adc.c 17 KB

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  1. /************************************************************************
  2. Project: Welling Motor Control Paltform
  3. Filename: adc.c
  4. Partner Filename: adc.h
  5. Description: Get the adc conversion results
  6. Complier: IAR Embedded Workbench for ARM 7.80, IAR Systems.
  7. CPU TYPE : GD32F3x0
  8. *************************************************************************
  9. Copyright (c) 2018 Welling Motor Technology(Shanghai) Co. Ltd.
  10. All rights reserved.
  11. *************************************************************************
  12. *************************************************************************
  13. Revising History (ECL of this file):
  14. ************************************************************************/
  15. /************************************************************************
  16. Beginning of File, do not put anything above here except notes
  17. Compiler Directives:
  18. *************************************************************************/
  19. #ifndef _ADCDRV_C_
  20. #define _ADCDRV_C_
  21. #endif
  22. /************************************************************************
  23. Included File:
  24. *************************************************************************/
  25. #include "syspar.h"
  26. #include "user.h"
  27. #include "Temp.h"
  28. #include "api.h"
  29. #include "api_rt.h"
  30. /************************************************************************
  31. Constant Table:
  32. *************************************************************************/
  33. /************************************************************************
  34. Exported Functions:
  35. *************************************************************************/
  36. /***************************************************************
  37. Function: adc_voCalibration;
  38. Description: Get phase A and B current zero point, other A/D sample value
  39. Call by: main() before InitADC;
  40. Input Variables: N/A
  41. Output/Return Variables: ADCTESTOUT
  42. Subroutine Call: N/A
  43. Reference: N/A
  44. ****************************************************************/
  45. #ifdef RUN_ARCH_SIM
  46. #else
  47. void adc_voCalibration(ADC_COF *cof, ADC_DOWN_OUT *out1, ADC_UP_OUT *out2)
  48. {
  49. if (out1->blADCCalibFlg == FALSE || out2->blADCCalibFlg == FALSE)
  50. {
  51. if (!hw_blChrgOvrFlg)
  52. {
  53. hw_voCharge();
  54. }
  55. else
  56. {
  57. if(cp_stFlg.CurrentSampleModelSelect == COMBINATION)
  58. {
  59. ULONG samplingTick[2];
  60. samplingTick[0]=HW_HHHPWM_PERIOD;
  61. samplingTick[1]=129;
  62. iPwm_SyncMultiSamplingCountUp(0, &samplingTick[0], 2);
  63. pwm_stGenOut.blSampleCalibFlag = TRUE;
  64. if (out1->uwADCCalibCt < (1 << ADC_CALIB_INDEX))
  65. {
  66. out1->ulIdcRegSum += iAdc_GetResultPointer(2)[HW_ADC_IDC_CH];
  67. out1->ulIaRegSum += iAdc_GetResultPointer(1)[HW_ADC_IA_CH];
  68. out1->ulIbRegSum += iAdc_GetResultPointer(1)[HW_ADC_IB_CH];
  69. out1->ulIcRegSum += iAdc_GetResultPointer(1)[HW_ADC_IC_CH];
  70. out1->uwADCCalibCt++;
  71. }
  72. else
  73. {
  74. hw_voPWMInit(); // mos up charge and adc calib over; pwm off
  75. cof->uwIaOffset = (UWORD)(out1->ulIaRegSum >> (ADC_CALIB_INDEX));
  76. cof->uwIbOffset = (UWORD)(out1->ulIbRegSum >> (ADC_CALIB_INDEX));
  77. cof->uwIcOffset = (UWORD)(out1->ulIcRegSum >> (ADC_CALIB_INDEX));
  78. out1->ulIaRegSum = 0;
  79. out1->ulIbRegSum = 0;
  80. out1->ulIcRegSum = 0;
  81. pwm_stGenOut.blSampleCalibFlag = FALSE;
  82. cof->uwIdcOffset = (UWORD)(out1->ulIdcRegSum >> ADC_CALIB_INDEX);
  83. out1->ulIdcRegSum = 0;
  84. out1->uwADCCalibCt = 0;
  85. out1->blADCCalibFlg = TRUE;
  86. out2->uwADCCalibCt = 0;
  87. out2->blADCCalibFlg = TRUE;
  88. }
  89. }
  90. else
  91. {
  92. //do noting
  93. }
  94. }
  95. }
  96. }
  97. #endif
  98. /***************************************************************
  99. Function: adc_voSample;
  100. Description: Get three-phase current value after zero point and gain process
  101. Call by: functions in TBC;
  102. Input Variables: ADCIABFIXCOF
  103. Output/Return Variables: ADCTESTOUT
  104. Subroutine Call:
  105. Reference: N/A
  106. ****************************************************************/
  107. void adc_voSampleDown(const ADC_COF *cof, ADC_DOWN_OUT *out) /* parasoft-suppress METRICS-28 "本项目圈复杂度无法更改,后续避免" */
  108. {
  109. UWORD uwIpeakPu;
  110. if(cp_stFlg.CurrentSampleModelSelect == COMBINATION)
  111. {
  112. out->uwIaReg = iAdc_GetResultPointer(1)[HW_ADC_IA_CH];
  113. out->uwIbReg = iAdc_GetResultPointer(1)[HW_ADC_IB_CH];
  114. out->uwIcReg = iAdc_GetResultPointer(1)[HW_ADC_IC_CH];
  115. out->slSampIaPu = -(((SWORD)out->uwIaReg - (SWORD)cof->uwIaOffset) * (SLONG)cof->uwCurReg2Pu >> 10); // Q14=Q24-Q10
  116. out->slSampIbPu = -(((SWORD)out->uwIbReg - (SWORD)cof->uwIbOffset) * (SLONG)cof->uwCurReg2Pu >> 10); // Q14=Q24-Q10
  117. out->slSampIcPu = -(((SWORD)out->uwIcReg - (SWORD)cof->uwIcOffset) * (SLONG)cof->uwCurReg2Pu >> 10); // Q14=Q24-Q10
  118. out->swIaPu = (SWORD)((out->slSampIaPu * (SLONG)cof->uwCalibcoef) >> 10);
  119. out->swIbPu = (SWORD)((out->slSampIbPu * (SLONG)cof->uwCalibcoef) >> 10);
  120. out->swIcPu = (SWORD)((out->slSampIcPu * (SLONG)cof->uwCalibcoef) >> 10);
  121. }
  122. else
  123. {
  124. //do nothing
  125. }
  126. /* Current absolute value & max value */
  127. if ((out->swIaPu) >= 0)
  128. {
  129. out->uwIaAbsPu = (UWORD)out->swIaPu;
  130. }
  131. else
  132. {
  133. out->uwIaAbsPu = (UWORD)-out->swIaPu;
  134. }
  135. if ((out->swIbPu) >= 0)
  136. {
  137. out->uwIbAbsPu = (UWORD)out->swIbPu;
  138. }
  139. else
  140. {
  141. out->uwIbAbsPu = (UWORD)-out->swIbPu;
  142. }
  143. if ((out->swIcPu) >= 0)
  144. {
  145. out->uwIcAbsPu = (UWORD)out->swIcPu;
  146. }
  147. else
  148. {
  149. out->uwIcAbsPu = (UWORD)-out->swIcPu;
  150. }
  151. uwIpeakPu = out->uwIaAbsPu > out->uwIbAbsPu ? out->uwIaAbsPu : out->uwIbAbsPu;
  152. uwIpeakPu = out->uwIcAbsPu > uwIpeakPu ? out->uwIcAbsPu : uwIpeakPu;
  153. out->uwIpeakPu = uwIpeakPu;
  154. }
  155. void adc_voSampleUp(const ADC_COF *cof, ADC_UP_OUT *out)
  156. {
  157. /* Register value */
  158. out->uwVdcReg = iAdc_GetResultPointer(0)[HW_ADC_UDC_CH];
  159. out->uwU6VReg = iAdc_GetResultPointer(0)[HW_ADC_U6V_CH];
  160. out->uwU5VReg = iAdc_GetResultPointer(0)[HW_ADC_U5V_CH];
  161. out->PCBTempReg = iAdc_GetResultPointer(0)[HW_ADC_PCBTEMP_CH];
  162. out->TorqTempReg = iAdc_GetResultPointer(0)[HW_ADC_MOTTEMP_CH];
  163. out->uwU12VReg = iAdc_GetResultPointer(0)[HW_ADC_U12V_CH];
  164. out->uwThrottleReg = iAdc_GetResultPointer(0)[HW_ADC_THRO_CH];
  165. out->uwVdcPu = (UWORD)((ULONG)out->uwVdcReg * cof->uwVdcReg2Pu >> 10); // Q14=Q24-Q10
  166. /* Vdc LPF */
  167. out->uwVdcLpfPu = ((out->uwVdcPu - out->uwVdcLpfPu) >> 1) + out->uwVdcLpfPu;
  168. out->uwU6VPu = (UWORD)((ULONG)out->uwU6VReg * cof->uwU6VReg2Pu >> 10); // Q14=Q24-Q10;
  169. out->uwU5VPu = (UWORD)((ULONG)out->uwU5VReg * cof->uwU5VReg2Pu >> 10); // Q14=Q24-Q10;
  170. out->uwU12VPu = (UWORD)((ULONG)out->uwU12VReg * cof->uwU12VReg2Pu >> 10); // Q14=Q24-Q10;
  171. out->MotorTempR = out->MotorTempReg * cof->swMotorTempKcof >> 10; // Q14=Q24-Q10;
  172. ////////////////// Single Resitance Current Sample//////////////////////////////////////////////////////
  173. if (pwm_stGenOut.blSampleCalibFlag == TRUE)
  174. {
  175. switch (pwm_stGenOut.uwSingelRSampleArea)
  176. {
  177. case 0:
  178. out->swCalibIaPu = 0;
  179. out->swCalibIbPu = 0;
  180. out->swCalibIcPu = 0;
  181. break;
  182. case SampleA:
  183. out->swCalibIaPu = -(SWORD)((((SWORD)iAdc_GetResultPointer(2)[HW_ADC_IDC_CH] - (SWORD)cof->uwIdcOffset) * (SLONG)cof->uwCurIdcReg2Pu) >> 10); // Q14=Q24-Q10
  184. break;
  185. case SampleB:
  186. out->swCalibIbPu = -(SWORD)((((SWORD)iAdc_GetResultPointer(2)[HW_ADC_IDC_CH] - (SWORD)cof->uwIdcOffset) * (SLONG)cof->uwCurIdcReg2Pu) >> 10); // Q14=Q24-Q10
  187. break;
  188. case SampleC:
  189. out->swCalibIcPu = -(SWORD)((((SWORD)iAdc_GetResultPointer(2)[HW_ADC_IDC_CH] - (SWORD)cof->uwIdcOffset) * (SLONG)cof->uwCurIdcReg2Pu) >> 10); // Q14=Q24-Q10
  190. break;
  191. default:
  192. break;
  193. }
  194. }
  195. ////////////////// PCB TEMP//////////////////////////////////////////////////////
  196. if(out->PCBTempReg != 0)
  197. {
  198. out->PCBTempR = (UWORD)((ULONG)4096 * PCB_TEMP_SAMPLER / out->PCBTempReg - PCB_TEMP_SAMPLER); // Q14=Q24-Q10;
  199. }
  200. PcbTempCal((SWORD)out->PCBTempR);
  201. out->PCBTemp = tmp_PcbTemp;
  202. }
  203. static SWORD adc_pvt_swSingleReg = 0;
  204. static SLONG adc_pvt_slRdsonReg = 0;
  205. static LPF_OUT adc_pvt_stRdsonCoefLpf = {.slY.sw.hi = 1024, .slY.sw.low = 0};
  206. static BOOL adc_pvt_blCalGainFlg = FALSE;
  207. static ULONG adc_pvt_ulGainTemp1 = 0;
  208. static ULONG adc_pvt_ulIaAbsPu, adc_pvt_ulIbAbsPu, adc_pvt_ulIcAbsPu, adc_pvt_ulIPeakPu;
  209. void adc_voSRCalibration(ADC_COF *cof, const ADC_UP_OUT *up_out, ADC_DOWN_OUT *down_out)
  210. {
  211. if (pwm_stGenOut.blSampleCalibFlag == TRUE)
  212. {
  213. switch (pwm_stGenOut.uwSingelRSampleArea)
  214. {
  215. case 0:
  216. break;
  217. case SampleA:
  218. if(adc_pvt_swSingleReg > up_out->swCalibIaPu)
  219. {
  220. adc_pvt_swSingleReg = up_out->swCalibIaPu;
  221. }
  222. if(adc_pvt_slRdsonReg > down_out->slSampIaPu)
  223. {
  224. adc_pvt_slRdsonReg = down_out->slSampIaPu;
  225. }
  226. break;
  227. case SampleB:
  228. if(adc_pvt_swSingleReg > up_out->swCalibIbPu)
  229. {
  230. adc_pvt_swSingleReg = up_out->swCalibIbPu;
  231. }
  232. if(adc_pvt_slRdsonReg > down_out->slSampIbPu)
  233. {
  234. adc_pvt_slRdsonReg = down_out->slSampIbPu;
  235. }
  236. break;
  237. case SampleC:
  238. if(adc_pvt_swSingleReg > up_out->swCalibIcPu)
  239. {
  240. adc_pvt_swSingleReg = up_out->swCalibIcPu;
  241. }
  242. if(adc_pvt_slRdsonReg > down_out->slSampIcPu)
  243. {
  244. adc_pvt_slRdsonReg = down_out->slSampIcPu;
  245. }
  246. break;
  247. default:
  248. break;
  249. }
  250. adc_pvt_blCalGainFlg = TRUE;
  251. }
  252. else
  253. {
  254. ULONG ulOverflowCurPu = (ULONG)(4095 - cof->uwIaOffset) * cof->uwCurReg2Pu >> 10;
  255. if(scm_uwSpdFbkLpfAbsPu < 2500)
  256. {
  257. adc_pvt_ulIaAbsPu = ABS(down_out->slSampIaPu);
  258. adc_pvt_ulIbAbsPu = ABS(down_out->slSampIbPu);
  259. adc_pvt_ulIcAbsPu = ABS(down_out->slSampIcPu);
  260. adc_pvt_ulIPeakPu = adc_pvt_ulIaAbsPu > adc_pvt_ulIbAbsPu ? adc_pvt_ulIaAbsPu : adc_pvt_ulIbAbsPu;
  261. down_out->ulISamplePeakPu = adc_pvt_ulIcAbsPu > adc_pvt_ulIPeakPu ? adc_pvt_ulIcAbsPu : adc_pvt_ulIPeakPu;
  262. if(down_out->ulISamplePeakPu > 32767)
  263. {
  264. adc_pvt_ulGainTemp1 = 780; ///< Rdson电流采样溢出SWORD时校准系数需小于1024
  265. adc_pvt_stRdsonCoefLpf.slY.sw.hi = (SWORD)adc_pvt_ulGainTemp1; ///< 系数立刻变化,不经过滤波,防止down_out->swIaPu溢出
  266. }
  267. // else if(down_out->ulISamplePeakPu > 25800) ///< 25800 = 32767 / (1300 / 1024)
  268. // {
  269. // adc_pvt_ulGainTemp1 = 1024;
  270. // adc_pvt_stRdsonCoefLpf.slY.sw.hi = (SWORD)adc_pvt_ulGainTemp1;
  271. // }
  272. else
  273. {
  274. adc_pvt_ulGainTemp1 = 1024; ///< 允许其他数值,但大于1024需注意溢出SWORD
  275. }
  276. cof->blCalibCalFlag = FALSE;
  277. adc_pvt_blCalGainFlg = FALSE;
  278. }
  279. else
  280. {
  281. if(adc_pvt_blCalGainFlg)
  282. {
  283. if(adc_pvt_slRdsonReg != 0 && ABS(adc_pvt_slRdsonReg) < ulOverflowCurPu)
  284. {
  285. adc_pvt_ulGainTemp1 = (SLONG)((SLONG)adc_pvt_swSingleReg << 10) / (SLONG)adc_pvt_slRdsonReg;
  286. }
  287. else if(ABS(adc_pvt_slRdsonReg) >= ulOverflowCurPu)
  288. {
  289. adc_pvt_ulGainTemp1 = 780; ///< Rdson电流采样削顶时不再校准电流,强制输出为119A防止溢出,尽快报出过流故障
  290. adc_pvt_stRdsonCoefLpf.slY.sw.hi = (SWORD)adc_pvt_ulGainTemp1;
  291. }
  292. else
  293. {
  294. // do nothing
  295. }
  296. if(adc_pvt_ulGainTemp1 > cof->uwCalibcoefMax)
  297. {
  298. adc_pvt_ulGainTemp1 = cof->uwCalibcoefMax;
  299. }
  300. else if(adc_pvt_ulGainTemp1 < cof->uwCalibcoefMin)
  301. {
  302. adc_pvt_ulGainTemp1 = cof->uwCalibcoefMin;
  303. }
  304. else
  305. {
  306. //do nothing
  307. }
  308. cof->blCalibCalFlag = TRUE;
  309. adc_pvt_blCalGainFlg = FALSE;
  310. }
  311. else
  312. {
  313. adc_pvt_swSingleReg = 0;
  314. adc_pvt_slRdsonReg = 0;
  315. }
  316. }
  317. mth_voLPFilter((SWORD)adc_pvt_ulGainTemp1, &adc_pvt_stRdsonCoefLpf);
  318. cof->uwCalibcoef = adc_pvt_stRdsonCoefLpf.slY.sw.hi;
  319. }
  320. }
  321. /***************************************************************
  322. Function: adc_voSampleCoef;
  323. Description: Get other A/D sample value
  324. Call by: functions in Mainloop;
  325. Input Variables: ADCIABFIXCOF
  326. Output/Return Variables: ADCTESTOUT
  327. Subroutine Call:
  328. Reference: N/A
  329. ****************************************************************/
  330. void adc_voSampleCoef(ADC_COF *cof)
  331. {
  332. cof->uwCurReg2Pu = ((UQWORD)ADC_IPHASE_CUR_MAX_AP << 24) / (1 << (ADC_RESOLUTION_BIT - 1)) / IBASE; // Q24
  333. cof->uwCurIdcReg2Pu = ((UQWORD)ADC_IDC_CUR_MAX_AP << 24) / (1 << (ADC_RESOLUTION_BIT)) / IBASE; // Q24
  334. cof->uwVdcReg2Pu = ((UQWORD)ADC_VDC_MAX_VT << 24) / (1 << ADC_RESOLUTION_BIT) / VBASE; // Q24
  335. cof->uwUabcReg2Pu = ((UQWORD)ADC_UABC_MAX_VT << 24) / (1 << (ADC_RESOLUTION_BIT)) / VBASE; // Q24
  336. cof->uwU6VReg2Pu = ((UQWORD)ADC_LIGHT_MAX_VT << 24) / (1 << (ADC_RESOLUTION_BIT)) / VBASE; // Q24;
  337. cof->uwU5VReg2Pu = ((UQWORD)ADC_SPDSENSOR_MAX_VT << 24) / (1 << (ADC_RESOLUTION_BIT)) / VBASE; // Q24;
  338. cof->uwU12VReg2Pu = ((UQWORD)ADC_DISPLAY_MAX_VT << 24) / (1 << (ADC_RESOLUTION_BIT)) / VBASE; // Q24;
  339. cof->uwCalibcoef = 1024;
  340. cof->uwCalibcoefMax = 2048;
  341. cof->uwCalibcoefMin = 200;
  342. cof->uwCalibCoefK = 160; // q10
  343. mth_voLPFilterCoef(1000000 / 30, FTBC_HZ, &adc_pvt_stRdsonCoefLpf.uwKx); //100Hz
  344. }
  345. /***************************************************************
  346. Function: adc_voSampleInit;
  347. Description: ADC sample initialization
  348. Call by: mn_voSoftwareInit;
  349. Input Variables: N/A
  350. Output/Return Variables: N/A
  351. Subroutine Call:
  352. Reference: N/A
  353. ****************************************************************/
  354. void adc_voSampleInit(void)
  355. {
  356. adc_stDownOut.swIaPu = 0;
  357. adc_stDownOut.swIbPu = 0;
  358. adc_stDownOut.swIcPu = 0;
  359. adc_stDownOut.uwIaAbsPu = 0;
  360. adc_stDownOut.uwIbAbsPu = 0;
  361. adc_stDownOut.uwIcAbsPu = 0;
  362. adc_stDownOut.uwIpeakPu = 0;
  363. adc_stDownOut.uwIaReg = 0;
  364. adc_stDownOut.uwIbReg = 0;
  365. adc_stDownOut.uwIcReg = 0;
  366. adc_stDownOut.uwFirstCurREG = 0;
  367. adc_stDownOut.uwSecondCurREG = 0;
  368. adc_stDownOut.uwADCSector = 0;
  369. adc_stDownOut.uwIaAvgPu = 0;
  370. adc_stDownOut.uwIbAvgPu = 0;
  371. adc_stDownOut.uwIcAvgPu = 0;
  372. adc_stDownOut.ulUaRegSum = 0;
  373. adc_stDownOut.ulUbRegSum = 0;
  374. adc_stDownOut.ulUcRegSum = 0;
  375. adc_stDownOut.ulIdcRegSum = 0;
  376. adc_stDownOut.ulIaRegSum = 0;
  377. adc_stDownOut.ulIbRegSum = 0;
  378. adc_stDownOut.ulIcRegSum = 0;
  379. adc_stDownOut.uwADCCalibCt = 0;
  380. adc_stDownOut.blADCCalibFlg = FALSE;
  381. adc_stDownOut.ulISamplePeakPu = 0;
  382. adc_stUpOut.uwVdcPu = 0;
  383. adc_stUpOut.uwVdcLpfPu = 0;
  384. adc_stUpOut.uwU6VPu = 0;
  385. adc_stUpOut.uwU5VPu = 0;
  386. adc_stUpOut.uwU12VPu = 0;
  387. adc_stUpOut.uwTrottlePu = 0;
  388. adc_stUpOut.PCBTemp = 0;
  389. adc_stUpOut.MotorTemp = 0;
  390. adc_stUpOut.uwVdcReg = 0;
  391. adc_stUpOut.uwU6VReg = 0;
  392. adc_stUpOut.uwU5VReg = 0;
  393. adc_stUpOut.uwU12VReg = 0;
  394. adc_stUpOut.uwThrottleReg = 0;
  395. adc_stUpOut.PCBTempReg = 0;
  396. adc_stUpOut.MotorTempReg = 0;
  397. adc_stUpOut.swCalibIaPu = 0;
  398. adc_stUpOut.swCalibIbPu = 0;
  399. adc_stUpOut.swCalibIcPu = 0;
  400. adc_stUpOut.uwADCCalibCt = 0;
  401. adc_stUpOut.blADCCalibFlg = FALSE;
  402. adc_stUpOut.swIPMTempCe = 0;
  403. adc_pvt_swSingleReg = 0;
  404. adc_pvt_slRdsonReg = 0;
  405. adc_pvt_stRdsonCoefLpf.slY.sw.hi = 1024;
  406. adc_pvt_stRdsonCoefLpf.slY.sw.low = 0;
  407. adc_pvt_blCalGainFlg = FALSE;
  408. adc_pvt_ulGainTemp1 = 0;
  409. adc_pvt_ulIaAbsPu = 0;
  410. adc_pvt_ulIbAbsPu = 0;
  411. adc_pvt_ulIcAbsPu = 0;
  412. adc_pvt_ulIPeakPu = 0;
  413. }
  414. /*************************************************************************
  415. Local Functions (N/A)
  416. *************************************************************************/
  417. /************************************************************************
  418. Copyright (c) 2018 Welling Motor Technology(Shanghai) Co. Ltd.
  419. All rights reserved.
  420. *************************************************************************/
  421. #ifdef _ADCDRV_C_
  422. #undef _ADCDRV_C_ /* parasoft-suppress MISRA2004-19_6 "本项目中无法更改,后续避免使用" */
  423. #endif
  424. /*************************************************************************
  425. End of this File (EOF)!
  426. Do not put anything after this part!
  427. *************************************************************************/