Main.c 42 KB

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  1. /*********************************************************************************************************
  2. * 模块名称:Main.c
  3. * 摘 要:主文件,包含软硬件初始化函数和main函数
  4. * 当前版本:1.0.0
  5. * 作 者:anycrying
  6. * 完成日期:2024年04月12日
  7. * 内 容:
  8. * 注 意:注意勾选Options for Target 'Target1'->Code Generation->Use MicroLIB,否则printf无法使用
  9. **********************************************************************************************************
  10. * 取代版本:
  11. * 作 者:
  12. * 完成日期:
  13. * 修改内容:
  14. * 修改文件:
  15. *********************************************************************************************************/
  16. /*********************************************************************************************************
  17. * 包含头文件
  18. *********************************************************************************************************/
  19. #include "Main.h"
  20. //#include "gd32e230x_conf.h"
  21. #include "string.h"
  22. #include "NVIC.h"
  23. #include "SysTick.h"
  24. #include "Rcu.h"
  25. #include "Timer.h"
  26. #include "Led.h"
  27. #include "Key.h"
  28. #include "Relay.h"
  29. #include "Uart1.h"
  30. #include "mb.h"
  31. #include "IM1253E.h"
  32. #include "At24cxx.h"
  33. #include "I2c.h"
  34. #include "ReadEeprom.h"
  35. #include "Sn74hc573.h"
  36. #include "Sn74hc595.h"
  37. #include <stdbool.h>
  38. #include "ADC.h"
  39. #include "Fwdgt.h"
  40. /*********************************************************************************************************
  41. * 宏定义
  42. *********************************************************************************************************/
  43. /*********************************************************************************************************
  44. * 枚举结构体
  45. *********************************************************************************************************/
  46. DCPDU_RELAY_Para_Reg DCPDU_RL_time;
  47. DC_SUM_Para_struct_Reg DCPDU_Input;
  48. DC_Output_struct_Reg DCPDU_Output[RELAY_ChN_default];
  49. /*********************************************************************************************************
  50. * 内部变量定义
  51. *********************************************************************************************************/
  52. static uint8_t channel = 0;
  53. unsigned long int Delay_Ms_1 = 0;
  54. static uint8_t Delay_End_flag = 0;
  55. bool Load_conn_end_flag = false;
  56. bool Init_IM1253E_flag = false;
  57. bool Start_Read_Flag; //开始读取数据标志
  58. bool RL_Allon_flag = false;
  59. bool RL_Alloff_flag = false;
  60. bool Read_IM1253E_flag = false;
  61. bool Fault_stFlag_V = true;
  62. bool Wr_eeprom_begin_flag = false;
  63. bool IM1253E_OK_flag = false;
  64. static uint8_t DCPDU_SlaveAddress = 0x00;
  65. uint8_t cnt = 0;
  66. uint16_t Wr_erom_wait_cnt = 0;
  67. uint8_t Wr_eeprom_cnt = 0;
  68. uint8_t Active_state_bit = 0xff;
  69. uint8_t RL_begin_delay_flag[RELAY_ChN_default] = {0x00};
  70. uint8_t RL_ON_flag[RELAY_ChN_default] = {0x00};
  71. uint8_t RL_OFF_flag[RELAY_ChN_default] = {0x00};
  72. uint8_t RL_end_delay_flag[RELAY_ChN_default] = {0x00};
  73. uint8_t RL_last_state = 0x00;
  74. uint8_t RL_Rx_state = 0x00;
  75. uint8_t DCPDU_active_chn = RELAY_ChN_default;
  76. uint8_t Fault_state_V = 0xff;
  77. uint8_t Fault_state_I = 0;
  78. uint8_t Relay_OnOff_Func = 0;
  79. uint8_t Fault_state_Reg = 0;
  80. uint8_t Fault_state_Last = 0;
  81. float TotalWh[RELAY_ChN_default] ={0.0};
  82. uint8_t read_adc_flag = 0;
  83. uint8_t DCPDU_Vmax_LTen_flag[RELAY_ChN_default] = {0x00};
  84. uint8_t DCPDU_Vmin_LTen_flag[RELAY_ChN_default] = {0x00};
  85. uint8_t DCPDU_Imax_LTen_flag[RELAY_ChN_default] = {0x00};
  86. uint8_t DCPDU_Wmax_LTen_flag[RELAY_ChN_default] = {0x00};
  87. uint8_t DCPDU_kWhmax_LTen_flag[RELAY_ChN_default] = {0x00};
  88. uint8_t DCPDU_OverFunc[RELAY_ChN_default] = {0};
  89. uint8_t DCPDU_All_Over_Func = 0;
  90. uint32_t DC_BASE[4] ={0};
  91. uint8_t RL_Last_state[RELAY_ChN_default] = {0};
  92. uint8_t RL_Now_state[RELAY_ChN_default] = {0};
  93. uint16_t Devid_IDChalNum = 0;//设备类型和通道数
  94. uint16_t adc_data_zero[ADC_CH_N+ADC_V_CHN]= {0};
  95. uint32_t DCPDU_Iout_Zero[RELAY_ChN_default] = {0};
  96. uint32_t DCPDU_Modbus_Reg[DCPDU_Modbus_Reg_len] = {0};
  97. uint32_t DCPDU_Iin_Zero = 0;
  98. uint32_t DCPDU_Win_Zero = 0;
  99. extern bool Rx_Finish_flag;
  100. extern bool adc_data_ok_flag;
  101. extern uint8_t ch_cnt;
  102. extern uint8_t Eeprom_Rbuf[RELAY_para_sum + 1];
  103. extern uint8_t Rx_Data_buff_IM1253E[UART1_BUF_SIZE];
  104. extern uint32_t RL_delay_Limit[RELAY_ChN_default];
  105. extern uint32_t adc_Avg_value[ADC_CH_N+ADC_V_CHN];//存放各通道平均值
  106. extern uint16_t adc_original_value[ADC_CH_N+ADC_V_CHN];
  107. extern uint32_t Modbus_Wr_buff[Mb_Wcmd_Width][Mb_Wcmd_len];
  108. extern uint32_t RL_delay_cnt[RELAY_ChN_default];
  109. /*********************************************************************************************************
  110. * 内部函数声明
  111. *********************************************************************************************************/
  112. static void InitSoftware(void); //初始化软件相关的模块
  113. static void InitHardware(void); //初始化硬件相关的模块
  114. static void CHK_JLINK(void);
  115. static void MODbus_CMD(void);
  116. static void key_io_control();
  117. void LimiT_enable_check(uint8_t ch_x,uint32_t Lt_v);
  118. /*********************************************************************************************************
  119. * 内部函数实现
  120. *********************************************************************************************************/
  121. /*********************************************************************************************************
  122. * 函数名称:InitSoftware
  123. * 函数功能:所有的软件相关的模块初始化函数都放在此函数中
  124. * 输入参数:void
  125. * 输出参数:void
  126. * 返 回 值:void
  127. * 创建日期:2024年04月12日
  128. * 注 意:
  129. *********************************************************************************************************/
  130. static void InitSoftware(void)
  131. {
  132. eMBInit(MB_RTU, DCPDU_SlaveAddress, 0, Uart0_Baud, MB_PAR_NONE); // 初始化modbus为RTU方式,地址RelaySlaveAddress, 波特率Uart0_Baud,无校验
  133. eMBEnable(); // 使能modbus协议栈
  134. }
  135. /*********************************************************************************************************
  136. * 函数名称:InitHardware
  137. * 函数功能:所有的硬件相关的模块初始化函数都放在此函数中
  138. * 输入参数:void
  139. * 输出参数:void
  140. * 返 回 值:void
  141. * 创建日期:2024年04月12日
  142. * 注 意:
  143. *********************************************************************************************************/
  144. static void InitHardware(void)
  145. {
  146. SystemInit(); //系统初始化,函数里面默认是配置为内部晶振
  147. ViewRcuClock(); //在线调试查看系统时钟频率
  148. InitNVIC(); //初始化NVIC模块
  149. InitSysTick(); //初始化SysTick模块
  150. InitLED(); //初始化LED模块
  151. InitKey(); //初始化Key模块
  152. InitRelay(); //初始化Relay模块
  153. Init_74hc573(); //初始化74hc573锁存器
  154. Init_74hc595(); //初始化74hc595
  155. InitTimer(); //初始化Timer模块
  156. #if NO_USE_IM1253E
  157. IoInit();
  158. #else
  159. InitUART1(IM1253E_bd); //初始化UART1模块 电能计量芯片默认的波特率,偶校验
  160. #endif
  161. InitAT24Cxx(); //初始化24C64模块
  162. ReadEeprom();
  163. Init_ADC();
  164. Delay_Ms_1 = 0;
  165. }
  166. static void key_io_control()
  167. {
  168. bool rst = false;
  169. bool test = false;
  170. //
  171. rst = get_rst();
  172. test = get_test();
  173. if(rst != test)
  174. {
  175. if(rst)
  176. {
  177. for(int i = 0; i <RELAY_ChN_default;i++)
  178. {
  179. uint8_t temp0 = 0x01 << i;
  180. Relayx_Onoff_state(i,RELAY_OFF);
  181. temp0 = ~temp0;
  182. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] &= temp0;
  183. }
  184. }else
  185. {
  186. for(int i = 0; i <RELAY_ChN_default;i++)
  187. {
  188. uint8_t temp0 = 0x01 << i;
  189. Relayx_Onoff_state(i,RELAY_ON);
  190. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] |= temp0;
  191. }
  192. }
  193. Eeprom_Rbuf[ERom_RL_ST_Addr] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] & Active_state_bit;
  194. RL_Rx_state = Eeprom_Rbuf[ERom_RL_ST_Addr];
  195. Write_74hc573();
  196. }
  197. }
  198. /*********************************************************************************************************
  199. * 函数名称:CHK_JLINK
  200. * 函数功能:检测JLINK有没有插上
  201. * 输入参数:void
  202. * 输出参数:void
  203. * 返 回 值:void
  204. * 创建日期:2024年08月9日 liyuezong重构
  205. * 注 意:
  206. *********************************************************************************************************/
  207. static void CHK_JLINK(void)
  208. {
  209. uint8_t i = 0;
  210. uint8_t temp0 = 0;
  211. uint8_t temp1 = 0;
  212. uint8_t t_RL_st_old = 0;
  213. uint8_t t_RL_st_new = 0;
  214. #if NO_USE_IM1253E
  215. #else
  216. if(gpio_input_bit_get(CHECK_JLINK_IO,CHECK_JLINK_IN) == 0)//如果有jlink接入,则不会动作继电器,直接跳出进入主函数
  217. #endif
  218. {
  219. //1 pan duan shi fou you qing qiu
  220. temp1 = Eeprom_Rbuf[ERom_RL_ST_Addr] ^ RL_Rx_state;
  221. if(temp1 > 0)
  222. {
  223. if(RL_Allon_flag || RL_Alloff_flag)
  224. {
  225. for(i = 0;i < DCPDU_RL_time.RL_chn;i++)//所有状态清零
  226. {
  227. RL_begin_delay_flag[i] = 0;
  228. RL_end_delay_flag[i] = 0;
  229. RL_delay_Limit[i] = 0;
  230. RL_ON_flag[i] = 0;
  231. RL_OFF_flag[i] = 0;
  232. }
  233. }
  234. for(i = 0;i < DCPDU_RL_time.RL_chn;i++)
  235. {
  236. t_RL_st_old = Eeprom_Rbuf[ERom_RL_ST_Addr] >> i;
  237. t_RL_st_old = t_RL_st_old & 0x01;
  238. t_RL_st_new = RL_Rx_state >> i;
  239. t_RL_st_new = t_RL_st_new & 0x01;
  240. if(t_RL_st_old > t_RL_st_new)//off
  241. {
  242. RL_OFF_flag[i] = 1;
  243. if(RL_Alloff_flag)
  244. {
  245. RL_begin_delay_flag[i] = 1;
  246. RL_delay_Limit[i] = DCPDU_RL_time.RL_offtime[i] * 1000;//秒转成毫秒;
  247. }
  248. else
  249. {
  250. RL_end_delay_flag[i] = 1;
  251. }
  252. }
  253. else if(t_RL_st_old < t_RL_st_new)//on
  254. {
  255. RL_ON_flag[i] = 1;
  256. if(RL_Allon_flag)
  257. {
  258. RL_delay_Limit[i] = DCPDU_RL_time.RL_ontime[i] * 1000;//秒转成毫秒
  259. RL_begin_delay_flag[i] = 1;
  260. }
  261. else
  262. {
  263. RL_end_delay_flag[i] = 1;
  264. }
  265. }
  266. }
  267. RL_Alloff_flag = false;
  268. RL_Allon_flag = false;
  269. }
  270. else
  271. {
  272. if(RL_Allon_flag || RL_Alloff_flag)
  273. {
  274. RL_Allon_flag = false;
  275. RL_Alloff_flag = false;
  276. for(i = 0;i < DCPDU_RL_time.RL_chn;i++)//所有状态清零
  277. {
  278. RL_begin_delay_flag[i] = 0;
  279. RL_end_delay_flag[i] = 0;
  280. RL_delay_Limit[i] = 0;
  281. RL_ON_flag[i] = 0;
  282. RL_OFF_flag[i] = 0;
  283. }
  284. }
  285. }
  286. for(i = 0;i < DCPDU_RL_time.RL_chn;i++)
  287. {
  288. if(RL_end_delay_flag[i] > 0)
  289. {
  290. RL_delay_Limit[i] = 0;
  291. RL_begin_delay_flag[i] = 0;
  292. RL_end_delay_flag[i] = 0;
  293. temp0 = 0x01 << i;
  294. if(RL_ON_flag[i] > 0)
  295. {
  296. Relayx_Onoff_state(i,RELAY_ON);
  297. RL_ON_flag[i] = 0;
  298. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] |= temp0;
  299. }
  300. else if(RL_OFF_flag[i] > 0)
  301. {
  302. Relayx_Onoff_state(i,RELAY_OFF);
  303. RL_OFF_flag[i] = 0;
  304. temp0 = ~temp0;
  305. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] &= temp0;
  306. }
  307. Eeprom_Rbuf[ERom_RL_ST_Addr] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] & Active_state_bit;
  308. AT24CxxWriteOneByte(ERom_RL_ST_Addr,Eeprom_Rbuf[ERom_RL_ST_Addr]);
  309. Write_74hc573();
  310. }
  311. }
  312. Load_conn_end_flag = true;
  313. }
  314. RL_Rx_state = Eeprom_Rbuf[ERom_RL_ST_Addr];
  315. }
  316. /*********************************************************************************************************
  317. * 函数名称:fault_state_process
  318. * 函数功能:check channel worning and openration func
  319. * 输入参数:uint8_t
  320. * 输出参数:void
  321. * 返 回 值:void
  322. * 创建日期:2024年04月12日
  323. * 注 意:
  324. *********************************************************************************************************/
  325. static void fault_state_process(uint8_t chn)
  326. {
  327. uint32_t temp0 = 4 * chn;
  328. if(DCPDU_Vmax_LTen_flag[chn])
  329. {
  330. if(DCPDU_Modbus_Reg[Mb_Dbuff_P1Output_Addr + temp0] > DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_max_Addr+chn])
  331. {
  332. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] |= DCPDU_Vmax_Fault;
  333. if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + chn] & (DCPDU_Over_V_Max_Func_enable))
  334. {
  335. DCPDU_OverFunc[chn] = 1;
  336. }
  337. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  338. }else
  339. {
  340. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Vmax_NFault;
  341. }
  342. }else
  343. {
  344. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Vmax_NFault;
  345. }
  346. if(DCPDU_Vmin_LTen_flag[chn])
  347. {
  348. if(DCPDU_Modbus_Reg[Mb_Dbuff_P1Output_Addr + temp0] < DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_min_Addr+chn])
  349. {
  350. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] |= DCPDU_Vmin_Fault;
  351. if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + chn] &(DCPDU_Over_V_Min_Func_enable))
  352. {
  353. DCPDU_OverFunc[chn] = 1;
  354. }
  355. }else
  356. {
  357. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Vmin_NFault;
  358. }
  359. }else
  360. {
  361. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Vmin_NFault;
  362. }
  363. if(DCPDU_Imax_LTen_flag[chn])
  364. {
  365. if(DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 1] > DCPDU_Modbus_Reg[Mb_Dbuff_ILit1_max_Addr+chn])
  366. {
  367. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] |= DCPDU_Imax_Fault;
  368. if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + chn] & (DCPDU_Over_I_Max_Func_enable))
  369. {
  370. DCPDU_OverFunc[chn] = 1;
  371. }
  372. }else {
  373. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Imax_NFault;
  374. }
  375. }else{
  376. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Imax_NFault;
  377. }
  378. if(DCPDU_Wmax_LTen_flag[chn])
  379. {
  380. if(DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 2] > DCPDU_Modbus_Reg[Mb_Dbuff_WLit1_max_Addr+chn])
  381. {
  382. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] |= DCPDU_Wmax_Fault;
  383. if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + chn]&(DCPDU_Over_P_Max_Func_enable))
  384. {
  385. DCPDU_OverFunc[chn] = 1;
  386. }
  387. }else
  388. {
  389. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Wmax_NFault;
  390. }
  391. }else
  392. {
  393. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_Wmax_NFault;
  394. }
  395. if(DCPDU_kWhmax_LTen_flag[chn])
  396. {
  397. if(DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] > DCPDU_Modbus_Reg[Mb_Dbuff_kWhLit1_max_Addr+chn])
  398. {
  399. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] |= DCPDU_kWhmax_Fault;
  400. if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + chn] & (DCPDU_Over_C_Max_Func_enable))
  401. {
  402. DCPDU_OverFunc[chn] = 1;
  403. }
  404. }else
  405. {
  406. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_kWhmax_NFault;
  407. }
  408. }else
  409. {
  410. DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + chn] &= DCPDU_kWhmax_NFault;
  411. }
  412. }
  413. static void RL_Over_Func()
  414. {
  415. if(DCPDU_All_Over_Func)
  416. {
  417. for(int i = 0; i <RELAY_ChN_default;i++)
  418. {
  419. uint8_t temp0 = 0x01 << i;
  420. Relayx_Onoff_state(i,RELAY_OFF);
  421. temp0 = ~temp0;
  422. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] &= temp0;
  423. }
  424. Eeprom_Rbuf[ERom_RL_ST_Addr] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] & Active_state_bit;
  425. RL_Rx_state = Eeprom_Rbuf[ERom_RL_ST_Addr];
  426. Write_74hc573();
  427. DCPDU_All_Over_Func = 0;
  428. return;
  429. }
  430. for(int i = 0; i <RELAY_ChN_default;i++)
  431. {
  432. if(DCPDU_OverFunc[i])
  433. {
  434. uint8_t temp0 = 0x01 << i;
  435. Relayx_Onoff_state(i,RELAY_OFF);
  436. temp0 = ~temp0;
  437. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] &= temp0;
  438. //E
  439. //AT24CxxWriteOneByte(ERom_RL_ST_Addr,Eeprom_Rbuf[ERom_RL_ST_Addr]);
  440. DCPDU_OverFunc[i] = 0;
  441. }
  442. }
  443. Eeprom_Rbuf[ERom_RL_ST_Addr] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr] & Active_state_bit;
  444. RL_Rx_state = Eeprom_Rbuf[ERom_RL_ST_Addr];
  445. Write_74hc573();
  446. }
  447. static void fault_all_state_process(void)
  448. {
  449. //Voltage max
  450. if(DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] & Shield_Vmax_Threshould_Enable)
  451. {
  452. if(DC_BASE[0] > DCPDU_Modbus_Reg[Mb_Dbuff_Thr_All_V_Max])
  453. {
  454. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] |= DCPDU_Vmax_Fault;
  455. if(DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] & (DCPDU_Over_V_Max_Func_enable))
  456. {
  457. DCPDU_All_Over_Func = 1;
  458. }
  459. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  460. }else
  461. {
  462. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] &= DCPDU_Vmax_NFault;
  463. }
  464. }
  465. //Voltage min
  466. if(DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] & Shield_Vmin_Threshould_Enable)
  467. {
  468. if(DC_BASE[0] < DCPDU_Modbus_Reg[Mb_Dbuff_Thr_All_V_Min])
  469. {
  470. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] |= DCPDU_Vmin_Fault;
  471. if(DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] & (DCPDU_Over_V_Min_Func_enable))
  472. {
  473. DCPDU_All_Over_Func = 1;
  474. }
  475. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  476. }else
  477. {
  478. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] &= DCPDU_Vmin_NFault;
  479. }
  480. }
  481. // Current max
  482. if(DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] & Shield_Imax_Threshould_Enable)
  483. {
  484. if(DC_BASE[1] > DCPDU_Modbus_Reg[Mb_Dbuff_Thr_All_I_Max])
  485. {
  486. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] |= DCPDU_Imax_Fault;
  487. if(DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] & (DCPDU_Over_I_Max_Func_enable))
  488. {
  489. DCPDU_All_Over_Func = 1;
  490. }
  491. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  492. }else
  493. {
  494. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] &= DCPDU_Imax_NFault;
  495. }
  496. }
  497. //Power max
  498. if(DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] & Shield_Wmax_Threshould_Enable)
  499. {
  500. if(DC_BASE[2] > DCPDU_Modbus_Reg[Mb_Dbuff_Thr_All_P_Max])
  501. {
  502. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] |= DCPDU_Wmax_Fault;
  503. if(DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] & (DCPDU_Over_P_Max_Func_enable))
  504. {
  505. DCPDU_All_Over_Func = 1;
  506. }
  507. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  508. }else
  509. {
  510. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] &= DCPDU_Wmax_NFault;
  511. }
  512. }
  513. //Consumer max
  514. if(DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] & Shield_kWhmax_Threshould_Enable)
  515. {
  516. if(DC_BASE[3] > DCPDU_Modbus_Reg[Mb_Dbuff_Thr_All_C_Max])
  517. {
  518. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] |= DCPDU_kWhmax_Fault;
  519. if(DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] & (DCPDU_Over_C_Max_Func_enable))
  520. {
  521. DCPDU_All_Over_Func = 1;
  522. }
  523. //DCPDU_Modbus_Reg[Mb_Dbuff_CH1FT_ST_Addr + i] |= DCPDU_Vmin_NFault;
  524. }else
  525. {
  526. DCPDU_Modbus_Reg[Mb_Dbuff_ALLFT_ST_Addr] &= DCPDU_kWhmax_NFault;
  527. }
  528. }
  529. }
  530. /*********************************************************************************************************
  531. * 函数名称:main
  532. * 函数功能:主函数
  533. * 输入参数:void
  534. * 输出参数:void
  535. * 返 回 值:int
  536. * 创建日期:2024年04月12日
  537. * 注 意:
  538. *********************************************************************************************************/
  539. int main(void)
  540. {
  541. uint8_t i = 0;
  542. uint8_t j = 0;
  543. uint32_t temp0 = 0;
  544. uint32_t temp_v = 0;
  545. uint32_t temp_i = 0;
  546. uint32_t temp_p = 0;
  547. uint8_t temp1 = 0;
  548. uint8_t temp2 = 0;
  549. uint32_t temp_da[8] = {0};
  550. float temp_w = 0.0;
  551. cnt = 0;
  552. Wr_eeprom_cnt = 0;
  553. Wr_erom_wait_cnt = 0;
  554. Active_state_bit = 0xff;
  555. for(i = 0;i < RELAY_ChN_default;i++)
  556. {
  557. RL_begin_delay_flag[i] = 0;
  558. RL_end_delay_flag[i] = 0;
  559. TotalWh[i] = 0.0;
  560. }
  561. InitHardware();//初始化硬件相关函数
  562. DCPDU_SlaveAddress = ReadKeyValue();//读取从机的地址
  563. InitSoftware();//初始化软件相关函数
  564. Devid_IDChalNum = DCPDU_Device_ID;
  565. Devid_IDChalNum = Devid_IDChalNum << 8;
  566. Devid_IDChalNum += DCPDU_active_chn;
  567. DCPDU_Modbus_Reg[Mb_Dbuff_DevAddr] = Devid_IDChalNum;//设备型号和通道数
  568. DCPDU_RL_time.RL_chn = DCPDU_active_chn;
  569. Active_state_bit = 0xff >> (8 - DCPDU_active_chn);
  570. for(i = 0;i < RELAY_ChN_default;i++)
  571. {
  572. DCPDU_RL_time.RL_ontime[i] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_Ton1_Addr + i];
  573. DCPDU_RL_time.RL_offtime[i] = DCPDU_Modbus_Reg[Mb_Dbuff_RL_Toff1_Addr + i];
  574. }
  575. gpio_bit_reset(LOCK_74hc573_IO, LOCK_74hc573_OE);
  576. Init_Dev_parameter();
  577. RL_Rx_state = Eeprom_Rbuf[ERom_RL_ST_Addr]& Active_state_bit;
  578. RL_Allon_flag = true;
  579. Eeprom_Rbuf[ERom_RL_ST_Addr]= 0 ;
  580. DCPDU_Modbus_Reg[Mb_Dbuff_RL_ST_Addr]=0;
  581. RL_last_state = 0;
  582. Fault_state_V = Fault_state_V & Active_state_bit;
  583. Fault_display(Fault_state_V);
  584. Fault_state_Last = Fault_state_V;
  585. for(i = 0;i < DCPDU_active_chn;i++)
  586. {
  587. temp0 = 4*i;
  588. TotalWh[i] = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3];//耗电量初始化
  589. }
  590. for(i = 0;i < RELAY_ChN_default;i++)
  591. {
  592. LimiT_enable_check(i,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr+i]);
  593. }
  594. Fwdgt_Init();
  595. while(1)
  596. {
  597. CHK_JLINK();
  598. Fwdgt_reload();
  599. eMBPoll();
  600. #if NO_USE_IM1253E
  601. key_io_control();
  602. #else
  603. if(Read_IM1253E_flag)//定时读1253
  604. {
  605. Read_IM1253E_flag = false;
  606. if(IM1253E_OK_flag)
  607. {
  608. Read_IM1253E_REG(Device_addr_IM1253E,V_REG_ADDR,8);
  609. }
  610. }
  611. if(Rx_Finish_flag)//从1253读到数,进行处理
  612. {
  613. Rx_Finish_flag = false;
  614. for(j = 0;j < 8;j++)
  615. {
  616. temp_da[j] = 0;
  617. for(i = 0;i < 4;i++)
  618. {
  619. temp1 = 8 * i;
  620. temp1 = 24 - temp1;
  621. temp2 = 4 * j;
  622. temp2 += 3;
  623. temp2 += i;
  624. temp0 = Rx_Data_buff_IM1253E[temp2] << temp1;
  625. temp_da[j] += temp0;
  626. }
  627. }
  628. DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] = temp_da[0] / 100;//输入电压
  629. DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] *= 10;//去掉第3位小数
  630. DC_BASE[0] = DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr];
  631. for(i = 0;i < RELAY_ChN_default;i++)
  632. {
  633. temp0 = 4 * i;
  634. DCPDU_Modbus_Reg[Mb_Dbuff_P1Output_Addr + temp0] = DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr];//输出电压
  635. temp2 = 0x01 << i;
  636. if(DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] > DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_max_Addr + i])
  637. {
  638. Fault_state_V |= temp2;
  639. // if(DCPDU_Modbus_Reg[Mb_Dbuff_RL_Over_Ch1_Func + i] & DCPDU_Over_V_Max_Func_enable)
  640. // {
  641. // Relay_OnOff_Func |= temp2;
  642. // }
  643. //if(Relayx_Onoff_state[])
  644. }
  645. else
  646. {
  647. if((Fault_state_V & temp2) > 0)
  648. {
  649. temp1 = ~temp2;
  650. Fault_state_V &= temp1;
  651. }
  652. }
  653. }
  654. DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] = temp_da[1] / 100;
  655. DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] *= 10;//去掉第3位小数
  656. if(DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] > DCPDU_Iin_Zero)
  657. {
  658. DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] -= DCPDU_Iin_Zero;
  659. }
  660. else
  661. {
  662. DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] = 0;
  663. }
  664. DC_BASE[1] = DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr];
  665. DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] = temp_da[2] / 100;
  666. DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] *= 10;//去掉第3位小数
  667. if(DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] > DCPDU_Win_Zero)
  668. {
  669. DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] -= DCPDU_Win_Zero;
  670. }
  671. else
  672. {
  673. DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] = 0;
  674. }
  675. DC_BASE[2] = DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr];
  676. DCPDU_Modbus_Reg[Mb_Dbuff_KWhInput_Addr] = temp_da[3] / 100;
  677. DCPDU_Modbus_Reg[Mb_Dbuff_KWhInput_Addr] *= 10;//去掉第3位小数
  678. DC_BASE[3] = DCPDU_Modbus_Reg[Mb_Dbuff_KWhInput_Addr];
  679. //jugement consumer !!!!
  680. }
  681. #endif
  682. if(read_adc_flag == 1)
  683. {
  684. read_adc_val();
  685. read_adc_flag = 0;
  686. }
  687. if(Get1SecFlag()) //判断1s标志状态
  688. {
  689. LEDFlicker2();
  690. Clr1SecFlag(); //清除1s标志
  691. //read_adc_val();//定时读取ADC的数据
  692. //输出耗电量计算。累计。
  693. #if NO_USE_IM1253E
  694. uint32_t kWh_in = 0;
  695. #endif
  696. for(i = 0;i < DCPDU_active_chn;i++)
  697. {
  698. temp0 = 4*i;
  699. temp_w = (float)DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 2];
  700. temp_w = temp_w / 1000.0;//转换成W,原功率是扩大了1000倍的
  701. temp_w = temp_w / 3600.0;//转换成每秒的Wh,
  702. //temp_w = temp_w / 1000.0;//转换成每秒的kWh
  703. //temp_w = temp_w * 1000.0;//扩大1000倍上传
  704. TotalWh[i] = temp_w + TotalWh[i];//累计电量,初值为0
  705. DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] = (uint32_t)TotalWh[i];
  706. #if NO_USE_IM1253E
  707. kWh_in += DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3];
  708. #endif
  709. if(DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] > 0xfffffffe)
  710. {
  711. TotalWh[i] = 0.0;
  712. DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3]=(uint32_t)TotalWh[i];
  713. }
  714. //将耗电量实时写入Eeprom
  715. Eeprom_Rbuf[ERom_TotalWh1_Addr + temp0] = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] >> 24;
  716. Eeprom_Rbuf[ERom_TotalWh1_Addr + temp0 + 1] = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] >> 16;
  717. Eeprom_Rbuf[ERom_TotalWh1_Addr + temp0 + 2] = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3] >> 8;
  718. Eeprom_Rbuf[ERom_TotalWh1_Addr + temp0 + 3] = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 3];
  719. AT24CxxWrite(ERom_TotalWh1_Addr + temp0,(Eeprom_Rbuf + ERom_TotalWh1_Addr + temp0),4);
  720. }
  721. #if NO_USE_IM1253E
  722. DCPDU_Modbus_Reg[Mb_Dbuff_KWhInput_Addr] = kWh_in;
  723. DC_BASE[3] = DCPDU_Modbus_Reg[Mb_Dbuff_KWhInput_Addr];
  724. #endif
  725. for(i = 0;i < DCPDU_active_chn;i++)
  726. {
  727. fault_state_process(i);
  728. }
  729. fault_all_state_process();
  730. }
  731. if(adc_data_ok_flag)//读到ADC数据,然后进行处理。
  732. {
  733. adc_data_ok_flag = false;
  734. //read voltage
  735. #if NO_USE_IM1253E
  736. uint32_t I_in = 0;
  737. uint32_t W_in = 0;
  738. DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] = DC_V_calfunction(adc_Avg_value[ADC_VOL]);
  739. DC_BASE[0] = DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr];
  740. adc_Avg_value[ADC_VOL] = 0;
  741. #endif
  742. //for(i = 0;i < ADC_CH_N;i++)
  743. for(i = 0;i < DCPDU_active_chn;i++)
  744. {
  745. temp0 = 4*i;
  746. #if NO_USE_IM1253E
  747. DCPDU_Modbus_Reg[Mb_Dbuff_P1Output_Addr + temp0] = DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr];
  748. if(DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] > DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_max_Addr + i])
  749. {
  750. Fault_state_V |= temp2;
  751. }else
  752. {
  753. if((Fault_state_V & temp2) > 0)
  754. {
  755. temp1 = ~temp2;
  756. Fault_state_V &= temp1;
  757. }
  758. }
  759. #endif
  760. DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 1] = DC_I_calfunction(adc_Avg_value[i]);//输出电流
  761. if(Load_conn_end_flag)//负载加载以后再检测电流
  762. {
  763. temp2 = 0x01 << i;
  764. #if NO_USE_IM1253E
  765. I_in += DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 1];
  766. #endif
  767. if(DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 1] > DCPDU_Modbus_Reg[Mb_Dbuff_ILit1_max_Addr + i])
  768. {
  769. Fault_state_I |= temp2;
  770. }
  771. else
  772. {
  773. if((Fault_state_I & temp2) > 0)
  774. {
  775. temp1 = ~temp2;
  776. Fault_state_I &= temp1;
  777. }
  778. }
  779. }
  780. //计算功率//
  781. temp_v =DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr] / 10;
  782. temp_i = DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 1] / 10;
  783. temp_p = temp_v * temp_i;
  784. DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 2] = temp_p / 10;
  785. #if NO_USE_IM1253E
  786. W_in += DCPDU_Modbus_Reg[temp0 + Mb_Dbuff_P1Output_Addr + 2];
  787. #endif
  788. adc_Avg_value[i] = 0;
  789. }
  790. Fault_state_Reg = Fault_state_V | Fault_state_I;
  791. #if NO_USE_IM1253E
  792. DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr] = I_in;
  793. DC_BASE[1] = DCPDU_Modbus_Reg[Mb_Dbuff_IInput_Addr];
  794. DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr] = W_in;
  795. DC_BASE[2] = DCPDU_Modbus_Reg[Mb_Dbuff_WInput_Addr];
  796. #endif
  797. }
  798. if(Fault_state_Reg > 0)//故障或超阈值处理
  799. {
  800. if(Fault_state_Reg != Fault_state_Last)
  801. {
  802. Fault_display(Fault_state_Reg);
  803. Fault_state_Last = Fault_state_Reg;
  804. }
  805. }
  806. else
  807. {
  808. }
  809. RL_Over_Func();
  810. MODbus_CMD();//MODBUS命令池处理。
  811. }
  812. }
  813. void LimiT_enable_check(uint8_t ch_x,uint32_t Lt_v)
  814. {
  815. if((Lt_v & DCPDU_Vmax_LT_enable) == DCPDU_Vmax_LT_enable)
  816. {
  817. DCPDU_Vmax_LTen_flag[ch_x] = 1;
  818. }else
  819. {
  820. DCPDU_Vmax_LTen_flag[ch_x] = 0;
  821. }
  822. if((Lt_v & DCPDU_Vmin_LT_enable) == DCPDU_Vmin_LT_enable)
  823. {
  824. DCPDU_Vmin_LTen_flag[ch_x] = 1;
  825. }else
  826. {
  827. DCPDU_Vmin_LTen_flag[ch_x] = 0;
  828. }
  829. if((Lt_v & DCPDU_Imax_LT_enable) == DCPDU_Imax_LT_enable)
  830. {
  831. DCPDU_Imax_LTen_flag[ch_x] = 1;
  832. }else
  833. {
  834. DCPDU_Imax_LTen_flag[ch_x] = 0;
  835. }
  836. if((Lt_v & DCPDU_Wmax_LT_enable) == DCPDU_Wmax_LT_enable)
  837. {
  838. DCPDU_Wmax_LTen_flag[ch_x] = 1;
  839. }else
  840. {
  841. DCPDU_Wmax_LTen_flag[ch_x] = 0;
  842. }
  843. if((Lt_v & DCPDU_kWhmax_LT_enable) == DCPDU_kWhmax_LT_enable)
  844. {
  845. DCPDU_kWhmax_LTen_flag[ch_x] = 1;
  846. }else
  847. {
  848. DCPDU_kWhmax_LTen_flag[ch_x] = 0;
  849. }
  850. }
  851. /*********************************************************************************************************
  852. * 函数名称:MODbus_CMD
  853. * 函数功能:modbus命令池处理
  854. * 输入参数:void
  855. * 输出参数:void
  856. * 返 回 值:void
  857. * 创建日期:2024年04月06日
  858. * 注 意:
  859. *********************************************************************************************************/
  860. void MODbus_CMD(void)
  861. {
  862. if(Modbus_Wr_buff[Wr_eeprom_cnt][0] > 0)
  863. {
  864. static uint8_t temp_data[4];
  865. static uint32_t temp_addr;
  866. uint32_t data = 0;
  867. uint8_t index = 0;
  868. if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_VLit1_min_Addr)//设置电压最大阈值
  869. {
  870. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_VLit1_max_Addr;
  871. index = temp_addr;
  872. temp_addr = temp_addr << 2;
  873. temp_addr += ERom_VLit1_max_Addr;
  874. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  875. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  876. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  877. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  878. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  879. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  880. {
  881. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] &= (Shield_Vmax_Threshould_Disable);
  882. }else
  883. {
  884. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] |= (Shield_Vmax_Threshould_Enable);
  885. }
  886. LimiT_enable_check(index,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index]);
  887. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  888. }
  889. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_ILit1_max_Addr)//设置电压最小阈值
  890. {
  891. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_VLit1_min_Addr;
  892. index = temp_addr;
  893. temp_addr = temp_addr << 2;
  894. temp_addr += ERom_VLit1_min_Addr;
  895. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  896. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  897. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  898. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  899. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  900. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  901. {
  902. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] &= (Shield_Vmin_Threshould_Disable);
  903. }else
  904. {
  905. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] |= (Shield_Vmin_Threshould_Enable);
  906. }
  907. LimiT_enable_check(index,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index]);
  908. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  909. }
  910. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_ILit1_min_Addr)//设置电流最大阈值
  911. {
  912. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_ILit1_max_Addr;
  913. index = temp_addr;
  914. temp_addr = temp_addr << 2;
  915. temp_addr += ERom_ILit1_max_Addr;
  916. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  917. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  918. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  919. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  920. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  921. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  922. {
  923. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] &= (Shield_Imax_Threshould_Disable);
  924. }else
  925. {
  926. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] |= (Shield_Imax_Threshould_Enable);
  927. }
  928. LimiT_enable_check(index,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index]);
  929. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  930. }
  931. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_RL_ST_Addr)//设置电流最小阈值
  932. {
  933. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_ILit1_min_Addr;
  934. temp_addr = temp_addr << 2;
  935. temp_addr += ERom_ILit1_min_Addr;
  936. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  937. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  938. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  939. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  940. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  941. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  942. }
  943. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_RL_ST_Addr)//设置继电器状态
  944. {
  945. RL_Rx_state = Modbus_Wr_buff[Wr_eeprom_cnt][2] & Active_state_bit;
  946. Eeprom_Rbuf[ERom_RL_ST_Addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] & Active_state_bit;
  947. //AT24CxxWriteOneByte(ERom_RL_ST_Addr,Eeprom_Rbuf[ERom_RL_ST_Addr]);
  948. }
  949. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_RL_Allon_Addr)//设置继电器全开
  950. {
  951. RL_Rx_state = 0xff & Active_state_bit;
  952. RL_Allon_flag = true;
  953. //Eeprom_Rbuf[ERom_RL_ST_Addr] = 0xff & Active_state_bit;
  954. //AT24CxxWriteOneByte(ERom_RL_ST_Addr,Eeprom_Rbuf[ERom_RL_ST_Addr]);
  955. }
  956. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_RL_Alloff_Addr)//设置继电器全关
  957. {
  958. RL_Rx_state = 0x00;
  959. RL_Alloff_flag = true;
  960. //Eeprom_Rbuf[ERom_RL_ST_Addr] = 0x00;
  961. //AT24CxxWriteOneByte(ERom_RL_ST_Addr,Eeprom_Rbuf[ERom_RL_ST_Addr]);
  962. }
  963. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_RLft_ST_Addr)//设置故障状态
  964. {
  965. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RLft_ST_Addr;
  966. temp_addr += ERom_RLft_ST_Addr;
  967. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] & Active_state_bit;
  968. }
  969. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_RL_Toff1_Addr)//设置开启延时
  970. {
  971. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RL_Ton1_Addr;
  972. temp_addr += ERom_RL_Ton1_Addr;
  973. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  974. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Eeprom_Rbuf[temp_addr];
  975. DCPDU_RL_time.RL_ontime[Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RL_Ton1_Addr] = Eeprom_Rbuf[temp_addr];
  976. AT24CxxWriteOneByte(temp_addr,Eeprom_Rbuf[temp_addr]);
  977. }
  978. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_RL_Allon_Addr)//设置继电器关断延时
  979. {
  980. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RL_Toff1_Addr;
  981. temp_addr += ERom_RL_Toff1_Addr;
  982. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  983. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Eeprom_Rbuf[temp_addr];
  984. DCPDU_RL_time.RL_offtime[Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RL_Toff1_Addr] = Eeprom_Rbuf[temp_addr];
  985. AT24CxxWriteOneByte(temp_addr,Eeprom_Rbuf[temp_addr]);
  986. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] <= Mb_Dbuff_WLit8_max_Addr) //power
  987. {
  988. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_WLit1_max_Addr;
  989. index = temp_addr;
  990. temp_addr = temp_addr << 2;
  991. temp_addr += ERom_WLit1_max_Addr;
  992. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  993. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  994. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  995. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  996. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  997. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  998. {
  999. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] &= (Shield_Wmax_Threshould_Disable);
  1000. }else
  1001. {
  1002. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] |= (Shield_Wmax_Threshould_Enable);
  1003. }
  1004. LimiT_enable_check(index,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index]);
  1005. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  1006. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] <= Mb_Dbuff_kWhLit8_max_Addr) //consumer
  1007. {
  1008. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_kWhLit1_max_Addr;
  1009. index = temp_addr;
  1010. temp_addr = temp_addr << 2;
  1011. temp_addr += ERom_kWhLit1_max_Addr;
  1012. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  1013. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  1014. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  1015. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1016. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1017. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1018. {
  1019. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] &= (Shield_Kwhmax_Threshould_Disable);
  1020. }else
  1021. {
  1022. DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index] |= (Shield_kWhmax_Threshould_Enable);
  1023. }
  1024. LimiT_enable_check(index,DCPDU_Modbus_Reg[Mb_Dbuff_CH1ST_FT_Addr + index]);
  1025. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  1026. }
  1027. else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] <= Mb_Dbuff_RL_Over_Ch8_Func) //over func
  1028. {
  1029. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_RL_Over_Ch1_Func;
  1030. temp_addr += ERom_RL_Over_Func_Ch1;
  1031. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1032. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Eeprom_Rbuf[temp_addr];
  1033. AT24CxxWriteOneByte(temp_addr,Eeprom_Rbuf[temp_addr]);
  1034. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] < Mb_Dbuff_Clear_Consumer_ALL)
  1035. {
  1036. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_Clear_Consumer_Ch1;
  1037. TotalWh[temp_addr] = 0.0;
  1038. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_Clear_Consumer_ALL)
  1039. {
  1040. for(int i = 0; i < RELAY_ChN_default;i++)
  1041. {
  1042. TotalWh[temp_addr] = 0.0;
  1043. }
  1044. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] <= Mb_Dbuff_Thr_All_C_Max)
  1045. {
  1046. temp_addr = Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_Thr_All_V_Max;
  1047. temp_addr = temp_addr << 2;
  1048. temp_addr += ERom_All_Thr_V_Max_Addr;
  1049. Eeprom_Rbuf[temp_addr] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 24;
  1050. Eeprom_Rbuf[temp_addr + 1] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 16;
  1051. Eeprom_Rbuf[temp_addr + 2] = Modbus_Wr_buff[Wr_eeprom_cnt][2] >> 8;
  1052. Eeprom_Rbuf[temp_addr + 3] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1053. DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1054. AT24CxxWrite(temp_addr,(Eeprom_Rbuf + temp_addr),4);
  1055. switch(Modbus_Wr_buff[Wr_eeprom_cnt][1] - Mb_Dbuff_Thr_All_V_Max)
  1056. {
  1057. case 0:
  1058. {
  1059. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1060. {
  1061. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] &= (Shield_Vmax_Threshould_Disable);
  1062. }else
  1063. {
  1064. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] |= (Shield_Vmax_Threshould_Enable);
  1065. }
  1066. }
  1067. break;
  1068. case 1:
  1069. {
  1070. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1071. {
  1072. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] &= (Shield_Vmin_Threshould_Disable);
  1073. }else
  1074. {
  1075. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] |= (Shield_Vmin_Threshould_Enable);
  1076. }
  1077. }
  1078. break;
  1079. case 2:
  1080. {
  1081. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1082. {
  1083. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] &= (Shield_Imax_Threshould_Disable);
  1084. }else
  1085. {
  1086. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] |= (Shield_Imax_Threshould_Enable);
  1087. }
  1088. }
  1089. break;
  1090. case 3:
  1091. {
  1092. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1093. {
  1094. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] &= (Shield_Wmax_Threshould_Disable);
  1095. }else
  1096. {
  1097. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] |= (Shield_Wmax_Threshould_Enable);
  1098. }
  1099. }
  1100. break;
  1101. case 4:
  1102. {
  1103. if(DCPDU_Modbus_Reg[Modbus_Wr_buff[Wr_eeprom_cnt][1]] < THRESHOULD_JUDGMENT)
  1104. {
  1105. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] &= (Shield_Kwhmax_Threshould_Disable);
  1106. }else
  1107. {
  1108. DCPDU_Modbus_Reg[Mb_Dbuff_ALL_ST_FT_Addr] |= (Shield_kWhmax_Threshould_Enable);
  1109. }
  1110. }
  1111. break;
  1112. }
  1113. }else if(Modbus_Wr_buff[Wr_eeprom_cnt][1] == Mb_Dbuff_Over_All_Func)
  1114. {
  1115. Eeprom_Rbuf[Mb_Dbuff_Over_All_Func] = Modbus_Wr_buff[Wr_eeprom_cnt][2];
  1116. AT24CxxWriteOneByte(Mb_Dbuff_Over_All_Func,Eeprom_Rbuf[Mb_Dbuff_Over_All_Func]);
  1117. DCPDU_Modbus_Reg[Mb_Dbuff_Over_All_Func] = Eeprom_Rbuf[Mb_Dbuff_Over_All_Func];
  1118. }
  1119. Modbus_Wr_buff[Wr_eeprom_cnt][0] = 0;
  1120. Wr_eeprom_begin_flag = true;
  1121. }
  1122. Wr_eeprom_cnt++;
  1123. if(Wr_eeprom_cnt >= Mb_Wcmd_Width)
  1124. {
  1125. Wr_eeprom_cnt = 0;
  1126. }
  1127. }
  1128. /*********************************************************************************************************
  1129. * 函数名称:Init_Dev_parameter
  1130. * 函数功能:初始化模块内部参数
  1131. * 输入参数:void
  1132. * 输出参数:void
  1133. * 返 回 值:void
  1134. * 创建日期:2024年04月06日
  1135. * 注 意:
  1136. *********************************************************************************************************/
  1137. void Init_Dev_parameter(void)
  1138. {
  1139. uint8_t i = 0;
  1140. uint8_t j = 0;
  1141. uint8_t temp1 = 0;
  1142. uint8_t temp2 = 0;
  1143. uint32_t temp0 = 0;
  1144. uint32_t temp_da[8] = {0};
  1145. while(!dma_flag_get(DMA_CH0,DMA_FLAG_FTF));
  1146. dma_flag_clear(DMA_CH0,DMA_FLAG_FTF);
  1147. for(i = 0;i < 8;i++)
  1148. {
  1149. adc_data_zero[i] = adc_original_value[i];
  1150. }
  1151. #if NO_USE_IM1253E
  1152. adc_data_zero[ADC_VOL] = adc_original_value[ADC_VOL] = 0x01;
  1153. #else
  1154. Init_IM1253E_flag = true;
  1155. while(Init_IM1253E_flag)
  1156. {
  1157. if(Read_IM1253E_flag)
  1158. {
  1159. Read_IM1253E_flag = false;
  1160. Read_IM1253E_REG(Device_addr_IM1253E,V_REG_ADDR,8);//Device_addr_IM1253E
  1161. }
  1162. if(Rx_Finish_flag)
  1163. {
  1164. Rx_Finish_flag = false;
  1165. for(j = 0;j < 8;j++)
  1166. {
  1167. temp_da[j] = 0;
  1168. for(i = 0;i < 4;i++)
  1169. {
  1170. temp1 = 8 * i;
  1171. temp1 = 24 - temp1;
  1172. temp2 = 4 * j;
  1173. temp2 += 3;
  1174. temp2 += i;
  1175. temp0 = Rx_Data_buff_IM1253E[temp2] << temp1;
  1176. temp_da[j] += temp0;
  1177. }
  1178. }
  1179. DCPDU_Iin_Zero = temp_da[1] / 10;
  1180. DCPDU_Win_Zero = temp_da[2] / 10;
  1181. DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] = temp_da[0] / 10;//输入电压
  1182. for(i = 0;i < RELAY_ChN_default;i++)
  1183. {
  1184. temp0 = 4 * i;
  1185. DCPDU_Modbus_Reg[Mb_Dbuff_P1Output_Addr + temp0] = DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr];//输出电压
  1186. temp2 = 0x01 << i;
  1187. if((DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] > DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_max_Addr + i]) || (DCPDU_Modbus_Reg[Mb_Dbuff_VInput_Addr] < DCPDU_Modbus_Reg[Mb_Dbuff_VLit1_min_Addr + i]))
  1188. {
  1189. Fault_state_V |= temp2;
  1190. }
  1191. else
  1192. {
  1193. if((Fault_state_V & temp2) > 0)
  1194. {
  1195. temp1 = ~temp2;
  1196. Fault_state_V &= temp1;
  1197. }
  1198. }
  1199. }
  1200. Init_IM1253E_flag = false;
  1201. IM1253E_OK_flag = true;
  1202. }
  1203. }
  1204. #endif
  1205. }
  1206. /*freemodbus作者使用了assert,故增加如下代码,同时
  1207. *options for target 对话框,target页面,勾选Use MicroLib
  1208. */
  1209. #ifdef USE_FULL_ASSERT
  1210. /**
  1211. * @brief Reports the name of the source file and the source line number
  1212. * where the assert_param error has occurred.
  1213. * @param file: pointer to the source file name
  1214. * @param line: assert_param error line source number
  1215. * @retval None
  1216. */
  1217. void assert_failed(uint8_t* file, uint32_t line)
  1218. {
  1219. while (1)
  1220. {
  1221. }
  1222. }
  1223. #else
  1224. void __aeabi_assert(const char * x1, const char * x2, int x3)
  1225. {
  1226. (void)x3;
  1227. }
  1228. #endif