eeprom.c 18 KB

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  1. #include "eeprom.h"
  2. #include "gd32f30x_libopt.h"
  3. #include "SysTick.h"
  4. #include "main.h"
  5. #define ACK 1
  6. #define NACK 0
  7. #define IIC_WP_PIN GPIO_PIN_8
  8. #define IIC_DATA_IO GPIOB
  9. #define IIC_SDA_PIN GPIO_PIN_7
  10. #define IIC_SCL_PIN GPIO_PIN_6
  11. #define PAGE_SZIE_32 (32)
  12. #define PAGE_SIZE_16 (16)
  13. #define IIC_READ_SDA() gpio_input_bit_get(IIC_DATA_IO, IIC_SDA_PIN)
  14. #define IIC_SCL_SET gpio_bit_set(IIC_DATA_IO, IIC_SCL_PIN)
  15. #define IIC_SCL_CLR gpio_bit_reset(IIC_DATA_IO, IIC_SCL_PIN)
  16. #define IIC_SDA_SET gpio_bit_set(IIC_DATA_IO, IIC_SDA_PIN)
  17. #define IIC_SDA_CLR gpio_bit_reset(IIC_DATA_IO, IIC_SDA_PIN)
  18. #define AT24C01 127
  19. #define AT24C02 255
  20. #define AT24C04 511
  21. #define AT24C08 1023
  22. #define AT24C16 2047
  23. #define AT24C32 4095
  24. #define AT24C64 8191
  25. #define AT24C128 16383
  26. #define AT24C256 32767
  27. #define USER_DEFINE_EEPROM_TYPE AT24C64
  28. #define PAGE_SIZE PAGE_SZIE_32
  29. static void iic_init(void);
  30. static void iic_start_signal(void);
  31. static void iic_stop_signal(void);
  32. static void iic_send_byte(uint8_t data);
  33. static uint8_t iic_read_byte(uint8_t ack);
  34. static uint8_t iic_wait_ack(void);
  35. static void iic_send_ack(void);
  36. static void iic_send_nack(void);
  37. static uint8_t eeprom_read_1_byte(uint16_t addr);
  38. static void eeprom_write_1_byte(uint16_t addr,uint8_t data);
  39. static void eeprom_write(uint16_t w_addr,uint8_t *data,uint16_t lenth);
  40. static void eeprom_read(uint16_t r_addr,uint8_t *data,uint16_t lenth);
  41. static void check_threshold(uint8_t in_out,uint8_t channel);
  42. static uint8_t eeprom_page_read(uint16_t addr,uint8_t *data,uint16_t lenth);
  43. static uint8_t eeprom_write_page(uint16_t addr,uint8_t *data,uint16_t chuank);
  44. static void eeprom_auto_page_write(uint16_t addr,uint8_t *data,uint16_t lenth);
  45. static void eeprom_auto_page_read(uint16_t addr,uint8_t *data,uint16_t lenth);
  46. static inline void iic_set_sda_input()
  47. {
  48. // gpio_mode_set(IIC_DATA_IO, GPIO_MODE_INPUT, GPIO_PUPD_NONE, IIC_SDA_PIN);
  49. gpio_init(GPIOB,GPIO_MODE_IN_FLOATING,GPIO_OSPEED_50MHZ,IIC_SDA_PIN);
  50. }
  51. static inline void iic_set_sda_output()
  52. {
  53. // gpio_mode_set(IIC_DATA_IO, GPIO_MODE_OUTPUT, GPIO_PUPD_NONE, IIC_SDA_PIN);
  54. // gpio_output_options_set(IIC_DATA_IO, GPIO_OTYPE_PP, GPIO_OSPEED_50MHZ, IIC_SDA_PIN);
  55. gpio_init(GPIOB,GPIO_MODE_OUT_OD,GPIO_OSPEED_50MHZ,IIC_SDA_PIN);
  56. gpio_bit_set(GPIOB,IIC_SDA_PIN);
  57. }
  58. void eeprom_init(void)
  59. {
  60. sts_data_t *board =get_sts();
  61. iic_init();
  62. board->read_eeprom = eeprom_read;
  63. board->write_eeprom = eeprom_write;
  64. board->read_eeprom_page = eeprom_auto_page_read;
  65. board->write_eeprom_page = eeprom_auto_page_write;
  66. }
  67. static void iic_init(void)
  68. {
  69. rcu_periph_clock_enable(RCU_GPIOB); //使能GPIOC的时钟
  70. gpio_init(GPIOB,GPIO_MODE_OUT_PP,GPIO_OSPEED_50MHZ,IIC_WP_PIN);
  71. gpio_bit_reset(GPIOB,IIC_WP_PIN);
  72. //配置PB7
  73. gpio_init(GPIOB,GPIO_MODE_OUT_OD,GPIO_OSPEED_50MHZ,IIC_SDA_PIN); //设置GPIO输出模式及速度 SDA
  74. gpio_bit_set(GPIOB,IIC_SDA_PIN);
  75. //配置PB6
  76. gpio_init(GPIOB,GPIO_MODE_OUT_PP,GPIO_OSPEED_50MHZ,IIC_SCL_PIN); //设置GPIO输出模式及速度 SCL
  77. gpio_bit_set(GPIOB,IIC_SCL_PIN);
  78. }
  79. /*****************************************************************************************
  80. * start data transport signal
  81. * 1 2 3 4
  82. * __________
  83. * SCL : __/ \_____
  84. * ________
  85. * SDA : \___________
  86. ******************************************************************************************/
  87. static void iic_start_signal(void)
  88. {
  89. iic_set_sda_output();
  90. IIC_SDA_SET;
  91. IIC_SCL_SET;
  92. DelayNus(4);
  93. IIC_SDA_CLR;
  94. DelayNus(4);
  95. IIC_SCL_CLR;
  96. }
  97. /*****************************************************************************************
  98. * stop data transport signal
  99. * 1 2 3 4
  100. * _______________
  101. * SCL : ______/
  102. * __ ____________
  103. * SDA : \______/
  104. * ^
  105. * |
  106. *
  107. ******************************************************************************************/
  108. static void iic_stop_signal(void)
  109. {
  110. iic_set_sda_output();
  111. IIC_SCL_CLR;
  112. IIC_SDA_CLR;
  113. DelayNus(4);
  114. IIC_SCL_SET;
  115. DelayNus(4);
  116. IIC_SDA_SET;
  117. DelayNus(4);
  118. }
  119. /*****************************************************************************************
  120. * iic send 1 byte
  121. * 1 2 3 4
  122. * ______
  123. * SCL: ________/ \______
  124. * ______________________
  125. * SDA: \\\___________________
  126. *
  127. ******************************************************************************************/
  128. static void iic_send_byte(uint8_t data)
  129. {
  130. iic_set_sda_output();
  131. IIC_SCL_CLR;
  132. uint8_t t;
  133. for(t = 0; t < 8; t++){
  134. if((data & 0x80) >> 7)
  135. {
  136. IIC_SDA_SET;
  137. }else
  138. {
  139. IIC_SDA_CLR;
  140. }
  141. data <<= 1;
  142. DelayNus(2);
  143. IIC_SCL_SET;
  144. DelayNus(2);
  145. IIC_SCL_CLR;
  146. DelayNus(2);
  147. }
  148. }
  149. /*****************************************************************************************
  150. * read 1 byte
  151. * 1 2 3 4
  152. * ______
  153. * SCL: ______/ \___
  154. * ____________________
  155. * SDA: \\\\______________\\\
  156. *
  157. ******************************************************************************************/
  158. static uint8_t iic_read_byte(uint8_t ack)
  159. {
  160. uint8_t i;
  161. uint8_t receive = 0;
  162. iic_set_sda_input();
  163. for(i = 0; i < 8; i++ ){
  164. IIC_SCL_CLR;
  165. DelayNus(2);
  166. IIC_SCL_SET;
  167. receive <<= 1;
  168. if(IIC_READ_SDA())
  169. {
  170. receive ++;
  171. }
  172. DelayNus(1);
  173. }
  174. if(NACK == ack)
  175. {
  176. iic_send_nack();
  177. }else{
  178. iic_send_ack();
  179. }
  180. return receive;
  181. }
  182. /*****************************************************************************************
  183. * wait ack signal
  184. * _______|____
  185. * SCL: | \_________
  186. * _______|
  187. * SDA: \_____________
  188. *
  189. ******************************************************************************************/
  190. static uint8_t iic_wait_ack(void)
  191. {
  192. uint8_t err_time = 0;
  193. iic_set_sda_input();
  194. IIC_SCL_SET;
  195. DelayNus(1);
  196. while(IIC_READ_SDA())
  197. {
  198. err_time++;
  199. if(err_time >250)
  200. {
  201. iic_stop_signal();
  202. return 1;
  203. }
  204. }
  205. IIC_SCL_CLR;
  206. return 0;
  207. }
  208. /*****************************************************************************************
  209. * send ack signal
  210. * 1 2 3 4
  211. * ______
  212. * SCL: ________/ \______
  213. * __
  214. * SDA: \___________________
  215. ******************************************************************************************/
  216. static void iic_send_ack(void)
  217. {
  218. IIC_SCL_CLR;
  219. iic_set_sda_output();
  220. IIC_SDA_CLR;
  221. DelayNus(2);
  222. IIC_SCL_SET;
  223. DelayNus(2);
  224. IIC_SCL_CLR;
  225. }
  226. /*****************************************************************************************
  227. * send nack signal
  228. * 1 2 3 4
  229. * ______
  230. * SCL: ________/ \______
  231. * ______________________
  232. * SDA: __/
  233. ******************************************************************************************/
  234. static void iic_send_nack(void)
  235. {
  236. IIC_SCL_CLR;
  237. iic_set_sda_output();
  238. IIC_SDA_SET;
  239. DelayNus(2);
  240. IIC_SCL_SET;
  241. DelayNus(2);
  242. IIC_SCL_CLR;
  243. }
  244. static uint8_t eeprom_read_1_byte(uint16_t addr)
  245. {
  246. uint8_t temp =0;
  247. iic_start_signal();
  248. if(USER_DEFINE_EEPROM_TYPE > AT24C16)
  249. {
  250. iic_send_byte(0XA0);
  251. iic_wait_ack();
  252. iic_send_byte(addr >> 8);
  253. }else
  254. {
  255. iic_send_byte(0XA0 + ((addr / 256) << 1));
  256. }
  257. iic_wait_ack();
  258. iic_send_byte(addr % 256);
  259. iic_wait_ack();
  260. iic_start_signal();
  261. iic_send_byte(0XA1);
  262. iic_wait_ack();
  263. temp = iic_read_byte(0);
  264. iic_stop_signal();
  265. return temp;
  266. }
  267. static void eeprom_write_1_byte(uint16_t addr,uint8_t data)
  268. {
  269. iic_start_signal();
  270. if(USER_DEFINE_EEPROM_TYPE > AT24C16)
  271. {
  272. iic_send_byte(0XA0);
  273. iic_wait_ack();
  274. iic_send_byte(addr >> 8);
  275. }else
  276. {
  277. iic_send_byte(0XA0 + ((addr / 256) << 1));
  278. }
  279. iic_wait_ack();
  280. iic_send_byte(addr % 256);
  281. iic_wait_ack();
  282. iic_send_byte(data);
  283. iic_wait_ack();
  284. iic_stop_signal();
  285. DelayNms(7);
  286. }
  287. static void eeprom_write(uint16_t w_addr,uint8_t *data,uint16_t lenth)
  288. {
  289. while(lenth)
  290. {
  291. eeprom_write_1_byte(w_addr,*data);
  292. w_addr++;
  293. data++;
  294. lenth--;
  295. }
  296. }
  297. static void eeprom_read(uint16_t r_addr,uint8_t *data,uint16_t lenth)
  298. {
  299. while(lenth)
  300. {
  301. *data = eeprom_read_1_byte(r_addr);
  302. data++;
  303. r_addr++;
  304. lenth--;
  305. }
  306. }
  307. static uint8_t eeprom_page_read(uint16_t addr,uint8_t *data,uint16_t lenth)
  308. {
  309. if(lenth == 0 || lenth > PAGE_SIZE || ((addr % PAGE_SIZE) + lenth > PAGE_SIZE))
  310. {
  311. return 1;
  312. }
  313. iic_start_signal();
  314. if(USER_DEFINE_EEPROM_TYPE > AT24C16)
  315. {
  316. iic_send_byte(0XA0);
  317. if(iic_wait_ack())
  318. goto failed;
  319. iic_send_byte(addr >> 8);
  320. }else
  321. {
  322. iic_send_byte(0XA0 + ((addr / 256) << 1));
  323. }
  324. if(iic_wait_ack())
  325. goto failed;
  326. iic_send_byte(addr % 256);
  327. if(iic_wait_ack())
  328. goto failed;
  329. iic_start_signal();
  330. iic_send_byte(0XA1);
  331. if(iic_wait_ack())
  332. goto failed;
  333. for(int i = 0; i < lenth;i++)
  334. {
  335. if(i == lenth -1)
  336. {
  337. data[i] = iic_read_byte(0);
  338. }else
  339. {
  340. data[i] = iic_read_byte(1);
  341. }
  342. }
  343. iic_stop_signal();
  344. return 0;
  345. failed:
  346. iic_stop_signal();
  347. return 1;
  348. }
  349. static uint8_t eeprom_write_page(uint16_t addr,uint8_t *data,uint16_t chuank)
  350. {
  351. if(chuank == 0 || chuank > PAGE_SIZE || ((addr % PAGE_SIZE) + chuank > PAGE_SIZE))
  352. {
  353. return 1;
  354. }
  355. iic_start_signal();
  356. if(USER_DEFINE_EEPROM_TYPE > AT24C16)
  357. {
  358. iic_send_byte(0XA0);
  359. if(iic_wait_ack())
  360. goto failed;
  361. iic_send_byte(addr >> 8);
  362. }else
  363. {
  364. iic_send_byte(0XA0 + ((addr / 256) << 1));
  365. }
  366. if(iic_wait_ack())
  367. goto failed;
  368. iic_send_byte(addr % 256);
  369. if(iic_wait_ack())
  370. goto failed;
  371. for(uint16_t i = 0; i < chuank;i++)
  372. {
  373. iic_send_byte(data[i]);
  374. if(iic_wait_ack())
  375. goto failed;
  376. }
  377. iic_stop_signal();
  378. vTaskDelay(7);
  379. return 0;
  380. failed:
  381. iic_stop_signal();
  382. return 1;
  383. }
  384. static void eeprom_auto_page_write(uint16_t addr,uint8_t *data,uint16_t lenth)
  385. {
  386. uint16_t remaining = lenth;
  387. uint8_t *p = data;
  388. uint8_t count = 5;
  389. while(remaining > 0)
  390. {
  391. uint8_t chunk = PAGE_SIZE - (addr % PAGE_SIZE);
  392. if(chunk > remaining) chunk = remaining;
  393. do{
  394. if(!eeprom_write_page(addr, p,chunk))
  395. {
  396. break;
  397. }
  398. }while(count--);
  399. addr += chunk;
  400. p += chunk;
  401. remaining -= chunk;
  402. }
  403. }
  404. static void eeprom_auto_page_read(uint16_t addr,uint8_t *data,uint16_t lenth)
  405. {
  406. uint16_t remaining = lenth;
  407. uint8_t *p = data;
  408. uint8_t count = 5;
  409. while(remaining > 0)
  410. {
  411. uint8_t chunk = PAGE_SIZE - (addr % PAGE_SIZE);
  412. if(chunk > remaining) chunk = remaining;
  413. do{
  414. if(!eeprom_page_read(addr, p, chunk))
  415. {
  416. break;
  417. }
  418. }while(count--);
  419. addr += chunk;
  420. p += chunk;
  421. remaining -= chunk;
  422. }
  423. }
  424. void read_config_from_eeprom(void)
  425. {
  426. sts_data_t *sts_d = get_sts();
  427. uint16_t device_info = 0xFFFF;
  428. eeprom_auto_page_read(EEP_DEVICE_INFO,&device_info,sizeof(uint16_t));
  429. if(device_info != sts_d->m_data.m_r.r_data.dev)
  430. {
  431. //EEP_MD_START
  432. memset(&sts_d->m_data.m_rw.rw_data.md_eep,0,sizeof(md_eep_data_t));
  433. sts_d->m_data.m_rw.rw_data.md_eep.out_status = 1;
  434. for(int i = 0; i < 2;i++)
  435. {
  436. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_1 = (240*1000);
  437. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_2 = (260*1000);
  438. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_1 = (200*1000);
  439. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_2 = (180*1000);
  440. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_1 = (55*1000);
  441. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_2 = (65*1000);
  442. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_1 = (47*1000);
  443. sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_2 = (45*1000);
  444. sts_d->m_data.m_rw.rw_data.md_eep.input_arg[i].i_k = 10000;
  445. sts_d->m_data.m_rw.rw_data.md_eep.input_arg[i].v_k = 3135;
  446. }
  447. sts_d->m_data.m_rw.rw_data.md_eep.temp_th.max_temp = (50)*10; //
  448. sts_d->m_data.m_rw.rw_data.md_eep.temp_th.min_temp = (36)*10; //control fans
  449. sts_d->m_data.m_rw.rw_data.md_eep.out_status = 1;
  450. sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_max_1 = (240*1000);
  451. sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_max_2 = (260*1000);
  452. sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_min_1 = (200*1000);
  453. sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_min_2 = (180*1000);
  454. sts_d->m_data.m_rw.rw_data.md_eep.output_th.power_max_1 = (7000*1000);
  455. sts_d->m_data.m_rw.rw_data.md_eep.output_th.power_max_2 = (10000*1000);
  456. sts_d->m_data.m_rw.rw_data.md_eep.output_th.current_max_1 = (10*1000);
  457. sts_d->m_data.m_rw.rw_data.md_eep.output_th.current_max_2 = (16*1000);
  458. sts_d->m_data.m_rw.rw_data.md_eep.output_th.consumer_max_1 = (10000*1000);
  459. sts_d->m_data.m_rw.rw_data.md_eep.output_th.consumer_max_2 = (90000*1000);
  460. sts_d->m_data.m_rw.rw_data.md_eep.output_arg.i_k = 10000;
  461. sts_d->m_data.m_rw.rw_data.md_eep.output_arg.v_k = 3135;
  462. eeprom_auto_page_write(EEP_MD_START,(uint8_t*)(&sts_d->m_data.m_rw.rw_data.md_eep),sizeof(md_eep_data_t));
  463. iic_consumer_data_t chache = {0};
  464. for(int i = 0; i < MAX_ROW;i++)
  465. {
  466. eeprom_auto_page_write(IIC_CONSUMER_START+(IIC_CONSUMER_PAGE*i),&chache,sizeof(iic_consumer_data_t));
  467. }
  468. }
  469. eeprom_auto_page_read(EEP_MD_START,&sts_d->m_data.m_rw.rw_data.md_eep.out_status,sizeof(md_eep_data_t));
  470. iic_consumer_data_t chache = {0};
  471. for(uint8_t i = 0 ; i < MAX_ROW;i++)
  472. {
  473. eeprom_auto_page_read(IIC_CONSUMER_START+(IIC_CONSUMER_PAGE*i),&chache,sizeof(iic_consumer_data_t));
  474. if(sts_d->kwh.index <= chache.recode_index1)
  475. {
  476. sts_d->kwh.index = chache.recode_index1;
  477. sts_d->kwh.row = i;
  478. }
  479. }
  480. eeprom_auto_page_read(IIC_CONSUMER_START+(IIC_CONSUMER_PAGE*sts_d->kwh.row),&chache,sizeof(iic_consumer_data_t));
  481. sts_d->iic_consumer = chache.iic_consumer;
  482. for(uint8_t i = 0 ;i < 2 ;i ++)
  483. {
  484. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_1 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_1 = 0;
  485. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_2 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_2 = 0;
  486. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_1 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_1 = 0;
  487. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_2 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_2 = 0;
  488. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_1 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_1 = 0;
  489. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_2 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_2 = 0;
  490. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_2 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_2 = 0;
  491. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_1 > INVALID_VALUE) sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_1 = 0;
  492. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_max_1 <= SMALL_VALUE)
  493. sts_d->input_wanning_en[i].vmax_en = 0;
  494. else
  495. sts_d->input_wanning_en[i].vmax_en = 1;
  496. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].voltage_min_1 <= SMALL_VALUE)
  497. sts_d->input_wanning_en[i].vmin_en = 0;
  498. else
  499. sts_d->input_wanning_en[i].vmin_en = 1;
  500. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_max_1 <= SMALL_VALUE)
  501. sts_d->input_wanning_en[i].freqmax_en = 0;
  502. else
  503. sts_d->input_wanning_en[i].freqmax_en = 1;
  504. if(sts_d->m_data.m_rw.rw_data.md_eep.input_th[i].freq_min_1 <= SMALL_VALUE)
  505. sts_d->input_wanning_en[i].freqmin_en = 0;
  506. else
  507. sts_d->input_wanning_en[i].freqmin_en = 1;
  508. }
  509. *(uint8_t*)(&sts_d ->output_wanning_en) = 0;
  510. if(sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_max_1 <= SMALL_VALUE)
  511. sts_d->output_wanning_en.vmax_en = 0;
  512. else
  513. sts_d->output_wanning_en.vmax_en = 1;
  514. if(sts_d->m_data.m_rw.rw_data.md_eep.output_th.voltage_min_1 <= SMALL_VALUE)
  515. sts_d->output_wanning_en.vmin_en = 0;
  516. else
  517. sts_d->output_wanning_en.vmin_en = 1;
  518. if(sts_d->m_data.m_rw.rw_data.md_eep.output_th.current_max_1 <= SMALL_VALUE)
  519. sts_d->output_wanning_en.imax_en = 0;
  520. else
  521. sts_d->output_wanning_en.imax_en = 1;
  522. if(sts_d->m_data.m_rw.rw_data.md_eep.output_th.power_max_1 <= SMALL_VALUE)
  523. sts_d->output_wanning_en.pmax_en = 0;
  524. else
  525. sts_d->output_wanning_en.pmax_en = 1;
  526. if(sts_d->m_data.m_rw.rw_data.md_eep.output_th.consumer_max_1 <= SMALL_VALUE)
  527. sts_d->output_wanning_en.cmax_en = 0;
  528. else
  529. sts_d->output_wanning_en.cmax_en = 1;
  530. if(sts_d->m_data.m_rw.rw_data.md_eep.temp_th.max_temp > 0x7fff) sts_d->m_data.m_rw.rw_data.md_eep.temp_th.max_temp = 0;
  531. if(sts_d->m_data.m_rw.rw_data.md_eep.temp_th.min_temp > 0x7fff) sts_d->m_data.m_rw.rw_data.md_eep.temp_th.min_temp = 0;
  532. }