soc.c 17 KB

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  1. #include "bsp/ml5238.h"
  2. #include "soc.h"
  3. #include "app/sox/measure.h"
  4. #include "app/sox/measure_task.h"
  5. #include "app/nv_storage.h"
  6. #include "libs/logger.h"
  7. #include "Least_Square.h"
  8. #include "health.h"
  9. #include "state.h"
  10. #define LEAST_SQUARE 0
  11. static soc_t _soc;
  12. static uint8_t chargering = 0;
  13. static u64 current_sample_ts = 0; //ms
  14. static u32 force_full_ts = 0xFFFFFFFF; //s
  15. static float soc_delta_time = 0;
  16. static float max_soc_delta_time = 0;
  17. static float _charger_coefficient = 1.0f;
  18. static float _discharger_coefficient = 1.0f;
  19. uint32_t charger_remain_time = 0;
  20. uint8_t battery_temp_state = 0;
  21. static const float _discharger_gain[] = {1.0f/*>0度*/, 1.002f/*-2<t<=0*/, 1.005f/*-5<t<=-2*/, 1.008f/*-10<t<=-5*/, 1.02f/*-15<t<=-10*/, 1.04f/*-20<t<=-15*/};
  22. #define MAX_TIME_FULL_TO_EMPTY (5 * 24 * 3600) //充满到欠压5天内达到,可以校准最小电量
  23. #define DEFALUT_MAX_COULOMB (MAX_HA * 3600.0f)
  24. #define DEFALUT_MIN_COULOMB (25.0f * 3600.0f)
  25. #define FULL_MAX_VOLTAGE_CHARGING (53500)//mV
  26. #define FULL_MAX_VOLTAGE (54000) //mV
  27. #define FULL_MIN_CURRENT (500.0f) //mA
  28. static void calibrate_soc_by_ocv(void);
  29. static void _soc_clear(void);
  30. #if LEAST_SQUARE==1
  31. static void _least_square_timer_handler(shark_timer_t *timer);
  32. static least_square_t discharger_vol_coef;
  33. static least_square_t discharger_cell_coef;
  34. static least_square_t discharger_capacity_coef;
  35. static shark_timer_t least_square_timer = {.handler = _least_square_timer_handler};
  36. static int least_square_time = 0;
  37. static int least_square_started = 0;
  38. #define LEAST_SQUARE_STEP_TIME 1000 * 5
  39. #endif
  40. void soc_init(void){
  41. set_log_level(MOD_SOC, L_debug);
  42. current_sample_ts = shark_get_mseconds();
  43. if (nv_restore_soc() != 0){
  44. soc_warning("SOC: nv storage is not inited, use default value!!\n");
  45. _soc_clear();
  46. }
  47. //如果最大容量和默认不一致,需要重新校准
  48. if (_soc.coulomb_max != DEFALUT_MAX_COULOMB) {
  49. _soc_clear();
  50. nv_save_all_soc();
  51. }
  52. if ((_soc.flags & SOC_FLAG_CALIBRATED) == 0){
  53. calibrate_soc_by_ocv();
  54. nv_save_soc();
  55. }
  56. soc_log();
  57. }
  58. static void _soc_clear(void){
  59. _soc.coulomb_min = 0;
  60. _soc.coulomb_max = DEFALUT_MAX_COULOMB; //30HA,这个值最总需要soh模块给
  61. _soc.flags = 0;
  62. _soc.charger_coulomb = 0;
  63. _soc.pre_charger_coulomb = 0;
  64. _soc.dischrger_coulomb = 0;
  65. _soc.pre_discharger_coulomb = 0;
  66. _soc.total_coulomb = 0;
  67. }
  68. void soc_restore_by_iap(uint8_t flags, uint8_t capaticy){
  69. _soc.coulomb_min = 0;
  70. _soc.coulomb_max = DEFALUT_MAX_COULOMB; //30HA,这个值最总需要soh模块给
  71. _soc.flags = 0;
  72. _soc.charger_coulomb = 0;
  73. _soc.pre_charger_coulomb = 0;
  74. _soc.dischrger_coulomb = 0;
  75. _soc.pre_discharger_coulomb = 0;
  76. _soc.total_coulomb = 0;
  77. if (flags == 1) {
  78. _soc.flags |= SOC_FLAG_CALIBRATED;
  79. }
  80. _soc.capacity = capaticy;
  81. _soc.coulomb_now = (_soc.coulomb_max - _soc.coulomb_min) * _soc.capacity / 100.0f + _soc.coulomb_min;
  82. nv_save_all_soc();
  83. }
  84. static void soc_update_discharger_coeff(void){
  85. int low_temp = 0xFFFF;
  86. for (int i = 0; i < PACK_TEMPS_NUM-1; i++) {
  87. low_temp = MIN(low_temp, measure_value()->pack_temp[i]);
  88. }
  89. if (low_temp > 0) {
  90. _discharger_coefficient = _discharger_gain[0];
  91. }else {
  92. if (low_temp > -2) {
  93. _discharger_coefficient = _discharger_gain[1];
  94. }else if (low_temp > -5) {
  95. _discharger_coefficient = _discharger_gain[2];
  96. }else if (low_temp > -10) {
  97. _discharger_coefficient = _discharger_gain[3];
  98. }else if (low_temp > -15) {
  99. _discharger_coefficient = _discharger_gain[4];
  100. }else {
  101. _discharger_coefficient = _discharger_gain[5];
  102. }
  103. force_full_ts = 0xFFFFFFFF;
  104. }
  105. if (_soc.flags & SOC_FLAG_CALIBRATED) {
  106. float coff = 1.0f;
  107. if (_soc.capacity <= 20) {
  108. if (abs(measure_value()->load_current) >= CURRENT_BIGER) {
  109. coff = 1.06f;
  110. }else if (abs(measure_value()->load_current) >= CURRENT_MID) {
  111. coff = 1.05f;
  112. }else if (abs(measure_value()->load_current) >= CURRENT_NORMAL) {
  113. coff = 1.03f;
  114. }
  115. }else if (_soc.capacity <= 40) {
  116. if (abs(measure_value()->load_current) >= CURRENT_BIGER) {
  117. coff = 1.05f;
  118. }else if (abs(measure_value()->load_current) >= CURRENT_MID) {
  119. coff = 1.03f;
  120. }else if (abs(measure_value()->load_current) >= CURRENT_NORMAL) {
  121. coff = 1.02f;
  122. }
  123. }else if (_soc.capacity <= 60) {
  124. if (abs(measure_value()->load_current) >= CURRENT_BIGER) {
  125. coff = 1.03f;
  126. }else if (abs(measure_value()->load_current) >= CURRENT_MID) {
  127. coff = 1.02f;
  128. }else if (abs(measure_value()->load_current) >= CURRENT_NORMAL) {
  129. coff = 1.01f;
  130. }
  131. }
  132. if ((abs(measure_value()->load_current) > 10.0f) && (abs(measure_value()->load_current) < 500)) {
  133. coff = 1.05f;
  134. }
  135. _discharger_coefficient = _discharger_coefficient * coff;
  136. }
  137. }
  138. #if LEAST_SQUARE==1
  139. static void start_least_square(int start){
  140. if (start && !least_square_started) {
  141. least_square_init(&discharger_vol_coef, 10);
  142. least_square_init(&discharger_cell_coef, 10);
  143. least_square_init(&discharger_capacity_coef, 10);
  144. least_square_time = 0;
  145. least_square_started = 1;
  146. shark_timer_post(&least_square_timer, LEAST_SQUARE_STEP_TIME);
  147. }else if (!start && least_square_started){
  148. least_square_time = 0;
  149. least_square_started = 0;
  150. shark_timer_cancel(&least_square_timer);
  151. }
  152. }
  153. static void _least_square_timer_handler(shark_timer_t *timer){
  154. if (least_square_put(&discharger_vol_coef, least_square_time, bms_state_get()->pack_voltage/1000.0f) == 1) {
  155. soc_error("voltage: A = %f, B = %f, v: %f\n", discharger_vol_coef.coeff.Ka, discharger_vol_coef.coeff.Cb, get_y_by_x(&discharger_vol_coef, least_square_time));
  156. int delta = get_x_by_y(&discharger_vol_coef, bms_health_pack_lower_voltage()/1000.0f) - get_x_by_y(&discharger_vol_coef, bms_state_get()->pack_voltage/1000.0f);
  157. soc_error("remain %d s to reach lower pack voltage\n", delta);
  158. }
  159. if (least_square_put(&discharger_cell_coef, least_square_time, bms_state_get()->cell_min_vol/1000.0f) == 1) {
  160. soc_error("cell: A = %f, B = %f, v: %f\n", discharger_cell_coef.coeff.Ka, discharger_cell_coef.coeff.Cb, get_y_by_x(&discharger_cell_coef, least_square_time));
  161. int delta = get_x_by_y(&discharger_cell_coef, bms_health_cell_lower_voltage()/1000.0f) - get_x_by_y(&discharger_cell_coef, bms_state_get()->cell_min_vol/1000.0f);
  162. soc_error("remain %d s to reach lower cell voltage\n", delta);
  163. }
  164. if (least_square_put(&discharger_capacity_coef, least_square_time, _soc.coulomb_now/3600.0f) == 1) {
  165. soc_error("capacity: A = %f, B = %f, c: %f\n", discharger_capacity_coef.coeff.Ka, discharger_capacity_coef.coeff.Cb, get_y_by_x(&discharger_capacity_coef, least_square_time));
  166. int delta = get_x_by_y(&discharger_capacity_coef, _soc.coulomb_min/3600.0f) - get_x_by_y(&discharger_capacity_coef, _soc.coulomb_now/3600.0f);
  167. soc_error("remain %d s to reach 0 min AH\n", delta);
  168. }
  169. least_square_time ++;
  170. shark_timer_post(&least_square_timer, LEAST_SQUARE_STEP_TIME);
  171. }
  172. #endif
  173. #define TOHA(x) (float)(x/3600.0f)
  174. void soc_log(void){
  175. soc_debug("C flags 0x%x\n", _soc.flags);
  176. soc_debug("C now: %.4f\n", TOHA(_soc.coulomb_now));
  177. soc_debug("C min: %.4f\n", TOHA(_soc.coulomb_min));
  178. soc_debug("C max: %.4f\n", TOHA(_soc.coulomb_max));
  179. soc_debug("C char: %.4f\n", TOHA(_soc.charger_coulomb));
  180. soc_debug("C dischar: %.4f\n", TOHA(_soc.dischrger_coulomb));
  181. soc_debug("C pre char: %.4f\n", TOHA(_soc.pre_discharger_coulomb));
  182. soc_debug("C pre dischar: %.4f\n", TOHA(_soc.pre_charger_coulomb));
  183. soc_debug("C tol: %.2f\n", _soc.total_coulomb);
  184. soc_debug("C energy: %f\n", _soc.energy);
  185. soc_debug("C delta time %f,%f, -- %d\n", max_soc_delta_time, soc_delta_time, force_full_ts);
  186. soc_debug("C discharger coefficient = %f\n", _discharger_coefficient);
  187. soc_debug("C SOH = %d\n", soc_get_soh());
  188. if (chargering){
  189. soc_debug("C remain %d\n", charger_remain_time);
  190. }
  191. }
  192. //初始上电或者nv出问题后,通过开路电压对soc做一次初略校准
  193. static void calibrate_soc_by_ocv(void){
  194. uint16_t pack_vol = 0;
  195. for (int i = 0; i < CELLS_NUM; i++){
  196. pack_vol += measure_value()->cell_vol[i];
  197. }
  198. if (pack_vol <= (48000)){
  199. _soc.capacity = 0;
  200. }else if (pack_vol <= 49000){
  201. _soc.capacity = 5;
  202. }else if (pack_vol <= 50000){
  203. _soc.capacity = 10;
  204. }else if (pack_vol <= 51000){
  205. _soc.capacity = 30;
  206. }else if (pack_vol <= 52000){
  207. _soc.capacity = 50;
  208. }else if (pack_vol <= 53000){
  209. _soc.capacity = 60;
  210. }else {
  211. _soc.capacity = 80;
  212. }
  213. _soc.coulomb_now = (_soc.coulomb_max - _soc.coulomb_min) * _soc.capacity / 100.0f + _soc.coulomb_min;
  214. soc_warning("SOC: calibrate_soc_by_ocv -> capacity = %d, pack_voltage = %d\n", _soc.capacity, pack_vol);
  215. }
  216. static __inline__ float _delta_time(void){
  217. u32 delta = shark_get_mseconds() - current_sample_ts;
  218. current_sample_ts = shark_get_mseconds();
  219. soc_delta_time = (float)delta / (1000.0f);
  220. if (soc_delta_time > max_soc_delta_time){
  221. max_soc_delta_time = soc_delta_time;
  222. }
  223. return soc_delta_time; //秒
  224. }
  225. static __inline__ int can_modify_min_cap(void){
  226. if (ml5238_is_spi_ok() == 0){//如果5238异常,不修改最小容量
  227. return 0;
  228. }
  229. if (shark_get_seconds() > force_full_ts){
  230. if ((shark_get_seconds() - force_full_ts) > MAX_TIME_FULL_TO_EMPTY) {
  231. return 0;
  232. }else {
  233. return 1;
  234. }
  235. }
  236. return 0;
  237. }
  238. static void _force_capacity_full(void){
  239. _soc.capacity = 100;
  240. force_full_ts = shark_get_seconds();
  241. }
  242. static int _soc_is_under_voltage(void) {
  243. return (bms_health()->powerdown_lower_voltage || bms_health()->sigle_cell_lower_voltage ||
  244. bms_health()->discharger_lower_voltage);
  245. }
  246. #if 0
  247. static int _soc_force_capaticy(uint8_t capaticy){
  248. float cap = (float)capaticy / 100.0f;
  249. float min = (_soc.coulomb_now - cap * _soc.coulomb_max)/(1.0f - cap);
  250. if (min > 0.0f) {
  251. _soc.coulomb_min = min;
  252. _soc.capacity = capaticy;
  253. force_full_ts = 0xFFFFFFFF;
  254. return 1;
  255. }
  256. return 0;
  257. }
  258. #endif
  259. static int _soc_update_by_ocv(uint8_t prev_charge_status){
  260. static int ocv_full_count = 0;
  261. //static int ocv_force_capaticy = 0;
  262. int changed = 0;
  263. if ((_soc.flags & SOC_FLAG_CALIBRATED) == 0){
  264. return 0;
  265. }
  266. if (!chargering){
  267. if (_soc.capacity && _soc_is_under_voltage()) {
  268. soc_warning("judge calib min col %d - %d\n", shark_get_seconds(), force_full_ts);
  269. if (can_modify_min_cap()){
  270. _soc.coulomb_min = _soc.coulomb_now; //已经校准过了,而且电池在常温下进入powerdown,最小容量修正为当前容量
  271. soc_warning("calicablite coulomb_min %f\n", _soc.coulomb_min);
  272. }else {
  273. _soc.coulomb_now = _soc.coulomb_min;
  274. }
  275. _soc.capacity = 0;
  276. return 1;
  277. }
  278. #if 0
  279. else if ((!prev_charge_status) && (bms_state_get()->cell_min_vol <= 2900) && (_soc.capacity > 10)) {
  280. /* 如果单电芯最小电压小于2.9v,并且容量大于10%,需要校准到10% */
  281. if (ocv_force_capaticy++ >= 10) {
  282. return _soc_force_capaticy(10);
  283. }
  284. }else {
  285. ocv_force_capaticy = 0;
  286. }
  287. #endif
  288. }
  289. if (chargering || prev_charge_status) {
  290. //ocv_force_capaticy = 0;
  291. /*
  292. if (bms_state_get()->ps_charger_mask && !bms_state_get()->ps_charger_in) { //ps100 上报无充电器,不做处理
  293. ocv_full_count = 0;
  294. return changed;
  295. }*/
  296. if (bms_health()->sigle_cell_over_voltage) { //单电芯过压强制充满
  297. _force_capacity_full();
  298. ocv_full_count = 0;
  299. return 1;
  300. }
  301. if (chargering && (_soc.capacity != 100)) {
  302. if (bms_state_get()->pack_voltage >= (FULL_MAX_VOLTAGE_CHARGING) && (measure_value()->load_current <= FULL_MIN_CURRENT)){
  303. if (ocv_full_count++ >= 100) { //连续100次(小电流采集30ms一次,就是3s时间)电压和电流满足条件,强制充满
  304. _force_capacity_full();
  305. ocv_full_count = 0;
  306. changed = 1;
  307. }
  308. }else {
  309. ocv_full_count = 0;
  310. }
  311. }else if (!chargering && prev_charge_status && (_soc.capacity != 100)){
  312. if ((bms_state_get()->pack_voltage >= FULL_MAX_VOLTAGE) && (((_soc.coulomb_now - _soc.coulomb_min)/(_soc.coulomb_max - _soc.coulomb_min)) >= 0.998f)){//充电容量几乎接近最大容量
  313. _force_capacity_full();
  314. changed = 1;
  315. }
  316. }
  317. }
  318. return changed;
  319. }
  320. int soc_update_by_ocv(void){
  321. return _soc_update_by_ocv(0);
  322. }
  323. static void soc_calibrate(uint8_t prev_charge_status){
  324. static int cali_full_count = 0;
  325. if (!(_soc.flags & SOC_FLAG_CALIBRATED)){
  326. if (chargering){//用ocv进行严格校准
  327. if (_soc.capacity != 100){
  328. if ((measure_value()->load_current <= FULL_MIN_CURRENT) && (bms_state_get()->pack_voltage >= FULL_MAX_VOLTAGE_CHARGING)){
  329. cali_full_count ++;
  330. }
  331. if (cali_full_count >= 20 || bms_health()->sigle_cell_over_voltage) {
  332. soc_debug("calibrate Capacity to 100, measure_value()->load_current %d\n", measure_value()->load_current);
  333. _force_capacity_full();
  334. }
  335. }
  336. }else if (prev_charge_status){
  337. if((_soc.capacity != 100) && ((bms_state_get()->pack_voltage >= FULL_MAX_VOLTAGE) || bms_health()->sigle_cell_over_voltage)){
  338. soc_debug("calibrate Capacity to 100\n");
  339. _force_capacity_full();
  340. }
  341. }else {
  342. if (_soc.capacity && _soc_is_under_voltage()) {
  343. _soc.capacity = 0;
  344. }
  345. }
  346. }
  347. }
  348. static void soc_update_charger_remain_time(void){
  349. if (!chargering) {
  350. return;
  351. }
  352. float delta_c = _soc.coulomb_max - _soc.coulomb_now;
  353. float current = measure_value()->load_current / 1000.0f; //A
  354. uint32_t remain = delta_c / current / 60; //分钟
  355. if (charger_remain_time == 0){
  356. charger_remain_time = remain;
  357. }else if (remain < charger_remain_time){
  358. charger_remain_time = remain;
  359. }else { //如果充电时间变长,考虑是否快充满电流小于1A
  360. if (bms_state_get()->pack_voltage < 53000 && current > 1.5f) {
  361. charger_remain_time = remain;
  362. }
  363. }
  364. if (_soc.capacity == 100) {
  365. charger_remain_time = 0;
  366. }
  367. }
  368. uint32_t soc_get_cycle(void){
  369. return _soc.total_coulomb/MAX_HA/2;
  370. }
  371. uint8_t soc_get_soh(void){
  372. return (_soc.coulomb_max - _soc.coulomb_min)/_soc.coulomb_max * 100;
  373. }
  374. uint32_t soc_get_charger_remain_time(void){
  375. return charger_remain_time;
  376. }
  377. static void soc_update_by_current_and_time(float current_now, float delta_time, uint8_t prev_charge_status){
  378. double current = current_now / 1000.0f; //A
  379. double delta_q = current * delta_time;
  380. uint8_t est_capaticy = _soc.capacity;
  381. int update_capticy = 0;
  382. if (!chargering) {
  383. soc_update_discharger_coeff();
  384. delta_q = delta_q * _discharger_coefficient;
  385. }
  386. double est_coulomb = _soc.coulomb_now + delta_q;//计算当前容量,充电加, 放电减
  387. if (est_coulomb < 0){
  388. est_coulomb = 0;
  389. }else if (est_coulomb > _soc.coulomb_max) {
  390. est_coulomb = _soc.coulomb_max;
  391. }
  392. if (est_coulomb >= _soc.coulomb_min) {
  393. est_capaticy = ((est_coulomb - _soc.coulomb_min)/(_soc.coulomb_max - _soc.coulomb_min) + 0.005f) * 100;//四舍五入
  394. }
  395. if (chargering){
  396. delta_q = delta_q * _charger_coefficient;
  397. _soc.charger_coulomb += abs(delta_q);
  398. if ((est_capaticy < 100) && (est_capaticy >= _soc.capacity)){ //充电,容量不能等于100,需要靠电压和充电电流来矫正到100
  399. update_capticy = 1;
  400. }
  401. }else {
  402. _soc.dischrger_coulomb += abs(delta_q);
  403. if (est_coulomb < _soc.coulomb_min) {
  404. _soc.coulomb_min = est_coulomb;
  405. }
  406. if ((est_capaticy > 0) && (est_capaticy <= _soc.capacity)) { //放电,容量不能等于0,需要靠欠压或者PowerDown 矫正到0
  407. update_capticy = 1;
  408. }
  409. }
  410. if (update_capticy) {
  411. if (_soc.capacity != est_capaticy) {
  412. _soc.capacity = est_capaticy;
  413. }else {
  414. update_capticy = 0;
  415. }
  416. }
  417. _soc.coulomb_now = est_coulomb;
  418. //通过电压校准SOC,只能在电压范围的两端校准
  419. update_capticy |= _soc_update_by_ocv(prev_charge_status);
  420. soc_calibrate(prev_charge_status);
  421. //如果没有校准过,充电过程中,电量100%后,设置校准标志位
  422. if (chargering && (_soc.capacity == 100)){
  423. _soc.coulomb_now = _soc.coulomb_max;//充满后,当前容量设置为最大容量
  424. if ((_soc.flags & SOC_FLAG_CALIBRATED) == 0){
  425. _soc.flags |= SOC_FLAG_CALIBRATED;
  426. update_capticy = 1;
  427. soc_warning("calibrate OK, charging coulomb: %f\n", _soc.charger_coulomb);
  428. }else { //如果校准过,单电芯过压,100%的容量,设置最大容量为当前容量
  429. if (bms_health()->sigle_cell_over_voltage){
  430. #if 0 /* 暂时去掉,最大容量不变化,只校准欠压后的可放电的最小容量 */
  431. if ((_soc.coulomb_now >= DEFALUT_MIN_COULOMB) && (_soc.coulomb_now <= DEFALUT_MAX_COULOMB)) {
  432. _soc.coulomb_max = _soc.coulomb_now;
  433. soc_warning("signal cell over vol, cap full, reset coul max to coul now: %f\n", _soc.coulomb_max);
  434. }
  435. #endif
  436. }
  437. }
  438. }
  439. if (_soc.coulomb_now >= _soc.coulomb_min) {
  440. _soc.energy = bms_state_get()->pack_voltage/1000.f * (_soc.coulomb_now - _soc.coulomb_min);
  441. }
  442. if (update_capticy) {
  443. nv_save_soc();
  444. }
  445. }
  446. /*休眠bms功耗 + 电芯自放电 28天 3% (28天1AH)*/
  447. void soc_update_for_deepsleep(float sleep_time){
  448. soc_update_by_current_and_time(-(0.32f + 1000.0f/(24.f * 28.f)), sleep_time, 0); //休眠功耗310uA(300uA + 10uA固定消耗)
  449. current_sample_ts = shark_get_mseconds(); //唤醒后复位采集时间,如果不采集会重复计算
  450. }
  451. void soc_update(void){
  452. uint8_t pre_chargering = chargering;
  453. if (!chargering && bms_state_get()->charging){
  454. _soc.pre_charger_coulomb = _soc.charger_coulomb;
  455. _soc.charger_coulomb = 0;//clear charing
  456. _soc.total_coulomb += _soc.pre_charger_coulomb / 3600.0f;
  457. chargering = 1;
  458. #if LEAST_SQUARE==1
  459. start_least_square(0);
  460. #endif
  461. soc_warning("changed to chargering, current = %d\n", measure_value()->load_current);
  462. }else if (chargering && !bms_state_get()->charging){
  463. _soc.pre_discharger_coulomb = _soc.dischrger_coulomb;
  464. _soc.dischrger_coulomb = 0; //clear discharger
  465. _soc.total_coulomb += _soc.pre_discharger_coulomb / 3600.0f;
  466. chargering = 0;
  467. charger_remain_time = 0;
  468. soc_warning("changed to dischargering, current = %d\n", measure_value()->load_current);
  469. }
  470. #if LEAST_SQUARE==1
  471. if(!chargering && abs(measure_value()->load_current) >= 5000){
  472. start_least_square(1);
  473. }
  474. #endif
  475. soc_update_by_current_and_time(measure_value()->load_current, _delta_time(), pre_chargering);
  476. soc_update_charger_remain_time();
  477. }
  478. soc_t *get_soc(void){
  479. return &_soc;
  480. }