get_foc_params()->s_PhaseCurrLim = decode_s16((u8 *)command->data);
  380. nv_get_foc_params()->s_maxRPM = decode_s16((u8 *)command->data + 2);
  381. nv_get_foc_params()->s_PhaseCurreBrkLim = decode_s16((u8 *)command->data + 4);
  382. nv_get_foc_params()->s_iDCeBrkLim = decode_s16((u8 *)command->data + 6);
  383. nv_get_foc_params()->s_LimitiDC = decode_s16((u8 *)command->data + 8);
  384. nv_get_foc_params()->n_minThroVol = (float)decode_s16((u8 *)command->data + 10)/100.0f;
  385. nv_get_foc_params()->n_maxThroVol = (float)decode_s16((u8 *)command->data + 12)/100.0f;
  386. nv_get_foc_params()->s_maxEpmRPM = decode_s16((u8 *)command->data + 14);
  387. nv_get_foc_params()->s_maxEpmPhaseCurrLim = decode_s16((u8 *)command->data + 16);
  388. nv_get_foc_params()->n_brkShutPower = decode_u8((u8 *)command->data + 18);
  389. nv_get_foc_params()->n_autoHold = decode_u8((u8 *)command->data + 19);
  390. nv_get_foc_params()->n_acc_time = decode_u32((u8 *)command->data + 20);
  391. nv_get_foc_params()->n_dec_time = decode_u32((u8 *)command->data + 24);
  392. nv_get_foc_params()->n_ebrk_time = decode_u32((u8 *)command->data + 28);
  393. nv_save_foc_params();
  394. shark_timer_post(&_reboot_timer, 200);
  395. }
  396. break;
  397. }
  398. case Foc_Fan_Duty:
  399. {
  400. u8 duty = decode_u8(command->data);
  401. mc_set_fan_duty(duty);
  402. break;
  403. }
  404. case Foc_Set_eBrake_Throld:
  405. {
  406. break;
  407. }
  408. default:
  409. {
  410. erroCode = FOC_Unknow_Cmd;
  411. break;
  412. }
  413. }
  414. sys_debug("err = %d\n", erroCode);
  415. response[0] = command->cmd;
  416. response[1] = CAN_MY_ADDRESS;
  417. response[2] = erroCode;
  418. can_send_response(command->can_src, response, len);
  419. }
  420. static void _reboot_timer_handler(shark_timer_t *t) {
  421. system_reboot();
  422. }