common.c 8.1 KB

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  1. #include "common.h"
  2. #include "board_cfg.h"
  3. #include "systick.h"
  4. #include "string.h"
  5. #if EEPROM_TEST
  6. #define TEST_ADDR (120 * 32)
  7. #define LENTH (32)
  8. #endif
  9. void reset_config_for_eeprom(void)
  10. {
  11. #if 0
  12. board_t *board = get_board();
  13. if(board)
  14. {
  15. for(uint8_t i = 0; i < MAX_CHANNEL;i++)
  16. {
  17. board->md_data.rw_data.open.delay_open[i] = (1+i) *1000;
  18. board->md_data.rw_data.close.delay_close[i] = (1+i) *1000;
  19. }
  20. memset((void*)&board->md_data.rw_data.thr.th[0].v_top,0,sizeof(ac_rw_data_t)-sizeof(ac_delay_open_t)-sizeof(ac_delay_close_t));
  21. board->write_eeprom_page(EEPROM_OTHER_ADDR,(uint8_t *)&board->md_data.rw_data.open.delay_open[0], sizeof(ac_rw_data_t));
  22. }
  23. #endif
  24. }
  25. void read_config_from_eeprom(void)
  26. {
  27. board_t *board = get_board();
  28. if(board)
  29. {
  30. uint32_t device = 0;
  31. board->read_eeprom(EEPROM_DEVICES_ADDR,(uint8_t *)&device,EEPROM_DEVICES_LENTH);
  32. if(device != board->md_data.r_data.dev_info)
  33. {
  34. //default write eeprom
  35. board->write_eeprom_page(EEPROM_STATUS_ADDR,(uint8_t *)&board->relay_staging_staus[0],2*RelaySlaveChaNum);
  36. #if SUPPORT_ZERO_CRTL
  37. board->write_eeprom_page(EEPROM_N_STATUS_ADDR,(uint8_t *)&board->relay_zero_staging_status,2);
  38. #endif
  39. #if (AC_3_3 || AC_3_4 || AC_3_3_MON)
  40. uint8_t count = 1;
  41. for(uint8_t i = 0; i < RelaySlaveChaNum;i += 3)
  42. {
  43. for(int j = 0;j < 3;j++)
  44. {
  45. board->md_data.rw_data.delay_on [i*3+j] = count;
  46. board->md_data.rw_data.delay_off[i*3+j] = count;
  47. }
  48. #if SUPPORT_ZERO_CRTL
  49. board->md_data.rw_data.delay_N_on = count;
  50. board->md_data.rw_data.delay_N_off = count;
  51. #endif
  52. count++;
  53. }
  54. board->v_k[0] = 3135;
  55. board->v_k[1] = 3135;
  56. board->v_k[2] = 3135;
  57. board->i_k[0] = 10000;
  58. board->i_k[1] = 10000;
  59. board->i_k[2] = 10000;
  60. board->write_eeprom_page(EEPROM_SET_V_K_ADDR,(uint8_t *)&board->v_k[0], 4*3);
  61. board->write_eeprom_page(EEPROM_SET_K_I_ADDR,(uint8_t *)&board->i_k[0], 4*3);
  62. #else
  63. for(uint8_t i = 0; i < PT_SUB_COUNT;i++)
  64. {
  65. board->md_data.rw_data.delay_on [i ] = i+1;
  66. board->md_data.rw_data.delay_off[i ] = i+1;
  67. board->md_data.rw_data.delay_on [i+4] = i+1;
  68. board->md_data.rw_data.delay_off[i+4] = i+1;
  69. }
  70. board->v_k[0] = 3135;
  71. board->v_k[1] = 3135;
  72. board->i_k[0] = 10000;
  73. board->i_k[1] = 10000;
  74. board->write_eeprom_page(EEPROM_SET_V_K_ADDR,(uint8_t *)&board->v_k[0], 4*2);
  75. board->write_eeprom_page(EEPROM_SET_K_I_ADDR,(uint8_t *)&board->i_k[0], 4*2);
  76. #endif
  77. board->write_eeprom_page(EEPROM_OTHER_ADDR,(uint8_t *)&board->md_data.rw_data.delay_on[0], sizeof(rw_3_data_t));
  78. iic_data chache={0};
  79. for(uint8_t i = 0 ; i < MAX_ROW;i++){
  80. board->write_eeprom_page(EEPROM_CONSUMER_ADDR +(CONSUM_PAGE*i),(uint8_t*)&chache.data[0],CONSUM_PAGE);
  81. }
  82. board->write_eeprom_page(EEPROM_DEVICES_ADDR,(uint8_t *)&board->md_data.r_data.dev_info,EEPROM_DEVICES_LENTH);
  83. }
  84. {
  85. //channel open or close
  86. board->read_eeprom_page(EEPROM_STATUS_ADDR,(uint8_t *)&board->relay_staging_staus[0],2*RelaySlaveChaNum);
  87. #if SUPPORT_ZERO_CRTL
  88. board->read_eeprom_page(EEPROM_N_STATUS_ADDR,(uint8_t *)&board->relay_zero_staging_status,2);
  89. {
  90. if(board->relay_zero_staging_status)
  91. {
  92. SET_RL_ON_DELAY_FLAG(board->relay_zero_staging_status);
  93. CLEAR_RL_OFF_DELAY_FLAG(board->relay_zero_staging_status);
  94. SET_RL_ORDER_FLAG(board->relay_zero_staging_status);
  95. }
  96. }
  97. #endif
  98. {
  99. for(int i =0 ;i < RelaySlaveChaNum;i++)
  100. {
  101. #if SUPPORT_MON
  102. board->md_data.r_data.status[i] = 1;
  103. #else
  104. if(board->relay_staging_staus[i])
  105. {
  106. SET_RL_ON_DELAY_FLAG(board->relay_staging_staus[i]);
  107. CLEAR_RL_OFF_DELAY_FLAG(board->relay_staging_staus[i]);
  108. SET_RL_ORDER_FLAG(board->relay_staging_staus[i]);
  109. }
  110. #endif
  111. }
  112. }
  113. board->read_eeprom_page(EEPROM_OTHER_ADDR,(uint8_t *)&board->md_data.rw_data.delay_on[0],sizeof(rw_3_data_t));
  114. #if (AC_3_3 || AC_3_4 ||AC_3_3_MON)
  115. board->check_threshold(THRESHOLD_IN,0);
  116. #else
  117. board->check_threshold(THRESHOLD_IN,0);
  118. #endif
  119. #if (AC_3_3 || AC_3_4 || AC_3_3_MON)
  120. board->read_eeprom_page(EEPROM_SET_V_K_ADDR,(uint8_t *)&board->v_k[0], 4*3);
  121. board->read_eeprom_page(EEPROM_SET_K_I_ADDR,(uint8_t *)&board->i_k[0], 4*3);
  122. for(int i = 0;i < 3;i++)
  123. {
  124. //3135 voltage Calibrate value
  125. board->v_k[i] = board->v_k[i] > 10000 ? 3135 : board->v_k[i];
  126. board->i_k[i] = board->i_k[i] > 10000 ? 10000 : board->i_k[i];
  127. }
  128. #else
  129. board->read_eeprom_page(EEPROM_SET_V_K_ADDR,(uint8_t *)&board->v_k[0], 4*2);
  130. board->read_eeprom_page(EEPROM_SET_K_I_ADDR,(uint8_t *)&board->i_k[0], 4*2);
  131. for(int i = 0;i < 2;i++)
  132. {
  133. board->v_k[i] = board->v_k[i] > 10000 ? 3135 : board->v_k[i];
  134. board->v_k[i] = board->i_k[i] > 10000 ? 10000 : board->i_k[i];
  135. }
  136. #endif
  137. for(uint8_t i = 0 ; i < RelaySlaveChaNum;i++)
  138. {
  139. board->check_threshold(THRESHOLD_OUT,i);
  140. }
  141. iic_data chache={0};
  142. for(uint8_t i = 0 ; i < MAX_ROW;i++)
  143. {
  144. board->read_eeprom_page(EEPROM_CONSUMER_ADDR + (CONSUM_PAGE*i),(uint8_t*)&chache,sizeof(iic_data));
  145. if(board->con_da.index > chache.iic_con.recode_index1)
  146. {
  147. }else
  148. {
  149. board->con_da.index = chache.iic_con.recode_index1;
  150. board->con_da.row = i;
  151. }
  152. }
  153. board->read_eeprom_page(EEPROM_CONSUMER_ADDR +(CONSUM_PAGE*(board->con_da.row)),(uint8_t*)&chache,sizeof(iic_data));
  154. for(uint16_t i = 0 ; i < RelaySlaveChaNum;i++)
  155. {
  156. board->ele_restore[i] = chache.iic_con.iic_consumer[i];
  157. }
  158. board->con_da.row++; //point next write row
  159. if(board->con_da.row >= MAX_ROW)
  160. {
  161. board->con_da.row = 0;
  162. }
  163. board->con_da.index++; //point next write consumer index
  164. if(board->con_da.index >= UINT64_MAX)
  165. {
  166. iic_data chache1={0};
  167. board->con_da.index = 0;
  168. for(uint8_t i = 0 ; i < MAX_ROW;i++){
  169. board->write_eeprom_page(EEPROM_CONSUMER_ADDR +(CONSUM_PAGE*i),(uint8_t*)&chache1,CONSUM_PAGE);
  170. DelayNms(7);
  171. }
  172. }
  173. //read chn ctrl
  174. }
  175. }
  176. }
  177. void set_relay_sta_async(async_data *data)
  178. {
  179. if(!data)
  180. goto failed;
  181. board_t *board = get_board();
  182. if(board)
  183. {
  184. if(data->fire_or_zero == _FIRE)
  185. {
  186. //if(board->md_data.rw_data.rw_d.chn_ctrl[data->channel] != 0) goto failed;
  187. if(data->w_eep_flag == FLAG_W_EEP)
  188. {
  189. w_eeprom_data_t da = {0};
  190. da.lenth =2;
  191. memcpy((void*)&da.data,(void*)&data->status,2);
  192. da.start_addr = (EEPROM_STATUS_ADDR+(data->channel*2));
  193. board->q_cache.en_queue(&da);
  194. }
  195. }
  196. else if(data->fire_or_zero == _ZERO)
  197. {
  198. #if (SUPPORT_ZERO_CRTL)
  199. if(data->w_eep_flag == FLAG_W_EEP)
  200. {
  201. w_eeprom_data_t da = {0};
  202. da.lenth =2;
  203. memcpy(&da.data,&data->status,2);
  204. da.start_addr = EEPROM_N_STATUS_ADDR;
  205. board->q_cache.en_queue(&da);
  206. }
  207. #else
  208. goto failed;
  209. #endif
  210. }
  211. else
  212. {
  213. goto failed;
  214. }
  215. SET_RL_STATUS(*data->reg,data->status);
  216. if(data->method == DELAY_CTRL)
  217. {
  218. if(data->status)
  219. {
  220. SET_RL_ON_DELAY_FLAG(*(data->reg));
  221. CLEAR_RL_OFF_DELAY_FLAG(*(data->reg));
  222. }else
  223. {
  224. CLEAR_RL_ON_DELAY_FLAG(*(data->reg));
  225. SET_RL_OFF_DELAY_FLAG(*(data->reg));
  226. }
  227. }else
  228. {
  229. if(data->status)
  230. {
  231. CLEAR_RL_ON_DELAY_FLAG(*(data->reg));
  232. CLEAR_RL_OFF_DELAY_FLAG(*(data->reg));
  233. }else
  234. {
  235. CLEAR_RL_ON_DELAY_FLAG(*(data->reg));
  236. CLEAR_RL_OFF_DELAY_FLAG(*(data->reg));
  237. }
  238. }
  239. SET_RL_ORDER_FLAG(*(data->reg));
  240. }
  241. failed:
  242. return;
  243. }
  244. void set_relay_status_async(uint16_t *reg,uint8_t method,uint16_t status)
  245. {
  246. board_t *board = get_board();
  247. SET_RL_STATUS(*reg,status);
  248. if(method == DELAY_CTRL)
  249. {
  250. if(status)
  251. {
  252. SET_RL_ON_DELAY_FLAG(*reg);
  253. CLEAR_RL_OFF_DELAY_FLAG(*reg);
  254. }else
  255. {
  256. CLEAR_RL_ON_DELAY_FLAG(*reg);
  257. SET_RL_OFF_DELAY_FLAG(*reg);
  258. }
  259. }else
  260. {
  261. if(status)
  262. {
  263. CLEAR_RL_ON_DELAY_FLAG(*reg);
  264. CLEAR_RL_OFF_DELAY_FLAG(*reg);
  265. }else
  266. {
  267. CLEAR_RL_ON_DELAY_FLAG(*reg);
  268. CLEAR_RL_OFF_DELAY_FLAG(*reg);
  269. }
  270. }
  271. SET_RL_ORDER_FLAG(*reg);
  272. }