health.c 23 KB

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  1. #include "bsp/gpio.h"
  2. #include "bsp/ml5238.h"
  3. #include "libs/logger.h"
  4. #include "state.h"
  5. #include "iostate.h"
  6. #include "measure.h"
  7. #include "measure_task.h"
  8. #include "health.h"
  9. #include "Least_Square.h"
  10. #include "event_record.h"
  11. #if 0
  12. #define MIN_VOLTAGE_FOR_DISCHARGER (2.2f * CELLS_NUM * 1000) //允许能放电的最小电压
  13. #define MIN_VOLTAGE_FOR_RECOVERY_DISCHARGER (2.3f * CELLS_NUM * 1000) //恢复放电的最小电压
  14. #define MIN_VOLTAGE_FOR_POWER_DOWN (2.1f * CELLS_NUM* 1000)
  15. #define SIGLE_CELL_LOWER_DISCHARGER_VOLTAGE (1820) //最小允许的电芯放电电压 1.8v, 考虑到采样的误差取 1.82
  16. #endif
  17. static int8_t charger_normal_low_temp[PACK_TEMPS_NUM] = {0,0,0,-5}; //正常的充电最低温度
  18. static int8_t charger_normal_high_temp[PACK_TEMPS_NUM] = {50,50,50,75}; //正常的充电最高温度
  19. static int8_t charger_lower_low_temp[PACK_TEMPS_NUM] = {-1,-1,-1,-6}; //需要停止充电的最低温度
  20. static int8_t charger_higher_high_temp[PACK_TEMPS_NUM] = {55,55,55,85}; //需要停止充电的最高温度
  21. static int8_t discharger_normal_low_temp[PACK_TEMPS_NUM] = {-20,-20,-20,-25};//正常的放电最低温度
  22. static int8_t discharger_normal_high_temp[PACK_TEMPS_NUM] = {55,55,55,75};//正常的放电最高温度
  23. static int8_t discharger_lower_low_temp[PACK_TEMPS_NUM] = {-25,-25,-25,-30}; //需要停止放电的最低温度
  24. static int8_t discharger_higher_high_temp[PACK_TEMPS_NUM] = {60,60,60,85};//需要停止放电的最高温度
  25. static int8_t work_lower_temp[PACK_TEMPS_NUM - 1] = {5,5,5}; //pcb温度不用判断
  26. static int8_t work_lower_temp_recovry[PACK_TEMPS_NUM - 1] = {10,10,10}; //pcb温度不用判断
  27. /*定义低温和正常温度下的电池保护参数, [0]低温参数, [1]常温参数 */
  28. /*能提供动力的最小电压*/
  29. static float min_discharger_power_vol[] = {32000, 38000}; //允许能提供动力的最小电压
  30. static float min_discharger_power_recovery_vol[] = {34000, 40000}; //恢复能提供动力的最小电压
  31. static float min_discharger_power_cell_vol[] = {2100, 2400}; //允许能提供动力的最小电芯电压
  32. static float min_discharger_power_recovery_cell_vol[] = {2200, 2500}; //恢复能提供动力的最小电芯电压
  33. /*能提供大电的最小电压*/
  34. static float min_discharger_vol[] = {27000, 33000};//允许能放电的最小电压
  35. static float min_discharger_recovery_vol[] = {30000, 36000};//恢复放电的最小电压
  36. static float min_discharger_cell_vol[] = {1800, 2200};//允许能放电的最小电芯电压
  37. static float min_discharger_cell_recovery_vol[] = {1900, 2300};//恢复放电的最小电芯电压
  38. /*电池PowerDown的最小电压 */
  39. static float min_discharger_pdown_vol[] = {26000, 30000}; //power down的最小电压
  40. static float min_discharger_pdown_cell_vol[] = {1600, 1800}; //power down的最小电芯电压
  41. #define MAX_TRY_FOR_AUX_SHORT 10
  42. /* health 模块,只检测状态,不做任何控制,如果有异常情况,控制中心会统一处理 */
  43. static void check_ml5238_state(int event);
  44. static void load_detect_handler(shark_timer_t *timer);
  45. static void clear_short_current_handler(shark_timer_t *timer);
  46. static void charger_detect_handler(shark_timer_t *timer);
  47. static void _aux_lock_timer_handler(shark_timer_t *t);
  48. static void _aux_unlock_timer_handler(shark_timer_t *t);
  49. void soft_current_init(void);
  50. int soft_current_push(float current_ma);
  51. static bms_health_t _health;
  52. static debounce_timer_t _load_detect_timer = {.max_count = 100, .interval = 10, ._timer.handler = load_detect_handler};
  53. static debounce_timer_t _charger_detect_timer = {.max_count = 500, .interval = 10, ._timer.handler = charger_detect_handler};
  54. static shark_timer_t _clear_short_current_timer = {.handler = clear_short_current_handler};
  55. static error_counts_t error_counts;
  56. void health_init(void){
  57. /* 5238如果有异常情况,比如短路,负载移除,通过这个handler上报 */
  58. ml5238_register_notify_handler(check_ml5238_state);
  59. soft_current_init();
  60. set_log_level(MOD_HEALTH, L_debug);
  61. for (int i = 0; i < CELLS_NUM; i++){
  62. _health.internal_resistance[i] = 1;//毫欧,暂时用一个固定数据,后期需要计算R0=(U2-U1)/(I1-I2) - R1(R1为电路上的等效电阻+采样电阻)
  63. }
  64. _health.is_work_temp_normal = 1;
  65. }
  66. void health_log(void){
  67. health_debug("soft short:%d\n", error_counts.soft_current_short);
  68. health_debug("hard short:%d\n", error_counts.hard_current_short);
  69. health_debug("work temp: %d\n", _health.is_work_temp_normal);
  70. health_debug("aux_short: %d, %d\n", error_counts.aux_short, error_counts.aux_real_short);
  71. health_debug("lower voltage: %d, %d\n", error_counts.cell_under_voltage, error_counts.pack_under_voltage);
  72. health_debug("uart error %d, %d, %d\n", error_counts.uart_crc_error, error_counts.uart_len_error, error_counts.uart_dir_error);
  73. health_debug("Temp abnormal: %d,%d,%d,%d\n", error_counts.discharger_high_temp, error_counts.charger_high_temp, error_counts.discharger_lower_temp, error_counts.charger_lower_temp);
  74. }
  75. bms_health_t *bms_health(){
  76. return &_health;
  77. }
  78. void health_add_uart_error(uint32_t c, uint32_t l, uint32_t d) {
  79. error_counts.uart_crc_error += c;
  80. error_counts.uart_len_error += l;
  81. error_counts.uart_dir_error += d;
  82. }
  83. uint32_t bms_health_pack_lower_voltage(void){
  84. return min_discharger_vol[_health.is_work_temp_normal];
  85. }
  86. uint32_t bms_health_cell_lower_voltage(void){
  87. return min_discharger_cell_vol[_health.is_work_temp_normal];
  88. }
  89. static void clear_short_current_handler(shark_timer_t *timer){
  90. _health.load_current_short = 0; //负载移除,clear load current short
  91. health_warning("clear load current short\n");
  92. }
  93. static void load_detect_handler(shark_timer_t *timer){
  94. if (ml5238_is_load_disconnect()){
  95. _load_detect_timer.count ++;
  96. }else {
  97. _load_detect_timer.count = 0;
  98. }
  99. if (_load_detect_timer.count >= _load_detect_timer.max_count) {
  100. ml5238_enable_load_detect(0);
  101. _load_detect_timer.count = 0;
  102. shark_timer_post(&_clear_short_current_timer, 60 * 1000); //负载移除1分钟后,清除current short flags, can open discharger again
  103. health_warning("load disconnect\n");
  104. }else {
  105. shark_timer_post(&_load_detect_timer._timer, _load_detect_timer.interval);
  106. }
  107. }
  108. static void charger_detect_handler(shark_timer_t *timer){
  109. if (!io_state()->charger_detect || !bms_state_get()->charging) {
  110. _charger_detect_timer.count ++;
  111. }else {
  112. _charger_detect_timer.count = 0;
  113. }
  114. if (_charger_detect_timer.count >= _charger_detect_timer.max_count){
  115. _health.charger_over_current = 0;
  116. _charger_detect_timer.count = 0;
  117. health_warning("clear charger over current\n");
  118. }else {
  119. shark_timer_post(&_charger_detect_timer._timer, _charger_detect_timer.interval);
  120. }
  121. }
  122. static void check_ml5238_state(int event){
  123. health_warning("ml5238 event=0x%x\n", event);
  124. if (event == ML5238_Event_Charger_Over_Current){
  125. shark_timer_post(&_charger_detect_timer._timer, _charger_detect_timer.interval);
  126. }else if (event == ML5238_Event_Short_Current) { //ml5238触发短路保护,充放电mos全部关闭
  127. _health.load_current_short = 1;
  128. push_event(Current_Short, 1);
  129. error_counts.hard_current_short ++;
  130. ml5238_enable_load_detect(1); //打开负载检测
  131. shark_timer_post(&_load_detect_timer._timer, _load_detect_timer.interval);
  132. }else if (event == ML5238_Event_Load_Disconnect) {
  133. shark_timer_post(&_load_detect_timer._timer, _load_detect_timer.interval);
  134. }
  135. }
  136. static void debug_health(void){
  137. uint32_t *value = (uint32_t *)&_health;
  138. if (*value != 0){
  139. //health_error("health value = 0x%x\n", *value);
  140. }
  141. }
  142. /* 检测电流情况,看是否过流等 */
  143. static debounce_t _charger_over_current = {
  144. .count = 0,
  145. .max_count = 70
  146. };
  147. /* 55 - 100A, 14 - I x I / 750 */
  148. void check_current_state(void){
  149. float current = measure_value()->load_current;
  150. if (bms_state_get()->charging) {
  151. //_discharger_over_current.count = 0;
  152. if (!_health.charger_over_current) {
  153. if (current > MAX_CURRENT_FOR_CHARGER) {
  154. _charger_over_current.count ++;
  155. }else {
  156. _charger_over_current.count = 0;
  157. }
  158. if (_charger_over_current.count >= _charger_over_current.max_count){
  159. _health.charger_over_current = 1;
  160. _charger_over_current.count = 0;
  161. health_warning("charger over current\n");
  162. shark_timer_post(&_charger_detect_timer._timer, _charger_detect_timer.interval);
  163. }
  164. }
  165. }else{
  166. _charger_over_current.count = 0;
  167. if (!_health.load_current_short){
  168. if (soft_current_push(current)) {
  169. _health.load_current_short = 1;
  170. push_event(Current_Short, 0);
  171. error_counts.soft_current_short ++;
  172. //_discharger_over_current.count = 0;
  173. ml5238_enable_load_detect(1); //打开负载检测
  174. shark_timer_post(&_load_detect_timer._timer, _load_detect_timer.interval);
  175. soft_current_init();
  176. }
  177. }
  178. push_max_current((s32)current);
  179. }
  180. }
  181. /* 检测pack电压,cell电压,pack电压过低触发powerdown*/
  182. static debounce_t _discharger_lower_voltage = {.count = 0, .max_count = 200, .init_count = 0};
  183. static debounce_t _power_down_voltage = {.count = 0, .max_count = 20, .init_count = 0};
  184. static debounce_t _sigle_cell_discharger_lower_vol = {.count = 0, .max_count = 200, .init_count = 0};
  185. static debounce_t _sigle_cell_charger_max_vol = {.count = 0, .max_count = 50, .init_count = 0};
  186. static debounce_t _shut_discharger_lower_voltage = {.count = 0, .max_count = 20,.init_count = 0};
  187. static debounce_t _shut_discharger_cell_lower_voltage = {.count = 0, .max_count = 400,.init_count = 0};
  188. static int judge_debounce(int input, debounce_t *d){
  189. if (input) {
  190. d->count ++;
  191. if (d->count >= d->max_count){
  192. d->count = 0;
  193. return 1;
  194. }
  195. return 0;
  196. }else {
  197. d->count = d->init_count;
  198. return 0;
  199. }
  200. }
  201. static int _can_powerdown(void){
  202. if (io_state()->charger_detect_irq || bms_state_get()->charging){
  203. return 0;
  204. }
  205. if ((bms_state_get()->pack_voltage <= min_discharger_pdown_vol[_health.is_work_temp_normal] ||
  206. bms_state_get()->cell_min_vol <= min_discharger_pdown_cell_vol[_health.is_work_temp_normal])){
  207. return 1;
  208. }
  209. return 0;
  210. }
  211. static void _single_low_judge_current(bool set) {
  212. if (!set){
  213. bms_health()->b_flags &= ~(B_FLAGS_SINGLE_LOW_CURRENT | B_FLAGS_SINGLE_MID_CURRENT | B_FLAGS_SINGLE_BIG_CURRENT | B_FLAGS_SINGLE_LARGER_CURRENT);
  214. return;
  215. }
  216. int load_current = abs(measure_value()->load_current);
  217. if (load_current < MAX_HA*1000/2) { // 0.5C ???
  218. bms_health()->b_flags |= B_FLAGS_SINGLE_LOW_CURRENT;
  219. }else if (load_current < MAX_HA*1000) { // 1C ???
  220. bms_health()->b_flags |= B_FLAGS_SINGLE_MID_CURRENT;
  221. }else if (load_current < MAX_HA * 1000 * 3/2) { // 1.5C ???
  222. bms_health()->b_flags |= B_FLAGS_SINGLE_BIG_CURRENT;
  223. }else {
  224. bms_health()->b_flags |= B_FLAGS_SINGLE_LARGER_CURRENT;
  225. }
  226. }
  227. static void _pack_low_judge_current(bool set) {
  228. if (!set){
  229. bms_health()->b_flags &= ~(B_FLAGS_PACK_LOW_CURRENT | B_FLAGS_PACK_MID_CURRENT | B_FLAGS_PACK_BIG_CURRENT | B_FLAGS_PACK_LARGER_CURRENT);
  230. return;
  231. }
  232. int load_current = abs(measure_value()->load_current);
  233. if (load_current < MAX_HA*1000/2) {
  234. bms_health()->b_flags |= B_FLAGS_PACK_LOW_CURRENT;
  235. }else if (load_current < MAX_HA*1000) {
  236. bms_health()->b_flags |= B_FLAGS_PACK_MID_CURRENT;
  237. }else if (load_current < MAX_HA * 1000 * 3/2){
  238. bms_health()->b_flags |= B_FLAGS_PACK_BIG_CURRENT;
  239. }else {
  240. bms_health()->b_flags |= B_FLAGS_PACK_LARGER_CURRENT;
  241. }
  242. }
  243. static void push_cell_event(event_id_t id){
  244. u32 max = ((bms_state_get()->cell_index_of_max_vol << 12) & 0xF000) | (bms_state_get()->cell_max_vol& 0x0FFF);
  245. u32 min = ((bms_state_get()->cell_index_of_min_vol << 12) & 0xF000) | (bms_state_get()->cell_min_vol& 0x0FFF);
  246. push_event(id, max << 16 | min);
  247. }
  248. void check_voltage_state(void) {
  249. static uint16_t _charging = 0xFFFF;
  250. if (_charging != bms_state_get()->charging) {
  251. if (bms_state_get()->charging) {
  252. }else {
  253. error_counts.cell_under_voltage = 0;
  254. }
  255. _charging = bms_state_get()->charging;
  256. }
  257. if (bms_state_get()->charging){ //check sigle cell's voltage for charger
  258. _health.discharger_shutpower_voltage = 0;
  259. _health.sigle_cell_lower_voltage = 0;
  260. _health.discharger_lower_voltage = 0;
  261. _health.discharger_cell_shutpower_voltage = 0;
  262. if ((bms_state_get()->cell_max_vol>= SIGLE_CELL_MAX_CHARGER_VOLTAGE)){
  263. if (judge_debounce(!_health.sigle_cell_over_voltage, &_sigle_cell_charger_max_vol)){
  264. _health.sigle_cell_over_voltage = 1;
  265. push_cell_event(Cell_Over_Vol);
  266. sys_debug("sigle cell %d\n", bms_state_get()->cell_max_vol);
  267. }
  268. }else if ((bms_state_get()->cell_max_vol < SIGLE_CELL_MAX_CHARGER_VOLTAGE)){
  269. if (judge_debounce(_health.sigle_cell_over_voltage, &_sigle_cell_charger_max_vol)){
  270. _health.sigle_cell_over_voltage = 0;
  271. }
  272. }
  273. _health.charger_over_voltage = _health.sigle_cell_over_voltage;
  274. }else{
  275. //check sigle cell's voltage for discharger
  276. _health.charger_over_voltage = _health.sigle_cell_over_voltage = 0;
  277. if ((bms_state_get()->cell_min_vol <= min_discharger_cell_vol[_health.is_work_temp_normal])){
  278. if (judge_debounce(!_health.sigle_cell_lower_voltage, &_sigle_cell_discharger_lower_vol)){
  279. _health.sigle_cell_lower_voltage = 1;
  280. push_cell_event(Cell_Under_Vol);
  281. _single_low_judge_current(true);
  282. error_counts.cell_under_voltage++;
  283. }
  284. }else if ((bms_state_get()->cell_min_vol >= min_discharger_cell_recovery_vol[_health.is_work_temp_normal])){
  285. _single_low_judge_current(false);
  286. if (judge_debounce(_health.sigle_cell_lower_voltage, &_sigle_cell_discharger_lower_vol)){
  287. _health.sigle_cell_lower_voltage = 0;
  288. }
  289. }else {
  290. debounce_reset(_sigle_cell_discharger_lower_vol);
  291. }
  292. //check sigle pack's voltage for discharger
  293. if (bms_state_get()->pack_voltage <= min_discharger_vol[_health.is_work_temp_normal]){
  294. if (judge_debounce(!_health.discharger_lower_voltage, &_discharger_lower_voltage)){
  295. _health.discharger_lower_voltage = 1;
  296. push_event(Pack_Under_Vol, bms_state_get()->pack_voltage);
  297. _pack_low_judge_current(true);
  298. error_counts.pack_under_voltage++;
  299. }
  300. }else if (bms_state_get()->pack_voltage >= min_discharger_recovery_vol[_health.is_work_temp_normal]){
  301. _pack_low_judge_current(false);
  302. if (judge_debounce(_health.discharger_lower_voltage, &_discharger_lower_voltage)){
  303. _health.discharger_lower_voltage = 0;
  304. }
  305. }else {
  306. debounce_reset(_discharger_lower_voltage);
  307. }
  308. //check for shutdown power
  309. if ((bms_state_get()->cell_min_vol <= min_discharger_power_cell_vol[_health.is_work_temp_normal])){
  310. if (judge_debounce(!_health.discharger_cell_shutpower_voltage, &_shut_discharger_cell_lower_voltage)){
  311. _health.discharger_cell_shutpower_voltage = 1;
  312. }
  313. }else if ((bms_state_get()->cell_min_vol >= min_discharger_power_recovery_cell_vol[_health.is_work_temp_normal])){
  314. if (judge_debounce(_health.discharger_cell_shutpower_voltage, &_shut_discharger_cell_lower_voltage)){
  315. _health.discharger_cell_shutpower_voltage = 0;
  316. }
  317. }else {
  318. debounce_reset(_shut_discharger_cell_lower_voltage);
  319. }
  320. if ((bms_state_get()->pack_voltage <= min_discharger_power_vol[_health.is_work_temp_normal])){
  321. if (judge_debounce(!_health.discharger_shutpower_voltage, &_shut_discharger_lower_voltage)){
  322. _health.discharger_shutpower_voltage = 1;
  323. }
  324. }else if ((bms_state_get()->pack_voltage >= min_discharger_power_recovery_vol[_health.is_work_temp_normal])){
  325. if (judge_debounce(_health.discharger_shutpower_voltage, &_shut_discharger_lower_voltage)){
  326. _health.discharger_shutpower_voltage = 0;
  327. }
  328. }else {
  329. debounce_reset(_shut_discharger_lower_voltage);
  330. }
  331. }
  332. /* check for power down */
  333. if (_can_powerdown()){
  334. if (judge_debounce(!_health.powerdown_lower_voltage, &_power_down_voltage)) {
  335. /*
  336. * no need to clear powerdown(bms is shutdown), when charger insert,
  337. * system will power on with powerdown_lower_voltage cleared
  338. */
  339. _health.powerdown_lower_voltage = 1;
  340. _health.sigle_cell_lower_voltage = 1;
  341. _health.pd_time = shark_get_seconds();
  342. }
  343. }else {
  344. _health.powerdown_lower_voltage = 0;
  345. _power_down_voltage.count = _power_down_voltage.init_count;
  346. _health.pd_time = shark_get_seconds();
  347. }
  348. debug_health();
  349. }
  350. /* 检测温度情况,看是否过高温,或者过低温 */
  351. static debounce_t _charger_over_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  352. static debounce_t _charger_lower_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  353. static debounce_t _charger_normal_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  354. static debounce_t _discharger_over_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  355. static debounce_t _discharger_lower_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  356. static debounce_t _discharger_normal_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  357. static debounce_t _work_lower_temp_count = {.count = 0, .max_count = 8, .init_count = 0};
  358. static int _get_max_temp(int size){
  359. int max = -1000;
  360. for (int i = 0; i < size; i++){
  361. if (measure_value()->pack_temp[i] >= max){
  362. max = measure_value()->pack_temp[i];
  363. }
  364. }
  365. return max;
  366. }
  367. static int _get_min_temp(int size){
  368. int min = 1000;
  369. for (int i = 0; i < size; i++){
  370. if (measure_value()->pack_temp[i] < min){
  371. min = measure_value()->pack_temp[i];
  372. }
  373. }
  374. return min;
  375. }
  376. static int _is_over_temp(int8_t *temps, int size){
  377. int count = 0;
  378. for (int i = 0; i < size; i++){
  379. if (measure_value()->pack_temp[i] >= temps[i]){
  380. count ++;
  381. }
  382. }
  383. return count;
  384. }
  385. static int _is_low_temp(int8_t *temps, int size){
  386. int count = 0;
  387. for (int i = 0; i < size; i++){
  388. if (measure_value()->pack_temp[i] < temps[i]){
  389. count ++;
  390. }
  391. }
  392. return count;
  393. }
  394. static uint8_t small_power_detect_count = 0;
  395. static shark_timer_t _aux_lock_timer = {.handler = _aux_lock_timer_handler};
  396. static shark_timer_t _aux_unlock_timer = {.handler = _aux_unlock_timer_handler};
  397. u32 _aux_unlock_delay(float voltage){
  398. float aux_current = voltage / SMALL_CURRENT_R;
  399. return aux_current * 10 * 1000; //ms
  400. }
  401. static void _aux_lock_timer_handler(shark_timer_t *t){
  402. AUX_VOL_OPEN(1);
  403. if (++small_power_detect_count >= MAX_TRY_FOR_AUX_SHORT){
  404. //端口电压小于阈值,判断为小电流短路
  405. int short_voltage = get_small_current_voltage()/1000;
  406. int pack_voltage = bms_state_get()->pack_voltage/1000;
  407. if (short_voltage >= AUX_SHORT_DIFF_VOLTAGE) {
  408. if (_health.small_current_short == 0) {
  409. push_event(Aux_Current_Short, short_voltage);
  410. }
  411. _health.small_current_short = 1;
  412. error_counts.aux_short ++;
  413. AUX_VOL_OPEN(0);
  414. small_power_detect_count = 0;
  415. u32 delay_time = _aux_unlock_delay(short_voltage);
  416. if (short_voltage >= (pack_voltage - AUX_SHORT_REAL_DIFF_VOLTAGE)){ //real short
  417. error_counts.aux_real_short ++;
  418. _health.small_current_real_short = 1;
  419. delay_time = 30 * 1000;
  420. }
  421. shark_timer_post( &_aux_lock_timer, delay_time); //30s后再次尝试打开
  422. shark_timer_cancel(&_aux_unlock_timer);
  423. health_debug("aux short, v:%d, and retry after %ds\n", short_voltage, delay_time/1000);
  424. }
  425. }else {
  426. health_debug("open aux[re-enable], %lld\n", shark_get_mseconds());
  427. shark_timer_post( &_aux_unlock_timer, 200);
  428. }
  429. }
  430. static void _aux_unlock_timer_handler(shark_timer_t *t){
  431. if (!io_state()->aux_lock_detect){
  432. health_debug("unlock aux detect\n");
  433. small_power_detect_count = 0;
  434. _health.small_current_short = 0;
  435. _health.small_current_real_short = 0;
  436. AUX_VOL_OPEN(1);
  437. }
  438. }
  439. void health_stop_aux_detect(void){
  440. shark_timer_cancel(&_aux_unlock_timer);
  441. shark_timer_cancel(&_aux_lock_timer);
  442. _health.small_current_short = 0;
  443. _health.small_current_real_short = 0;
  444. }
  445. void health_process_aux_lock(void){
  446. if (io_state()->aux_lock_detect) {
  447. if (AUX_VOL_IS_OPEN()){
  448. AUX_VOL_OPEN(0);
  449. health_debug("close aux[locked], %lld\n", shark_get_mseconds());
  450. shark_timer_post( &_aux_lock_timer, 1);
  451. shark_timer_cancel(&_aux_unlock_timer);
  452. }
  453. }else {
  454. if (AUX_VOL_IS_OPEN()) {
  455. shark_timer_post( &_aux_unlock_timer, 500);
  456. shark_timer_cancel(&_aux_lock_timer);
  457. }
  458. }
  459. }
  460. void check_temp_state(void){
  461. if (!_health.over_temp_deny_charger){
  462. if (_is_over_temp(charger_higher_high_temp, sizeof(charger_higher_high_temp))) {//超过允许的最高温度
  463. debounce_inc(_charger_over_temp_count);
  464. }else {
  465. debounce_reset(_charger_over_temp_count);
  466. }
  467. if (debounce_reach_max(_charger_over_temp_count)){
  468. _health.over_temp_deny_charger = 1;
  469. push_event(Temp_High_Charger, _get_max_temp(4));
  470. error_counts.charger_high_temp ++;
  471. debounce_reset(_charger_over_temp_count);
  472. }
  473. }
  474. if (!_health.lower_temp_deny_charger){
  475. if (_is_low_temp(charger_lower_low_temp, sizeof(charger_lower_low_temp))) {//低于允许的最低温度
  476. debounce_inc(_charger_lower_temp_count);
  477. }else {
  478. debounce_reset(_charger_lower_temp_count);
  479. }
  480. if (debounce_reach_max(_charger_lower_temp_count)) {
  481. _health.lower_temp_deny_charger = 1;
  482. push_event(Temp_Low_Charger, _get_min_temp(4));
  483. error_counts.charger_lower_temp ++;
  484. debounce_reset(_charger_lower_temp_count);
  485. }
  486. }
  487. if (_health.lower_temp_deny_charger || _health.over_temp_deny_charger) {
  488. if (!_is_over_temp(charger_normal_high_temp, sizeof(charger_normal_high_temp)) && !_is_low_temp(charger_normal_low_temp, sizeof(charger_normal_low_temp))){
  489. debounce_inc(_charger_normal_temp_count);
  490. }else {
  491. debounce_reset(_charger_normal_temp_count);
  492. }
  493. if (debounce_reach_max(_charger_normal_temp_count)){
  494. _health.over_temp_deny_charger = 0;
  495. _health.lower_temp_deny_charger = 0;
  496. debounce_reset(_charger_normal_temp_count);
  497. }
  498. }
  499. if (!_health.over_temp_deny_discharger){
  500. if (_is_over_temp(discharger_higher_high_temp, sizeof(discharger_higher_high_temp))) {//超过允许的最高温度
  501. debounce_inc(_discharger_over_temp_count);
  502. }else {
  503. debounce_reset(_discharger_over_temp_count);
  504. }
  505. if (debounce_reach_max(_discharger_over_temp_count)){
  506. _health.over_temp_deny_discharger = 1;
  507. push_event(Temp_High_Discharger, _get_max_temp(4));
  508. error_counts.discharger_high_temp ++;
  509. debounce_reset(_discharger_over_temp_count);
  510. }
  511. }
  512. if (!_health.lower_temp_deny_discharger){
  513. if (_is_low_temp(discharger_lower_low_temp, sizeof(discharger_lower_low_temp))) {//低于允许的最低温度
  514. debounce_inc(_discharger_lower_temp_count);
  515. }else {
  516. debounce_reset(_discharger_lower_temp_count);
  517. }
  518. if (debounce_reach_max(_discharger_lower_temp_count)) {
  519. _health.lower_temp_deny_discharger = 1;
  520. push_event(Temp_Low_Discharger, _get_min_temp(4));
  521. error_counts.discharger_lower_temp ++;
  522. debounce_reset(_discharger_lower_temp_count);
  523. }
  524. }
  525. if (_health.lower_temp_deny_discharger || _health.over_temp_deny_discharger) {
  526. if (!_is_over_temp(discharger_normal_high_temp, sizeof(discharger_lower_low_temp)) && !_is_low_temp(discharger_normal_low_temp, sizeof(discharger_normal_low_temp))){
  527. debounce_inc(_discharger_normal_temp_count);
  528. }else {
  529. debounce_reset(_discharger_normal_temp_count);
  530. }
  531. if (debounce_reach_max(_discharger_normal_temp_count)){
  532. _health.over_temp_deny_discharger = 0;
  533. _health.lower_temp_deny_discharger = 0;
  534. debounce_reset(_discharger_normal_temp_count);
  535. }
  536. }
  537. if (!_health.is_work_temp_normal){
  538. /* 3个电芯温度都正常才算正常 */
  539. if (_is_over_temp(work_lower_temp_recovry, sizeof(work_lower_temp_recovry)) == sizeof(work_lower_temp_recovry)){
  540. debounce_inc(_work_lower_temp_count);
  541. if (debounce_reach_max(_work_lower_temp_count)){
  542. _health.is_work_temp_normal = 1;
  543. push_event(Temp_Changed, 1);
  544. debounce_reset(_work_lower_temp_count);
  545. }
  546. }else {
  547. debounce_reset(_work_lower_temp_count);
  548. }
  549. }else {
  550. if (_is_low_temp(work_lower_temp, sizeof(work_lower_temp))){
  551. debounce_inc(_work_lower_temp_count);
  552. if (debounce_reach_max(_work_lower_temp_count)){
  553. _health.is_work_temp_normal = 0;
  554. push_event(Temp_Changed, 0);
  555. debounce_reset(_work_lower_temp_count);
  556. }
  557. }else {
  558. debounce_reset(_work_lower_temp_count);
  559. }
  560. }
  561. if (bms_state_get()->charging){
  562. _health.discharger_over_temp = 0;
  563. _health.discharger_lower_temp = 0;
  564. _health.charger_over_temp = _health.over_temp_deny_charger;
  565. _health.charger_lower_temp = _health.lower_temp_deny_charger;
  566. }else {
  567. _health.charger_over_temp = 0;
  568. _health.charger_lower_temp = 0;
  569. _health.discharger_over_temp = _health.over_temp_deny_discharger;
  570. _health.discharger_lower_temp = _health.lower_temp_deny_discharger;
  571. }
  572. debug_health();
  573. }