power.c 73 KB

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  1. #include "mb.h"
  2. #include "cfg.h"
  3. #include "web.h"
  4. #include "list.h"
  5. #include "paras.h"
  6. #include "power.h"
  7. #include "thread.h"
  8. #include "datadef.h"
  9. #include "wanning.h"
  10. #include "beep.h"
  11. #include "time.h"
  12. #include "snmp.h"
  13. #define SECOND_MIL 20
  14. enum
  15. {
  16. STR_POWER_ID_OVER,
  17. STR_POWER_ID_MAXS,
  18. STR_POWER_ID_MIN,
  19. STR_POWER_ID_VOL,
  20. STR_POWER_ID_CUR,
  21. STR_POWER_ID_POWER,
  22. STR_POWER_ID_CONSUMER,
  23. STR_POWER_ID_MAX
  24. };
  25. const char *lang_power_str[2][STR_POWER_ID_MAX]={
  26. {
  27. "超过",
  28. "最大",
  29. "最小",
  30. "电压",
  31. "电流",
  32. "功率",
  33. "耗电量",
  34. },
  35. {
  36. "over",
  37. "max",
  38. "min",
  39. "voltage",
  40. "current",
  41. "power",
  42. "consumer",
  43. },
  44. };
  45. extern AlarmTrapinfo data;
  46. #define LIMIT_HOF(x) (x*1.1f)
  47. #define LIMIT_LOF(x) (x*0.9f)
  48. static power_handle_t pwrHandle={0};
  49. static int write_reg(power_handle_t *h, uint8_t addr, uint16_t reg, uint16_t *data, int cnt);
  50. power_handle_t * get_power_handle(void)
  51. {
  52. return &pwrHandle;
  53. }
  54. static int get_power(power_ch_t *pch)
  55. {
  56. return power_get_ch(pch->info.ch, pch);
  57. }
  58. static int get_alarm(power_ch_t *pch)
  59. {
  60. power_ch_t pc;
  61. int r = power_get_ch(pch->info.ch, &pc);
  62. if(r==0) {
  63. pch->alarm = pc.alarm;
  64. }
  65. return r;
  66. }
  67. static int set_ch(power_ch_t *pch)
  68. {
  69. return power_set_ch_sw(pch->info.ch, pch->status);
  70. }
  71. static int set_open_delay(power_ch_t *pch)
  72. {
  73. return power_set_open_delay(pch);
  74. }
  75. static int set_close_delay(power_ch_t *pch)
  76. {
  77. return power_set_close_delay(pch);
  78. }
  79. static int set_kb_value(power_ch_t *pch)
  80. {
  81. return 0;//power_set_kb_val(pch);
  82. }
  83. static int set_threshold(power_ch_t *pch)
  84. {
  85. return power_set_threshold(pch);
  86. }
  87. static int reset_consump(power_ch_t *pch)
  88. {
  89. return power_reset();
  90. }
  91. static int do_detect(uint8_t addr)
  92. {
  93. return 0;
  94. }
  95. static int get_info(uint8_t addr, board_info_t *info)
  96. {
  97. return 0;
  98. }
  99. static int get_board(board_data_t *pbrd)
  100. {
  101. return 0;
  102. }
  103. static int set_board(uint8_t addr, uint8_t on)
  104. {
  105. return power_set_board_sw(addr, on);
  106. }
  107. static int set_all(uint16_t on,board_data_t *data)
  108. {
  109. //return power_set_all_sw(on);
  110. }
  111. int board_ac_all_status(uint16_t on_off,board_data_t *board)
  112. {
  113. //power_handle_t *h=&pwrHandle;
  114. power_handle_t *h=&pwrHandle;
  115. uint16_t switch_ctrl[8] = {0};
  116. lock_on(h->lck);
  117. for (size_t i = 0; i < 8; i++)
  118. {
  119. switch_ctrl[i] = on_off;
  120. if(on_off==1)
  121. {
  122. switch_ctrl[i] |= (1<<11);
  123. }else
  124. {
  125. switch_ctrl[i] |= (1<<12);
  126. }
  127. }
  128. write_reg(h, board->addr, POWER_AC_CH_STAT_L, &switch_ctrl[0], board->chs);
  129. lock_off(h->lck);
  130. return 0;
  131. }
  132. int board_dc_all_status(uint16_t on_off,board_data_t *board)
  133. {
  134. //POWER_DC_ALL_OPEN_INFO
  135. power_handle_t *h=&pwrHandle;
  136. uint32_t val = on_off;
  137. lock_on(h->lck);
  138. if(on_off==1)
  139. {
  140. write_reg(h, board->addr, POWER_DC_ALL_OPEN_INFO, (uint16_t*)&val,2);
  141. }else
  142. {
  143. val = 0;
  144. write_reg(h, board->addr, POWER_DC_ALL_CLOSE_INFO, (uint16_t*)&val,2);
  145. }
  146. lock_off(h->lck);
  147. return 0;
  148. }
  149. int board_ac3_all_status(uint16_t on_off,board_data_t *board)
  150. {
  151. power_handle_t *h=&pwrHandle;
  152. uint32_t val = on_off;
  153. lock_on(h->lck);
  154. if(on_off==1)
  155. {
  156. write_reg(h, board->addr, POWER_AC3_ALL_OPEN_INFO, (uint16_t*)&val,2);
  157. }else
  158. {
  159. val = 0;
  160. write_reg(h, board->addr, POWER_AC3_ALL_CLOSE_INFO, (uint16_t*)&val,2);
  161. }
  162. lock_off(h->lck);
  163. }
  164. static board_fn_t board_fn_ac={
  165. // .get_power = get_power,
  166. // .get_alarm = get_alarm,
  167. // .set_ch = set_ch,
  168. // .set_open_delay = set_open_delay,
  169. // .set_close_delay = set_close_delay,
  170. // .set_kb_value = set_kb_value,
  171. // .set_threshold = set_threshold,
  172. // .reset_consump = reset_consump,
  173. // .detect = do_detect,
  174. // .get_info = get_info,
  175. // //.get_board = get_board,
  176. // .set_board = set_board,
  177. .set_all = board_ac_all_status,
  178. };
  179. static board_fn_t board_fn_dc={
  180. .set_all = board_dc_all_status,
  181. };
  182. static board_fn_t board_fn_ac3={
  183. .set_all = board_ac3_all_status,
  184. };
  185. static int get_flag(power_handle_t *h, uint8_t ch, uint8_t thr)
  186. {
  187. return (h->flag[ch]&(1<<thr))?1:0;
  188. }
  189. static void set_flag(power_handle_t *h, uint8_t ch, uint8_t thr, int flag)
  190. {
  191. if(flag) {
  192. h->flag[ch] |= 1<<thr;
  193. }
  194. else {
  195. h->flag[ch] &= ~(1<<thr);
  196. }
  197. }
  198. static int alarm_evt_handle(power_handle_t *h, power_ch_t *pch)
  199. {
  200. alarm_data_t ad;
  201. ad.ch = pch->info.ch;
  202. ad.alarm = pch->alarm;
  203. // ad.time = pch->time;
  204. web_post(PKT_TYPE_ALARM, &ad, sizeof(ad));
  205. return 0;
  206. }
  207. static void memswap(uint8_t *buf, int len)
  208. {
  209. int i;
  210. uint8_t tmp;
  211. for(i=0; i<len; i+=2) {
  212. tmp = buf[i];
  213. buf[i] = buf[i+1];
  214. buf[i+1] = tmp;
  215. }
  216. }
  217. static int read_reg(power_handle_t *h, uint8_t addr, uint16_t reg, uint16_t *data, int cnt)
  218. {
  219. int i,r=0;
  220. for(i=0; i<POWER_RETRY_TIMES; i++) {
  221. r = mb_read(MB_ID_POWER, addr, reg, data, cnt, POWER_BOARD_TIMEOUT);
  222. if(r==cnt) {
  223. break;
  224. }
  225. }
  226. return (r==cnt)?0:-1;
  227. }
  228. static int write_reg(power_handle_t *h, uint8_t addr, uint16_t reg, uint16_t *data, int cnt)
  229. {
  230. int i,r=0;
  231. for(i=0; i<POWER_RETRY_TIMES; i++) {
  232. r = mb_write(MB_ID_POWER, addr, reg, data, cnt);
  233. if(r==cnt) break;
  234. }
  235. return (r==cnt)?0:-1;
  236. }
  237. ////////////////////////////////////////////////////////////////////
  238. static int get_key(power_handle_t *h, uint8_t addr, board_key_t *key)
  239. {
  240. int i,r;
  241. uint16_t tmp[2];
  242. if(h->prod->type==PDU_AC_I1O1 || h->prod->type==PDU_AC_I3O1_H) {
  243. r = read_reg(h, addr, POWER_AC_GET_INFO, tmp, 1);
  244. if(r==0) {
  245. key->type = (tmp[0]>>8)&0xFF;
  246. key->chs = tmp[0]&0xFF;
  247. }
  248. }
  249. else {
  250. r = read_reg(h, addr, POWER_DC_INFO, tmp, 2);
  251. if(r==0) {
  252. key->type = (tmp[0]>>8)&0xFF;
  253. key->chs = tmp[0]&0xFF;
  254. if(h->prod->type == PDU_AC_I3O3)
  255. {
  256. key->chs /= 3;
  257. }
  258. if(h->prod->type == PDU_AC_I3O2)
  259. {
  260. key->chs /= 2;
  261. }
  262. return 0;
  263. }
  264. }
  265. return r;
  266. }
  267. ////////////////////////////////////////////////////////////////
  268. int power_set_kb_value(power_handle_t *h, int type, int addr, kb_val_t *kv)
  269. {
  270. switch(type) {
  271. case AC_SINGLE_S_TYPE:
  272. {
  273. /*
  274. unsigned int offset = 0;
  275. unsigned int rval = 0 ;
  276. unsigned short data_temp[8] = {0};
  277. if(chn>=8)
  278. return -1;
  279. offset = _SWITCH_AC_SINGLE_S_KB_VAL+chn*8;
  280. data_temp[0] = (unsigned short)_kb_val->voltage_k;
  281. data_temp[1] = (unsigned short)((_kb_val->voltage_k-data_temp[0])*1000);
  282. data_temp[2] = (unsigned short)_kb_val->voltage_b;
  283. data_temp[3] = (unsigned short)((_kb_val->voltage_b-data_temp[2])*1000);
  284. data_temp[4] = (unsigned short)_kb_val->current_k;
  285. data_temp[5] = (unsigned short)((_kb_val->current_k-data_temp[4])*1000);
  286. data_temp[6] = (unsigned short)_kb_val->current_b;
  287. data_temp[7] = (unsigned short)((_kb_val->current_b-data_temp[6])*1000);
  288. g_modbus_write_x_reg(manger,saddr,offset,8,data_temp);
  289. */
  290. }
  291. break;
  292. case AC_SINGLE_B_TYPE:
  293. {
  294. /*
  295. unsigned int offset = 0;
  296. unsigned int rval = 0 ;
  297. unsigned short data_temp[8] = {0};
  298. if(pch->info.>=4)
  299. return -1;
  300. offset = _SWITCH_AC_SINGLE_B_KB_VAL+chn*8;
  301. data_temp[0] = (unsigned short)_kb_val->voltage_k;
  302. data_temp[1] = (unsigned short)((_kb_val->voltage_k-data_temp[0])*1000);
  303. data_temp[2] = (unsigned short)_kb_val->voltage_b;
  304. data_temp[3] = (unsigned short)((_kb_val->voltage_b-data_temp[2])*1000);
  305. data_temp[4] = (unsigned short)_kb_val->current_k;
  306. data_temp[5] = (unsigned short)((_kb_val->current_k-data_temp[4])*1000);
  307. data_temp[6] = (unsigned short)_kb_val->current_b;
  308. data_temp[7] = (unsigned short)((_kb_val->current_b-data_temp[6])*1000);
  309. g_modbus_write_x_reg(manger,saddr,offset,8,data_temp);
  310. */
  311. }
  312. break;
  313. case DCPDU_TYPE:
  314. {/*
  315. unsigned short offset = 0;
  316. unsigned short data_temp[8] = {0};
  317. offset = _SWITCH_DC_KB_VAL;
  318. data_temp[0] = (unsigned short)_kb_val->voltage_k;
  319. data_temp[1] = (unsigned short)((_kb_val->voltage_k-data_temp[0])*1000);
  320. data_temp[2] = (unsigned short)_kb_val->voltage_b;
  321. data_temp[3] = (unsigned short)((_kb_val->voltage_b-data_temp[2])*1000);
  322. data_temp[4] = (unsigned short)_kb_val->current_k;
  323. data_temp[5] = (unsigned short)((_kb_val->current_k-data_temp[4])*1000);
  324. data_temp[6] = (unsigned short)_kb_val->current_b;
  325. data_temp[7] = (unsigned short)((_kb_val->current_b-data_temp[6])*1000);
  326. g_modbus_write_x_reg(manger,saddr,offset,8, data_temp);
  327. */
  328. }
  329. break;
  330. case TREE_AC_TYPE:
  331. {
  332. }
  333. break;
  334. case AC_MULTI_S_TYPE:
  335. case AC_MULTI_B_TYPE:
  336. case DC_OUT_TYPE:
  337. case DC_IN_TYPE:
  338. default:
  339. return -1;
  340. }
  341. }
  342. //////////////////////////////////////////////////////////////////
  343. static uint8_t get_ch_idx(board_data_t *pbrd, uint8_t sch)
  344. {
  345. uint8_t ch=0;
  346. uint8_t pwr_type=paras_get()->prod.type;
  347. if(pbrd->type==TREE_AC_TYPE) {
  348. if(pwr_type == PDU_AC_I3O3) {
  349. ch = pbrd->ch0 + sch/3;
  350. }
  351. else {
  352. ch = pbrd->ch0 + sch;
  353. }
  354. }
  355. else {
  356. ch = pbrd->ch0 + sch;
  357. }
  358. return ch;
  359. }
  360. static int threshold_proc(power_handle_t *h, board_data_t *pbrd)
  361. {
  362. int i,j,r=-1,times=1;
  363. power_ch_t *pch=NULL;
  364. for (i=0; i<pbrd->chs; i++) {
  365. pch = &pbrd->pch[i];
  366. if(h->prod->type==PDU_AC_I3O3) {
  367. times = 3;
  368. //设置为输出三相且三相有缺失则报警
  369. if(pch->info.ph_val && pbrd->ph_loss && get_flag(h, pch->info.ch, ALARM_PH_LOSS)==0) {
  370. set_flag(h, pch->info.ch, ALARM_PH_LOSS, 1);
  371. alarm_evt_handle(h, pch);
  372. }
  373. else {
  374. set_flag(h, pch->info.ch, ALARM_PH_LOSS, 0);
  375. }
  376. }
  377. for(j=0; j<times; j++) {
  378. if(pch->thr.en.v_upper_en) {
  379. if(pch->power[j].voltage>pch->thr.v_upper) {
  380. if(pch->alarm.v_upper && get_flag(h, pch->info.ch, ALARM_V_UPPER)==0) {
  381. set_flag(h, pch->info.ch, ALARM_V_UPPER, 1);
  382. alarm_evt_handle(h, pch);
  383. }
  384. }
  385. else if(pch->power[j].voltage<pch->thr.v_lower) {
  386. if(pch->alarm.v_lower && get_flag(h, pch->info.ch, ALARM_V_LOWER)==0) {
  387. set_flag(h, pch->info.ch, ALARM_V_LOWER, 1);
  388. alarm_evt_handle(h, pch);
  389. }
  390. }
  391. else {
  392. set_flag(h, pch->info.ch, ALARM_V_UPPER, 0);
  393. set_flag(h, pch->info.ch, ALARM_V_LOWER, 0);
  394. }
  395. }
  396. if(pch->thr.en.c_upper_en) {
  397. if(pch->power[j].current>pch->thr.c_upper) {
  398. if(pch->alarm.c_upper && get_flag(h, pch->info.ch, ALARM_C_UPPER)==0) {
  399. set_flag(h, pch->info.ch, ALARM_C_UPPER, 1);
  400. alarm_evt_handle(h, pch);
  401. }
  402. else {
  403. set_flag(h, pch->info.ch, ALARM_C_UPPER, 0);
  404. }
  405. }
  406. }
  407. if(pch->thr.en.p_upper_en) {
  408. if(pch->power[j].power>pch->thr.p_upper) {
  409. if(pch->alarm.p_upper && get_flag(h, pch->info.ch, ALARM_P_UPPER)==0) {
  410. set_flag(h, pch->info.ch, ALARM_P_UPPER, 0);
  411. alarm_evt_handle(h, pch);
  412. }
  413. }
  414. else {
  415. set_flag(h, pch->info.ch, ALARM_P_UPPER, 0);
  416. }
  417. }
  418. if(pch->thr.en.w_upper_en) {
  419. if(pch->power[j].current>pch->thr.w_upper) {
  420. if(pch->alarm.w_upper==1 && get_flag(h, pch->info.ch, ALARM_W_UPPER)==0) {
  421. set_flag(h, pch->info.ch, ALARM_W_UPPER, 1);
  422. alarm_evt_handle(h, pch);
  423. }
  424. }
  425. else {
  426. set_flag(h, pch->info.ch, ALARM_C_UPPER, 0);
  427. }
  428. }
  429. }
  430. }
  431. return 0;
  432. }
  433. static int total_proc(power_handle_t *h)
  434. {
  435. total_t tmp[3]={0};
  436. int i,j,k,r=-1,times=1;
  437. power_ch_t *pch=NULL;
  438. board_data_t *pbrd=NULL;
  439. lock_on(h->lck);
  440. if(h->prod->type==PDU_AC_I3O3) times = 3;
  441. for(int i = 1 ;i < h->chs;i++)
  442. {
  443. float chn_total_p = 0.0;
  444. for(k=0; k<times; k++) {
  445. chn_total_p = ( h->pch[i]->power[k].factor == 0 ? 0 : ( h->pch[i]->power[k].power/1000.0 / h->pch[i]->power[k].factor * 100.0));
  446. tmp[k].consump += (h->pch[i]->power[k].consump/1000.0);
  447. tmp[k].voltage = (tmp[k].voltage > h->pch[i]->power[k].voltage/10.0 ) ? tmp[k].voltage : h->pch[i]->power[k].voltage/10.0;
  448. tmp[k].current += ( h->pch[i]->power[k].current/10.0);
  449. tmp[k].power += h->pch[i]->power[k].power/1000.0;
  450. tmp[k].reactive += chn_total_p;
  451. tmp[k].active +=(chn_total_p-(h->pch[i]->power[k].power/1000.0));
  452. }
  453. }
  454. // for(i=0; i<h->brd_max; i++) {
  455. // if(h->pbrd[i]) {
  456. // for (j=0; i<h->pbrd[i]->chs; i++) {
  457. // pch = &h->pbrd[i]->pch[j];
  458. // float chn_total_p = 0.0;
  459. // for(k=0; k<times; k++) {
  460. // chn_total_p = ( pch->power[j].factor == 0 ? 0 : (pch->power[j].power/1000.0 / pch->power[j].factor * 100.0));
  461. // tmp[k].voltage = pch->power[j].voltage/10.0;
  462. // tmp[k].current += (pch->power[j].current/10.0);
  463. //
  464. // tmp[k].power += chn_total_p;
  465. // tmp[k].freq = (pch->power[j].freq/10.0);
  466. // tmp[k].consump += (pch->power[j].consump/1000.0);
  467. //#if 1
  468. // tmp[k].active += pch->power[j].power/1000.0;
  469. // tmp[k].reactive += (chn_total_p-(pch->power[j].power/1000.0));
  470. //#endif
  471. // }
  472. // }
  473. // }
  474. // }
  475. h->ttl.type = h->prod->type;
  476. for(k=0; k<times; k++) {
  477. h->ttl.total[k].voltage = tmp[k].voltage;
  478. h->ttl.total[k].current = tmp[k].current;
  479. h->ttl.total[k].power = tmp[k].power;
  480. h->ttl.total[k].freq = tmp[k].freq;
  481. h->ttl.total[k].consump = tmp[k].consump;
  482. h->ttl.total[k].factor = ((tmp[k].reactive == 0) ? 0 : tmp[k].power/tmp[k].reactive);
  483. h->ttl.total[k].active = tmp[k].active;
  484. h->ttl.total[k].reactive = tmp[k].reactive;
  485. }
  486. lock_off(h->lck);
  487. return 0;
  488. }
  489. static int board_read(power_handle_t *h, board_data_t *pbrd,uint8_t flag)
  490. {
  491. int i,j,r=-1;
  492. power_t *pwr,power;
  493. uint16_t offset,tmp[144];
  494. power_ch_t *pch=NULL;
  495. uint8_t lang = paras_get()->sys.lang;
  496. lock_on(h->lck);
  497. if(pbrd) {
  498. // time_t tm = mktime(localtime(NULL));
  499. switch(pbrd->type) {
  500. case AC_SINGLE_S_TYPE:
  501. case AC_SINGLE_B_TYPE:
  502. {
  503. uint32_t val;
  504. offset = POWER_AC_CUR_INFO_L;
  505. r = read_reg(h, pbrd->addr, offset, tmp, pbrd->chs*12);
  506. if (r<0) {
  507. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, pbrd->chs*12);
  508. break;
  509. }
  510. for (i=0; i<pbrd->chs; i++) {
  511. int idx = i * 12;
  512. pwr = &pbrd->pch[i].power[0];
  513. val = (tmp[1 + idx] << 16) | tmp[0 + idx];
  514. pwr->voltage = val / 100;
  515. val = (tmp[3 + idx] << 16) | tmp[2 + idx];
  516. pwr->current = val / 100;
  517. val = (tmp[5 + idx] << 16) | tmp[4 + idx];
  518. pwr->power = val;
  519. val = (tmp[7 + idx] << 16) | tmp[6 + idx];
  520. pwr->freq = val / 10;
  521. val = (tmp[9 + idx] << 16) | tmp[8 + idx];
  522. pwr->consump = val ;
  523. val = (tmp[11 + idx] << 16) | tmp[10 + idx];
  524. pwr->factor = val / 10;
  525. // pbrd->pch[i].time = tm;
  526. }
  527. offset = POWER_AC_STAT_INFO_L;
  528. memset(tmp,0,sizeof(tmp));
  529. r = read_reg(h, pbrd->addr, offset, tmp, pbrd->chs);
  530. if (r<0) {
  531. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, pbrd->chs);
  532. break;
  533. }
  534. for (i=0; i<pbrd->chs; i++) {
  535. pch = &pbrd->pch[i];
  536. //pch->power[0].status = tmp[i] & (0x01);
  537. pch->status = tmp[i] & (0x01);
  538. time_t t=time(NULL);
  539. uint8_t old_v_upper = pch->alarm.v_upper;
  540. uint8_t old_v_lower = pch->alarm.v_lower;
  541. uint8_t old_c_upper = pch->alarm.c_upper;
  542. uint8_t old_p_upper = pch->alarm.p_upper;
  543. uint8_t old_w_upper = pch->alarm.w_upper;
  544. pch->alarm.v_upper = (tmp[i] & BIT(2))?1:0;
  545. pch->alarm.v_lower = (tmp[i] & BIT(4))?1:0;
  546. pch->alarm.c_upper = (tmp[i] & BIT(6))?1:0;
  547. pch->alarm.p_upper = (tmp[i] & BIT(8))?1:0;
  548. pch->alarm.w_upper = (tmp[i] & BIT(10))?1:0;
  549. waning_info_t info= {0};
  550. info.type = ALARM_TYPE_POWER;
  551. struct tm *tm=localtime(&t);
  552. if(!old_v_upper && pch->alarm.v_upper)
  553. {
  554. memset(&info.waning_context,0,sizeof(64));
  555. sprintf(info.date, "%04d%/%02d/%02d %2d:%2d:%2d", (tm->tm_year+1900), tm->tm_mon+1, tm->tm_mday,tm->tm_hour, tm->tm_min, tm->tm_sec);
  556. sprintf(info.waning_context,"%s %s %s %s!",pch->info.name,
  557. lang_power_str[lang][STR_POWER_ID_OVER],
  558. lang_power_str[lang][STR_POWER_ID_MAXS],
  559. lang_power_str[lang][STR_POWER_ID_VOL]);
  560. wanning_insert(info);
  561. if(paras_get()->snmp.trapmode == 1)
  562. {
  563. //AlarmTrapinfo t_info={0};
  564. data.ID = i;
  565. data.Alarmid = ALARM_TYPE_POWER;
  566. memcpy(data.AlarmDate,info.date,32);
  567. memcpy(data.AlarmContext,info.waning_context,64);
  568. // send_snmp_tarp();
  569. snmp_power_alarm_trap(&data);
  570. // system("snmp");
  571. }
  572. beep_set(1);
  573. }
  574. if(!old_v_lower && pch->alarm.v_lower)
  575. {
  576. memset(&info.waning_context,0,sizeof(64));
  577. sprintf(info.date, "%04d%/%02d/%02d %2d:%2d:%2d", (tm->tm_year+1900), tm->tm_mon+1, tm->tm_mday,tm->tm_hour, tm->tm_min, tm->tm_sec);
  578. sprintf(info.waning_context,"%s %s %s %s!",pch->info.name,
  579. lang_power_str[lang][STR_POWER_ID_OVER],
  580. lang_power_str[lang][STR_POWER_ID_MIN],
  581. lang_power_str[lang][STR_POWER_ID_VOL]);
  582. wanning_insert(info);
  583. if(paras_get()->snmp.trapmode == 1)
  584. {
  585. //AlarmTrapinfo t_info={0};
  586. data.ID = i;
  587. data.Alarmid = ALARM_TYPE_POWER;
  588. memcpy(data.AlarmDate,info.date,32);
  589. memcpy(data.AlarmContext,info.waning_context,64);
  590. // send_snmp_tarp();
  591. snmp_power_alarm_trap(&data);
  592. }
  593. beep_set(1);
  594. }
  595. if(!old_c_upper && pch->alarm.c_upper)
  596. {
  597. memset(&info.waning_context,0,sizeof(64));
  598. sprintf(info.date, "%04d%/%02d/%02d %2d:%2d:%2d", (tm->tm_year+1900), tm->tm_mon+1, tm->tm_mday,tm->tm_hour, tm->tm_min, tm->tm_sec);
  599. sprintf(info.waning_context,"%s %s %s %s!",pch->info.name,
  600. lang_power_str[lang][STR_POWER_ID_OVER],
  601. lang_power_str[lang][STR_POWER_ID_MAXS],
  602. lang_power_str[lang][STR_POWER_ID_CUR]);
  603. wanning_insert(info);
  604. beep_set(1);
  605. if(paras_get()->snmp.trapmode == 1)
  606. {
  607. //AlarmTrapinfo t_info={0};
  608. data.ID = i;
  609. data.Alarmid = ALARM_TYPE_POWER;
  610. memcpy(data.AlarmDate,info.date,32);
  611. memcpy(data.AlarmContext,info.waning_context,64);
  612. // send_snmp_tarp();
  613. snmp_power_alarm_trap(&data);
  614. }
  615. }
  616. if(!old_p_upper && pch->alarm.p_upper)
  617. {
  618. memset(&info.waning_context,0,sizeof(64));
  619. sprintf(info.date, "%04d%/%02d/%02d %2d:%2d:%2d", (tm->tm_year+1900), tm->tm_mon+1, tm->tm_mday,tm->tm_hour, tm->tm_min, tm->tm_sec);
  620. sprintf(info.waning_context,"%s %s %s %s!",pch->info.name,
  621. lang_power_str[lang][STR_POWER_ID_OVER],
  622. lang_power_str[lang][STR_POWER_ID_MAXS],
  623. lang_power_str[lang][STR_POWER_ID_POWER]);
  624. wanning_insert(info);
  625. beep_set(1);
  626. if(paras_get()->snmp.trapmode == 1)
  627. {
  628. //AlarmTrapinfo t_info={0};
  629. data.ID = i;
  630. data.Alarmid = ALARM_TYPE_POWER;
  631. memcpy(data.AlarmDate,info.date,32);
  632. memcpy(data.AlarmContext,info.waning_context,64);
  633. // send_snmp_tarp();
  634. snmp_power_alarm_trap(&data);
  635. }
  636. }
  637. if(!old_w_upper && pch->alarm.w_upper)
  638. {
  639. memset(&info.waning_context,0,sizeof(64));
  640. sprintf(info.date, "%04d%/%02d/%02d %2d:%2d:%2d", (tm->tm_year+1900), tm->tm_mon+1, tm->tm_mday,tm->tm_hour, tm->tm_min, tm->tm_sec);
  641. sprintf(info.waning_context,"%s %s %s %s!",pch->info.name,
  642. lang_power_str[lang][STR_POWER_ID_OVER],
  643. lang_power_str[lang][STR_POWER_ID_MAXS],
  644. lang_power_str[lang][STR_POWER_ID_CONSUMER]);
  645. wanning_insert(info);
  646. beep_set(1);
  647. if(paras_get()->snmp.trapmode == 1)
  648. {
  649. //AlarmTrapinfo t_info={0};
  650. data.ID = i;
  651. data.Alarmid = ALARM_TYPE_POWER;
  652. memcpy(data.AlarmDate,info.date,32);
  653. memcpy(data.AlarmContext,info.waning_context,64);
  654. // send_snmp_tarp();
  655. snmp_power_alarm_trap(&data);
  656. }
  657. }
  658. }
  659. if(flag)
  660. {
  661. offset = POWER_AC_BREAKER_INFO;
  662. r = read_reg(h, pch->info.addr, offset, tmp, 1);
  663. if (r < 0) {
  664. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, pbrd->chs);
  665. break;
  666. }
  667. pbrd->brk[0].samp.sw = (tmp[0]&BIT(0))?1:0;
  668. pbrd->brk[1].samp.sw = (tmp[0]&BIT(1))?1:0;
  669. if(pbrd->chs < 8)
  670. {
  671. offset = POWER_AC_THRESHOLD_L;
  672. r = read_reg(h, pch->info.addr, offset, tmp, pbrd->chs * 16);
  673. if(r) break;
  674. for (i=0; i<pbrd->chs; i++) {
  675. pch = &pbrd->pch[i];
  676. pch->thr.v_upper = ((tmp[1]<<16)|tmp[0])/100;
  677. pch->thr.v_lower = ((tmp[3]<<16)|tmp[2])/100;
  678. pch->thr.c_upper = ((tmp[5]<<16)|tmp[4])/100;
  679. pch->thr.p_upper = ((tmp[9]<<16)|tmp[8]);
  680. pch->thr.w_upper = ((tmp[13]<<16)|tmp[12]);
  681. }
  682. }else
  683. {
  684. offset = POWER_AC_THRESHOLD_L;
  685. r = read_reg(h, pch->info.addr, offset, tmp, 7 * 16);
  686. if(r) break;
  687. for (i=0; i< 7; i++) {
  688. pch = &pbrd->pch[i];
  689. pch->thr.v_upper = ((tmp[1]<<16)|tmp[0])/100;
  690. pch->thr.v_lower = ((tmp[3]<<16)|tmp[2])/100;
  691. pch->thr.c_upper = ((tmp[5]<<16)|tmp[4])/100;
  692. pch->thr.p_upper = ((tmp[9]<<16)|tmp[8]);
  693. pch->thr.w_upper = ((tmp[13]<<16)|tmp[12]);
  694. }
  695. offset = POWER_AC_THRESHOLD_L + (16*7);
  696. r = read_reg(h, pch->info.addr, offset, tmp, (pbrd->chs-7) * 16);
  697. for (i=0; i< (pbrd->chs-7); i++) {
  698. pch = &pbrd->pch[i+7];
  699. pch->thr.v_upper = ((tmp[1]<<16)|tmp[0])/100;
  700. pch->thr.v_lower = ((tmp[3]<<16)|tmp[2])/100;
  701. pch->thr.c_upper = ((tmp[5]<<16)|tmp[4])/100;
  702. pch->thr.p_upper = ((tmp[9]<<16)|tmp[8]);
  703. pch->thr.w_upper = ((tmp[13]<<16)|tmp[12]);
  704. }
  705. }
  706. offset = POWER_AC_OPEN_DELAY_TIME_L;
  707. r =read_reg(h, pch->info.addr, offset, tmp, pbrd->chs);
  708. for(int i = 0; i < pbrd->chs;i++)
  709. {
  710. pch = &pbrd->pch[i];
  711. pch->info.open_delay = tmp[i] / 1000;
  712. }
  713. offset = POWER_AC_CLOSE_DELAY_TIME_L;
  714. r =read_reg(h, pch->info.addr, offset, tmp, pbrd->chs);
  715. for(int i = 0; i < pbrd->chs;i++)
  716. {
  717. pch = &pbrd->pch[i];
  718. pch->info.close_delay = tmp[i] / 1000;
  719. }
  720. }
  721. }
  722. break;
  723. case DCPDU_TYPE:
  724. {
  725. uint32_t flag;
  726. //uint16_t *ptmp = tmp + 32;
  727. offset = POWER_DC_OUT_INFO;
  728. r = read_reg(h, pbrd->addr, offset, tmp, 32);
  729. if (r<0) {
  730. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 32);
  731. break;
  732. }
  733. offset = POWER_DC_OUT_INFO + 16;
  734. uint16_t *ptmp = tmp + 32;
  735. r = read_reg(h, pbrd->addr, offset, ptmp, 32);
  736. if (r<0) {
  737. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 32);
  738. break;
  739. }
  740. for (i = 0; i < pbrd->chs; i++) {
  741. int Index = i * 8;
  742. pwr = &pbrd->pch[i].power[0];
  743. float value = (tmp[1 + Index] << 16) + tmp[0 + Index];
  744. pwr->voltage = value / 100;
  745. value = (tmp[3 + Index] << 16) + tmp[2 + Index];
  746. pwr->current = value / 100;
  747. value = (tmp[5 + Index] << 16) + tmp[4 + Index];
  748. pwr->power = value;
  749. value = (tmp[7 + Index] << 16) + tmp[6 + Index];
  750. pwr->consump = value;
  751. pwr->freq = 0;
  752. pwr->factor = 1;
  753. //pbrd->pch[i].time = tm;
  754. }
  755. offset = POWER_DC_STAT_INFO;
  756. r = read_reg(h, pbrd->addr, offset, tmp, 2);
  757. if (r<0) {
  758. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 2);
  759. break;
  760. }
  761. for (i = 0; i < pbrd->chs; i++) {
  762. flag = (tmp[1] << 16) + tmp[0];
  763. pbrd->pch[i].status = (flag >> i) & 0x1;
  764. }
  765. // 获取报警状态
  766. offset = POWER_DC_WARNING;
  767. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  768. if (r<0) {
  769. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 16);
  770. break;
  771. }
  772. for (i = 0; i < pbrd->chs; i++) {
  773. int Index = i * 2;
  774. pch = &pbrd->pch[i];
  775. pch->alarm.v_upper = (tmp[0+Index] & BIT(0))?1:0;
  776. pch->alarm.v_lower = (tmp[0+Index] & BIT(1))?1:0;
  777. pch->alarm.c_upper = (tmp[0+Index] & BIT(2))?1:0;
  778. pch->alarm.p_upper = (tmp[0+Index] & BIT(3))?1:0;
  779. pch->alarm.w_upper = (tmp[0+Index] & BIT(4))?1:0;
  780. }
  781. offset = POWER_DC_THRESHOLD_VOL_MAX;
  782. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  783. for (i = 0; i < pbrd->chs; i++) {
  784. int Index = i * 2;
  785. pch = &pbrd->pch[i];
  786. pch->thr.v_upper = ((tmp[1+Index] << 16)+tmp[0+Index])/100;
  787. }
  788. offset = POWER_DC_THRESHOLD_VOL_MIN;
  789. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  790. for (i = 0; i < pbrd->chs; i++) {
  791. int Index = i * 2;
  792. pch = &pbrd->pch[i];
  793. pch->thr.v_lower = ((tmp[1+Index] << 16)+tmp[0+Index])/100;
  794. }
  795. offset = POWER_DC_THRESHOLD_CUR_MAX;
  796. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  797. for (i = 0; i < pbrd->chs; i++) {
  798. int Index = i * 2;
  799. pch = &pbrd->pch[i];
  800. pch->thr.c_upper = ((tmp[1+Index] << 16)+tmp[0+Index])/100;
  801. }
  802. offset = POWER_DC_THRESHOLD_POWER_MAX;
  803. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  804. for (i = 0; i < pbrd->chs; i++) {
  805. int Index = i * 2;
  806. pch = &pbrd->pch[i];
  807. pch->thr.p_upper = ((tmp[1+Index] << 16)+tmp[0+Index]);
  808. }
  809. offset = POWER_DC_THRESHOLD_POWERCON_MAX;
  810. r = read_reg(h, pbrd->addr, offset, tmp, 16);
  811. for (i = 0; i < pbrd->chs; i++) {
  812. int Index = i * 2;
  813. pch = &pbrd->pch[i];
  814. pch->thr.w_upper = ((tmp[1+Index] << 16)+tmp[0+Index]);
  815. }
  816. }
  817. break;
  818. case TREE_AC_TYPE:
  819. {
  820. uint8_t v=0;
  821. offset = POWER_AC3_OUT_INFO;
  822. r = read_reg(h, pbrd->addr, offset, tmp, 80);
  823. if (r < 0) {
  824. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 80);
  825. break;
  826. }
  827. offset = POWER_AC3_OUT_INFO+40;
  828. uint16_t* ptmp=tmp+80;
  829. r = read_reg(h, pbrd->addr, offset, ptmp, 64);
  830. if (r < 0) {
  831. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 64);
  832. break;
  833. }
  834. for (i=0; i<pbrd->chs; i++) {
  835. if(h->prod->type==PDU_AC_I3O3) {
  836. int index_2 = 0;
  837. for(int j = 0; j < 3;j++)
  838. {
  839. pwr = &pbrd->pch[i].power[j];
  840. index_2 = (j*16) + (48*i);
  841. pwr->voltage = ((tmp[1+index_2] << 16) + tmp[0+index_2])/100;
  842. pwr->current = ((tmp[3+index_2] << 16) + tmp[2+index_2])/100;
  843. pwr->power = ((tmp[5+index_2] << 16) + tmp[4+index_2]);
  844. pwr->freq = ((tmp[11+index_2] << 16) + tmp[10+index_2])/100;
  845. pwr->consump = ((tmp[13+index_2] << 16) + tmp[12+index_2]);
  846. pwr->factor = ((tmp[15+index_2] << 16) + tmp[14+index_2])/10;
  847. }
  848. }else{
  849. int Index = i * 16;
  850. pwr = &pbrd->pch[i].power[0];
  851. float value = (tmp[1+Index] << 16) + tmp[0+Index];
  852. pwr->voltage = value / 100;
  853. value = (tmp[3+Index] << 16) + tmp[2+Index];
  854. pwr->current = value / 100;
  855. value = (tmp[5+Index] << 16) + tmp[4+Index];
  856. pwr->power = value;
  857. value = (tmp[7+Index] << 16) + tmp[6+Index];
  858. value = (tmp[9+Index] << 16) + tmp[8+Index];
  859. value = (tmp[11+Index] << 16) + tmp[10+Index];
  860. pwr->freq = value / 100;
  861. value = (tmp[13+Index] << 16) + tmp[12+Index];
  862. pwr->consump = value ;
  863. value = (tmp[15+Index] << 16) + tmp[14+Index];
  864. pwr->factor = value / 10;
  865. //pbrd->pch[i].time = tm;
  866. }
  867. }
  868. //获取通道开关状态及零线状态
  869. offset = POWER_AC3_OUT_ENABLE;
  870. r = read_reg(h, pbrd->addr, offset, tmp, 20);
  871. if (r < 0) {
  872. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 20);
  873. break;
  874. }
  875. for (i=0; i<pbrd->chs; i++) {
  876. if(h->prod->type==PDU_AC_I3O3) {
  877. for(int j = 0; j < 3;j++)
  878. pbrd->pch[i].status = tmp[0+(j*2)+ (i*6)] & 0x01;
  879. pbrd->pch[i].nwire = tmp[18] & 0x01;
  880. }else {
  881. int Index = i * 2;
  882. pbrd->pch[i].status = tmp[0+Index] & 0x01;
  883. pbrd->pch[i].nwire = tmp[18] & 0x01;
  884. }
  885. }
  886. //获取故障状态
  887. offset = POWER_AC3_OUT_ERROR;
  888. r = read_reg(h, pbrd->addr, offset, tmp, 18);
  889. if (r < 0) {
  890. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, 18);
  891. break;
  892. }
  893. for (i=0; i<pbrd->chs; i++) {
  894. int Index = i * 2;
  895. pch = &pbrd->pch[i];
  896. pch->alarm.v_upper = (tmp[0+Index] & BIT(0))?1:0;
  897. pch->alarm.v_lower = (tmp[0+Index] & BIT(1))?1:0;
  898. pch->alarm.c_upper = (tmp[0+Index] & BIT(2))?1:0;
  899. pch->alarm.p_upper = (tmp[0+Index] & BIT(3))?1:0;
  900. pch->alarm.w_upper = (tmp[0+Index] & BIT(4))?1:0;
  901. }
  902. offset = POWER_AC3_ALARM_MISSING_PH;
  903. r = read_reg(h, pbrd->addr, offset, tmp, pbrd->chs);
  904. if (r < 0) {
  905. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, pbrd->chs);
  906. break;
  907. }
  908. v = 0;
  909. for(i = 0; i < 3; i++) {
  910. if(tmp[i * 2]>0) {
  911. v |= 1<<i;
  912. }
  913. }
  914. pbrd->ph_loss = v;
  915. offset = POWER_AC3_BREAKER_INFO;
  916. r = read_reg(h, pch->info.addr, offset, tmp, 1);
  917. if (r < 0) {
  918. LOGE("read_reg failed, addr:%d reg:0x%04x/%d cnt:%d\n", pbrd->addr, offset, offset, pbrd->chs);
  919. break;
  920. }
  921. pbrd->brk[0].samp.sw = (tmp[0]&BIT(0))?1:0;
  922. //pbrd->brk[0].samp.time = tm;
  923. // read v max
  924. offset = POWER_AC3_THRESHOLD_VOL_MAX;
  925. r = read_reg(h, pch->info.addr, offset, tmp, 18);
  926. for (i=0; i<pbrd->chs; i++)
  927. {
  928. if(h->prod->type==PDU_AC_I3O3) {
  929. int Index = i * 3;
  930. int ch_idx = pbrd->ch0-1+i/3;
  931. pch = &pbrd->pch[ch_idx];
  932. pch->thr.v_upper = ((tmp[Index+1] << 16) + (tmp[Index+0])) / 100;
  933. }
  934. else {
  935. pch = &pbrd->pch[i];
  936. pch->thr.v_upper = ((tmp[i+1] << 16) + (tmp[i+0])) / 100;
  937. }
  938. }
  939. offset = POWER_AC3_THRESHOLD_VOL_MIN;
  940. r = read_reg(h, pch->info.addr, offset, tmp, 18);
  941. for (i=0; i<pbrd->chs; i++)
  942. {
  943. if(h->prod->type==PDU_AC_I3O3) {
  944. int Index = i * 3;
  945. int ch_idx = pbrd->ch0-1+i/3;
  946. pch = &pbrd->pch[ch_idx];
  947. pch->thr.v_lower = ((tmp[Index+1] << 16) + (tmp[Index+0])) / 100;
  948. }
  949. else {
  950. pch = &pbrd->pch[i];
  951. pch->thr.v_lower = ((tmp[i+1] << 16) + (tmp[i+0])) / 100;
  952. }
  953. }
  954. offset = POWER_AC3_THRESHOLD_CUR_MAX;
  955. r = read_reg(h, pch->info.addr, offset, tmp, 18);
  956. for (i=0; i<pbrd->chs; i++)
  957. {
  958. if(h->prod->type==PDU_AC_I3O3) {
  959. int Index = i * 3;
  960. int ch_idx = pbrd->ch0-1+i/3;
  961. pch = &pbrd->pch[ch_idx];
  962. pch->thr.c_upper = ((tmp[Index+1] << 16) + (tmp[Index+0])) / 100;
  963. }
  964. else {
  965. pch = &pbrd->pch[i];
  966. pch->thr.c_upper = ((tmp[i+1] << 16) + (tmp[i+0])) / 100;
  967. }
  968. }
  969. offset = POWER_AC3_THRESHOLD_PWR_MAX;
  970. r = read_reg(h, pch->info.addr, offset, tmp, 18);
  971. for (i=0; i<pbrd->chs; i++)
  972. {
  973. if(h->prod->type==PDU_AC_I3O3) {
  974. int Index = i * 3;
  975. int ch_idx = pbrd->ch0-1+i/3;
  976. pch = &pbrd->pch[ch_idx];
  977. pch->thr.p_upper = ((tmp[Index+1] << 16) + (tmp[Index+0])) / 100;
  978. }
  979. else {
  980. pch = &pbrd->pch[i];
  981. pch->thr.p_upper = ((tmp[i+1] << 16) + (tmp[i+0])) / 100;
  982. }
  983. }
  984. offset = POWER_AC3_THRESHOLD_PWRCON_MAX;
  985. r = read_reg(h, pch->info.addr, offset, tmp, 18);
  986. for (i=0; i<pbrd->chs; i++)
  987. {
  988. if(h->prod->type==PDU_AC_I3O3) {
  989. int Index = i * 3;
  990. int ch_idx = pbrd->ch0-1+i/3;
  991. pch = &pbrd->pch[ch_idx];
  992. pch->thr.w_upper = ((tmp[Index+1] << 16) + (tmp[Index+0])) / 100;
  993. }
  994. else {
  995. pch = &pbrd->pch[i];
  996. pch->thr.w_upper = ((tmp[i+1] << 16) + (tmp[i+0])) / 100;
  997. }
  998. }
  999. }
  1000. break;
  1001. case AC_MULTI_S_TYPE:
  1002. case AC_MULTI_B_TYPE:
  1003. case DC_OUT_TYPE:
  1004. case DC_IN_TYPE:
  1005. default:
  1006. r = -1;
  1007. break;
  1008. }
  1009. if(r==0) {
  1010. threshold_proc(h, pbrd);
  1011. }
  1012. }
  1013. lock_off(h->lck);
  1014. return r;
  1015. }
  1016. static int power_copy(power_handle_t *h)
  1017. {
  1018. int i,r=-1;
  1019. power_all_t *pd=&h->all;
  1020. if(h->chs>0) {
  1021. if(!pd->pch || pd->chs!=h->chs) {
  1022. if(pd->pch) free(pd->pch);
  1023. pd->chs = 0;
  1024. pd->pch = malloc(sizeof(power_ch_t)*h->chs);
  1025. LOGD("channels back up ch_mem=%d\n",sizeof(power_ch_t)*h->chs);
  1026. }
  1027. if(pd->pch) {
  1028. pd->chs = h->chs;
  1029. for(i=0; i<pd->chs; i++) {
  1030. pd->pch[i] = *(h->pch[i]);
  1031. }
  1032. }
  1033. }
  1034. pd->ttl = h->ttl;
  1035. return 0;
  1036. }
  1037. static uint32_t count = 0;
  1038. static int board_query(power_handle_t *h)
  1039. {
  1040. int i,r;
  1041. count++;
  1042. uint8_t flag = 0;
  1043. if(count == SECOND_MIL)
  1044. {
  1045. flag =1;
  1046. count = 0;
  1047. }
  1048. for(i=1; i<(h->cnt+1); i++) {
  1049. r = board_read(h, h->pbrd[i],flag);
  1050. }
  1051. total_proc(h);
  1052. power_copy(h);
  1053. usleep(10000);
  1054. return r;
  1055. }
  1056. //rt_tick_t start_tick = 0;
  1057. static void power_thread(void *arg)
  1058. {
  1059. int r;
  1060. board_data_t *pbrd=NULL;
  1061. thread_handle_t *th=(thread_handle_t*)arg;
  1062. power_handle_t *h=(power_handle_t*)th->attr->arg;;
  1063. while(th->quit==0) {
  1064. board_query(h);
  1065. }
  1066. }
  1067. int power_init(void)
  1068. {
  1069. power_handle_t *h=&pwrHandle;
  1070. paras_data_t *p=paras_get();
  1071. mb_para_t para={
  1072. .mode = MB_MODE_MASTER,
  1073. .type = MB_TYPE_RTU,
  1074. .para = {
  1075. .rtu = {
  1076. .dev = POWER_PORT, //设备名
  1077. .baudrate = 115200, //波特率
  1078. .parity = 0, //校验位
  1079. .pin = -1, //收发控制引脚, <0 表示不使用
  1080. .lvl = 0, //发送控制电平
  1081. }
  1082. }
  1083. };
  1084. memset(h, 0, sizeof(power_handle_t));
  1085. h->lck = lock_init();
  1086. h->cur_addr = 0;
  1087. h->brd_max = POWER_BOARD_MAX;
  1088. h->prod = &p->prod;
  1089. power_scan();
  1090. thread_start(THREAD_ID_POWER, power_thread, h);
  1091. return 0;
  1092. }
  1093. int power_deinit(void)
  1094. {
  1095. power_handle_t *h=&pwrHandle;
  1096. lock_deinit(h->lck);
  1097. return 0;
  1098. }
  1099. static power_ch_t* get_ch(power_handle_t *h, uint8_t ch)
  1100. {
  1101. if(!h->chs || !h->pch[ch]) {
  1102. return NULL;
  1103. }
  1104. return h->pch[ch];
  1105. }
  1106. int power_get_ch(uint8_t ch, power_ch_t *pch)
  1107. {
  1108. int r=-1;
  1109. power_ch_t *p=NULL;
  1110. power_handle_t *h=&pwrHandle;
  1111. lock_on(h->lck);
  1112. p = get_ch(h, ch);
  1113. if(p && pch) {
  1114. *pch = *p;
  1115. r = 0;
  1116. }
  1117. lock_off(h->lck);
  1118. return r;
  1119. }
  1120. int power_get_board(board_data_t *pbrd)
  1121. {
  1122. power_handle_t *h=&pwrHandle;
  1123. lock_on(h->lck);
  1124. if(!pbrd || !h->cnt || !h->pbrd[pbrd->addr]) {
  1125. lock_off(h->lck);
  1126. return -1;
  1127. }
  1128. *pbrd = *h->pbrd[pbrd->addr];
  1129. lock_off(h->lck);
  1130. return 0;
  1131. }
  1132. int power_set(int ch, power_ch_t *pch)
  1133. {
  1134. power_handle_t *h=&pwrHandle;
  1135. lock_on(h->lck);
  1136. if(!pch || !h->chs || !h->pch[pch->info.ch]) {
  1137. lock_off(h->lck);
  1138. return -1;
  1139. }
  1140. *h->pch[pch->info.ch] = *pch;
  1141. lock_off(h->lck);
  1142. return 0;
  1143. }
  1144. static int power_map(power_handle_t *h, int chs)
  1145. {
  1146. int i,j,r,idx=1;
  1147. board_data_t *pbrd=NULL;
  1148. uint8_t pwr_type=paras_get()->prod.type;
  1149. if(chs>0) {
  1150. h->chs = 0;
  1151. //h->pch = (power_ch_t**)calloc(1, sizeof(power_ch_t*)*chs);
  1152. // if(h->pch) {
  1153. h->chs = chs;
  1154. h->pch[0] = &h->ch0;
  1155. strcpy(h->pch[0]->info.name, "ALL");
  1156. for(i=1; i<=h->brd_max; i++) {
  1157. pbrd = h->pbrd[i];
  1158. if(pbrd) {
  1159. for(j=0; j<pbrd->chs; j++) {
  1160. h->pch[idx] = &h->pbrd[i]->pch[j];
  1161. h->pch[idx]->pbrd = h->pbrd[i];
  1162. sprintf(h->pch[idx]->info.name, "CH%d", idx);
  1163. idx++;
  1164. }
  1165. }
  1166. }
  1167. // }
  1168. }
  1169. return 0;
  1170. }
  1171. static int power_clear(power_handle_t *h)
  1172. {
  1173. int i,j;
  1174. memset(&h->ch0, 0, sizeof(h->ch0));
  1175. for(i=0; i<=h->brd_max; i++) {
  1176. if(h->pbrd[i]) {
  1177. for(j=0; j<h->pbrd[i]->chs; j++) {
  1178. if(h->pbrd[i]->pch) {
  1179. free(h->pbrd[i]->pch);
  1180. h->pbrd[i]->pch = NULL;
  1181. }
  1182. h->pbrd[i]->chs = 0;
  1183. }
  1184. free(h->pbrd[i]);
  1185. h->pbrd[i] = NULL;
  1186. }
  1187. }
  1188. memset(h->key, 0, sizeof(h->key));
  1189. h->cnt = 0;
  1190. h->cur_addr = 0;
  1191. return 0;
  1192. }
  1193. int power_scan(void)
  1194. {
  1195. int r,i,j,total_chs=1;
  1196. int ch_idx=1,brd_idx=0;
  1197. power_ch_t *pch=NULL;
  1198. board_key_t *pkey=NULL;
  1199. board_data_t *pbrd=NULL;
  1200. power_handle_t *h=&pwrHandle;
  1201. uint16_t times,nGroups=h->prod->ch_delay;
  1202. uint16_t flag_full = 0;
  1203. paras_data_t *p=paras_get();
  1204. lock_on(h->lck);
  1205. power_clear(h);
  1206. pch = &h->ch0;
  1207. pch->info.addr = 0;
  1208. pch->info.ch = 0;
  1209. int ch_count = 0;
  1210. for(i=1; i<=h->brd_max; i++) {
  1211. r = get_key(h, i, &h->key[i]);
  1212. if(r==0) {
  1213. LOGD("___ power_scan addr %d ok, type: %d, chs: %d\n", i, h->key[i].type, h->key[i].chs);
  1214. h->cnt++;
  1215. }
  1216. else {
  1217. LOGE("___ power_scan addr %d failed\n", i);
  1218. }
  1219. }
  1220. for(i=1; i<h->brd_max; i++) {
  1221. pkey = &h->key[i];
  1222. if(pkey->chs>0) {
  1223. pbrd = (board_data_t*)calloc(1, sizeof(board_data_t));
  1224. if(!pbrd) {
  1225. LOGE("___ power_scan, calloc pbrd %d failed\n", i);
  1226. return -1;
  1227. }
  1228. //pbrd->fn = board_fn;
  1229. pbrd->type = pkey->type;
  1230. if(pkey->type == 1 || pkey->type == 2)
  1231. {
  1232. pbrd->fn = board_fn_ac;
  1233. }else if(pkey->type == PDU_AC_I3O3)
  1234. {
  1235. pbrd->fn = board_fn_ac3;
  1236. }else
  1237. {
  1238. pbrd->fn = board_fn_dc;
  1239. }
  1240. pbrd->chs = pkey->chs;
  1241. pbrd->addr = i;
  1242. pbrd->ch0 = ch_idx;
  1243. if((ch_count+ pkey->chs) >= 32)
  1244. {
  1245. pkey->chs = 31 - ch_count;
  1246. flag_full = 1;
  1247. }
  1248. pch = (power_ch_t*)calloc(1, sizeof(power_ch_t)*pkey->chs);
  1249. ch_count += (pkey->chs);
  1250. if(!pch) {
  1251. LOGE("___ power_scan, calloc pch failed\n");
  1252. return -1;
  1253. }
  1254. LOGD("__ power init board %d, b_mem=%d ch_mem=%d sizeof(power_ch_t)=%d\n",i,sizeof(board_data_t),sizeof(power_ch_t)*pkey->chs,sizeof(power_ch_t));
  1255. for(j=0; j<pkey->chs; j++) {
  1256. pch[j].info.addr = i;
  1257. pch[j].info.sch = j; //序号从0开始
  1258. pch[j].info.type = pkey->type;
  1259. if(h->prod->type==PDU_AC_I3O3) {
  1260. pch[j].info.ch = ch_idx; //序号从1开始, 发给控制板需从0开始
  1261. pch[j].info.ph_id = j+1; //可以不使用
  1262. }else if(h->prod->type == PDU_AC_I3O2)
  1263. {
  1264. pch[j].info.ch = ch_idx+j;
  1265. pch[j].info.ph_id = p->phase_seq_2.phase_left[ch_idx] -'0';
  1266. pch[j].info.ph_val = p->phase_seq_2.phase_right[ch_idx] -'0'; //作为双火线的右边相
  1267. }
  1268. else {
  1269. pch[j].info.ch = ch_idx+j; //序号从1开始, 发给控制板需从0开始
  1270. if(h->prod->type==PDU_AC_I3O1 || h->prod->type == PDU_AC_I3O1_H)
  1271. {
  1272. pch[j].info.ph_id = p->phase_seq.phase_seq[ch_idx] -'0';
  1273. } else
  1274. pch[j].info.ph_id = 0;
  1275. }
  1276. times = (pch[j].info.ch%nGroups)?pch[j].info.ch:nGroups;
  1277. pch[j].info.open_delay = times;
  1278. pch[j].info.close_delay = times;
  1279. }
  1280. if(pbrd->type==AC_SINGLE_S_TYPE || pbrd->type==AC_SINGLE_B_TYPE) {
  1281. pbrd->brk[0].info.addr = pbrd->brk[1].info.addr = pbrd->addr;
  1282. }
  1283. else if(pbrd->type==TREE_AC_TYPE) {
  1284. pbrd->brk[0].info.addr = pbrd->addr;
  1285. }
  1286. // if(h->prod->type==PDU_AC_I3O3) {
  1287. // ch_idx += pkey->chs/3;
  1288. // }
  1289. // else {
  1290. ch_idx += pkey->chs;
  1291. // }
  1292. brd_idx++;
  1293. pbrd->pch = pch;
  1294. h->pbrd[i] = pbrd;
  1295. total_chs += pkey->chs;
  1296. if(flag_full)
  1297. break;
  1298. }
  1299. }
  1300. power_map(h, total_chs);
  1301. lock_off(h->lck);
  1302. return 0;
  1303. }
  1304. int power_reset(void)
  1305. {
  1306. int i,r=-1;
  1307. uint16_t offset = 0;
  1308. power_handle_t *h=&pwrHandle;
  1309. board_data_t *pbrd=NULL;
  1310. lock_on(h->lck);
  1311. for(i=0; i<=h->brd_max; i++) {
  1312. pbrd = h->pbrd[i];
  1313. if(pbrd) {
  1314. switch(pbrd->type) {
  1315. case AC_SINGLE_S_TYPE:
  1316. case AC_SINGLE_B_TYPE:
  1317. {
  1318. uint16_t tmp[8];
  1319. offset = POWER_AC_CH_STAT_L;
  1320. for(i=1; i<=pbrd->chs; i++) {
  1321. tmp[i] = pbrd->pch[i].status;
  1322. }
  1323. r = write_reg(h, pbrd->addr, offset, tmp+1, pbrd->chs-1);
  1324. }
  1325. break;
  1326. case DCPDU_TYPE:
  1327. {
  1328. offset = POWER_DC_ALARM_CTRL_TOTAL;
  1329. }
  1330. break;
  1331. case TREE_AC_TYPE:
  1332. {
  1333. uint16_t data_temp[20];
  1334. offset = POWER_AC3_RESET_CONSUMP;
  1335. data_temp[0] = data_temp[1] = data_temp[2] = 1;
  1336. r = write_reg(h, pbrd->addr, offset, data_temp, 3);
  1337. if (r<0) {
  1338. break;
  1339. }
  1340. //初始化报警阈值
  1341. uint32_t value = 0;
  1342. memset(data_temp, 0, sizeof(data_temp));
  1343. offset = POWER_AC3_THRESHOLD_VOL_MAX;
  1344. r = write_reg(h, pbrd->addr, offset, data_temp, 18);
  1345. if (r<0) {
  1346. break;
  1347. }
  1348. offset = POWER_AC3_THRESHOLD_VOL_MIN;
  1349. r = write_reg(h, pbrd->addr, offset, data_temp, 18);
  1350. if (r<0) {
  1351. break;
  1352. }
  1353. offset = POWER_AC3_THRESHOLD_CUR_MAX;
  1354. r = write_reg(h, pbrd->addr, offset, data_temp, 18);
  1355. if (r<0) {
  1356. break;
  1357. }
  1358. offset = POWER_AC3_THRESHOLD_PWR_MAX;
  1359. r = write_reg(h, pbrd->addr, offset, data_temp, 18);
  1360. if (r<0) {
  1361. break;
  1362. }
  1363. offset = POWER_AC3_THRESHOLD_PWRCON_MAX;
  1364. r = write_reg(h, pbrd->addr, offset, data_temp, 18);
  1365. if (r<0) {
  1366. break;
  1367. }
  1368. for (i=1; i<=pbrd->chs; i++) {
  1369. memset(data_temp, 0, sizeof(data_temp));
  1370. offset = POWER_AC3_OUT_ENABLE + i;
  1371. data_temp[0] = pbrd->pch[i].status;
  1372. r = write_reg(h, pbrd->addr, offset, data_temp, 2);
  1373. }
  1374. }
  1375. break;
  1376. }
  1377. }
  1378. }
  1379. lock_off(h->lck);
  1380. return r;
  1381. }
  1382. int power_set_ch_sw_n(power_ch_t *pch)
  1383. {
  1384. int r;
  1385. uint16_t st= pch->status,offset,tmp[2]={0};
  1386. power_handle_t *h=&pwrHandle;
  1387. lock_on(h->lck);
  1388. if (pch->thr.en.v_upper_en == 1)
  1389. st |= ENABLE_AC3_V_UP;
  1390. if (pch->thr.en.v_lower_en == 1)
  1391. st |= ENABLE_AC3_V_DOWN;
  1392. if (pch->thr.en.c_upper_en == 1)
  1393. st |= ENABLE_AC3_C_UP;
  1394. if (pch->thr.en.p_upper_en == 1)
  1395. st |= ENABLE_AC3_P_UP;
  1396. if (pch->thr.en.w_upper_en == 1)
  1397. st |= ENABLE_AC3_W_UP;
  1398. switch(pch->info.type) {
  1399. case AC_SINGLE_S_TYPE:
  1400. case AC_SINGLE_B_TYPE:
  1401. {
  1402. offset = POWER_AC_CH_STAT_L + pch->info.sch;
  1403. tmp[0] = st;
  1404. r = write_reg(h, pch->info.addr, offset, tmp, 1);
  1405. }
  1406. break;
  1407. case DCPDU_TYPE:
  1408. {
  1409. uint16_t mask;
  1410. offset = POWER_DC_STAT_INFO+pch->info.ch-1;
  1411. mask = ~(1 << (pch->info.ch-1));
  1412. tmp[0] &= mask;
  1413. tmp[0] |= (st << (pch->info.ch-1));
  1414. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1415. }
  1416. break;
  1417. case TREE_AC_TYPE:
  1418. {
  1419. uint16_t reg;
  1420. uint8_t type=paras_get()->prod.type;
  1421. if(type==PDU_AC_I3O3 || type==PDU_AC_I3O1) {
  1422. reg = POWER_AC3_CH_OUT_ENABLE;
  1423. }
  1424. else {
  1425. reg = POWER_AC3_OUT_ENABLE;
  1426. }
  1427. tmp[0] = st;
  1428. offset = reg+pch->info.ch-1;
  1429. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1430. }
  1431. break;
  1432. }
  1433. lock_off(h->lck);
  1434. }
  1435. int power_set_ch_sw(uint8_t ch, uint8_t on)
  1436. {
  1437. int r;
  1438. power_ch_t *pch;
  1439. power_handle_t *h=&pwrHandle;
  1440. uint16_t offset,tmp[2]={0},st=on;
  1441. lock_on(h->lck);
  1442. pch = get_ch(h, ch);
  1443. if(!pch) {
  1444. lock_off(h->lck);
  1445. return -1;
  1446. }
  1447. if (pch->thr.en.v_upper_en == 1)
  1448. st |= ENABLE_AC3_V_UP;
  1449. if (pch->thr.en.v_lower_en == 1)
  1450. st |= ENABLE_AC3_V_DOWN;
  1451. if (pch->thr.en.c_upper_en == 1)
  1452. st |= ENABLE_AC3_C_UP;
  1453. if (pch->thr.en.p_upper_en == 1)
  1454. st |= ENABLE_AC3_P_UP;
  1455. if (pch->thr.en.w_upper_en == 1)
  1456. st |= ENABLE_AC3_W_UP;
  1457. switch(pch->info.type) {
  1458. case AC_SINGLE_S_TYPE:
  1459. case AC_SINGLE_B_TYPE:
  1460. {
  1461. offset = POWER_AC_CH_STAT_L + pch->info.sch;
  1462. tmp[0] = st;;
  1463. r = write_reg(h, pch->info.addr, offset, tmp, 1);
  1464. }
  1465. break;
  1466. case DCPDU_TYPE:
  1467. {
  1468. uint16_t mask;
  1469. offset = POWER_DC_STAT_INFO+pch->info.sch;
  1470. mask = ~(1 << (pch->info.ch-1));
  1471. tmp[0] &= mask;
  1472. tmp[0] |= (st << (pch->info.ch-1));
  1473. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1474. }
  1475. break;
  1476. case TREE_AC_TYPE:
  1477. {
  1478. uint16_t reg;
  1479. uint8_t type=paras_get()->prod.type;
  1480. if(type==PDU_AC_I3O3 || type==PDU_AC_I3O1) {
  1481. reg = POWER_AC3_CH_OUT_ENABLE;
  1482. }
  1483. else {
  1484. reg = POWER_AC3_OUT_ENABLE;
  1485. }
  1486. tmp[0] = st;
  1487. offset = reg + +pch->info.sch;
  1488. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1489. }
  1490. break;
  1491. }
  1492. lock_off(h->lck);
  1493. return r;
  1494. }
  1495. int power_set_board_sw(uint8_t addr, uint8_t on)
  1496. {
  1497. int i,r;
  1498. power_ch_t *pch;
  1499. board_data_t *pbrd;
  1500. power_handle_t *h=&pwrHandle;
  1501. pbrd = h->pbrd[addr];
  1502. if(!pbrd) {
  1503. return -1;
  1504. }
  1505. for(i=0; i<pbrd->chs; i++) {
  1506. power_set_ch_sw(pbrd->pch[i].info.ch, on);
  1507. }
  1508. return 0;
  1509. }
  1510. int power_set_all_sw(uint8_t on)
  1511. {
  1512. int i,r;
  1513. power_handle_t *handle=&pwrHandle;
  1514. if(handle->cnt > 0)
  1515. {
  1516. for(int i = 1 ; i <= handle->cnt;i++)
  1517. {
  1518. if(handle->pbrd[i])
  1519. {
  1520. handle->pbrd[i]->fn.set_all(on,handle->pbrd[i]);
  1521. }
  1522. }
  1523. }
  1524. return 0;
  1525. }
  1526. int power_set_alarm(power_ch_t *pch)
  1527. {
  1528. int r=0;
  1529. uint16_t offset = 0;
  1530. uint16_t nStatus = 0;
  1531. power_handle_t *h=&pwrHandle;
  1532. lock_on(h->lck);
  1533. switch(pch->info.type) {
  1534. case AC_SINGLE_S_TYPE:
  1535. case AC_SINGLE_B_TYPE:
  1536. {
  1537. if (pch->info.ch==0) {
  1538. offset = POWER_AC_ALARM_CTRL_TOTAL;
  1539. }
  1540. else {
  1541. offset = POWER_AC_ALARM_CTRL + pch->info.ch-1;
  1542. }
  1543. }
  1544. break;
  1545. case DCPDU_TYPE:
  1546. {
  1547. if (pch->info.ch==0) {
  1548. offset = POWER_DC_ALARM_CTRL_TOTAL;
  1549. }
  1550. else {
  1551. offset = POWER_DC_ALARM_CTRL + pch->info.ch-1;
  1552. }
  1553. }
  1554. break;
  1555. case TREE_AC_TYPE:
  1556. {
  1557. if (pch->info.ch==0) {
  1558. offset = POWER_AC3_ALARM_CTRL_TOTAL;
  1559. }
  1560. else {
  1561. offset = POWER_AC3_ALARM_CTRL + pch->info.ch-1;
  1562. }
  1563. }
  1564. break;
  1565. default:
  1566. r = -1;
  1567. }
  1568. // if(r==0) {
  1569. // if(pch->thr.v_upper.act==ALARM_ACT_CLOSE_CH) nStatus |= BIT(1);
  1570. // if(pch->thr.v_lower.act==ALARM_ACT_CLOSE_CH) nStatus |= BIT(2);
  1571. // if(pch->thr.c_upper.act==ALARM_ACT_CLOSE_CH) nStatus |= BIT(0);
  1572. // if(pch->thr.p_upper.act==ALARM_ACT_CLOSE_CH) nStatus |= BIT(3);
  1573. // if(pch->thr.w_upper.act==ALARM_ACT_CLOSE_CH) nStatus |= BIT(4);
  1574. // r = write_reg(h, pch->info.addr, offset, &nStatus, 1);
  1575. // }
  1576. lock_off(h->lck);
  1577. return r;
  1578. }
  1579. int power_get_threshold(power_ch_t *pch)
  1580. {
  1581. int i,r=0;
  1582. uint16_t offset;
  1583. power_ch_t *pch2=NULL;
  1584. power_handle_t *h=&pwrHandle;
  1585. lock_on(h->lck);
  1586. pch2 = get_ch(h, pch->info.ch);
  1587. pch2->thr = pch->thr;
  1588. switch(pch->info.type) {
  1589. case AC_SINGLE_S_TYPE:
  1590. case AC_SINGLE_B_TYPE:
  1591. {
  1592. uint16_t offset = 0;
  1593. uint32_t temp = 0 ;
  1594. uint16_t buffer[16] = {0};
  1595. if(pch->info.ch==0) {
  1596. offset = POWER_AC_TOTAL_THRESHOLD;
  1597. }
  1598. else {
  1599. offset = POWER_AC_THRESHOLD_L+(pch->info.ch-1)*16;
  1600. }
  1601. r = read_reg(h, pch->info.addr, offset, buffer, 16);
  1602. if(r) break;
  1603. pch->thr.v_upper = ((buffer[1]<<16)|buffer[0])/100;
  1604. pch->thr.v_lower = ((buffer[3]<<16)|buffer[2])/100;
  1605. pch->thr.c_upper = ((buffer[5]<<16)|buffer[4])/100;
  1606. pch->thr.p_upper = ((buffer[9]<<16)|buffer[8])/100;
  1607. pch->thr.w_upper = ((buffer[13]<<16)|buffer[12])/100;
  1608. }
  1609. break;
  1610. case DCPDU_TYPE:
  1611. {
  1612. uint16_t temp[4];
  1613. uint32_t value;
  1614. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_VOL_MAX:POWER_DC_THRESHOLD_VOL_MAX;
  1615. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1616. if(r) break;
  1617. pch->thr.v_upper = ((temp[1]<<16)|temp[0])/100;
  1618. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_VOL_MIN:POWER_DC_THRESHOLD_VOL_MIN;
  1619. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1620. if(r) break;
  1621. pch->thr.v_lower = ((temp[1]<<16)|temp[0])/100;
  1622. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_CUR_MAX:POWER_DC_THRESHOLD_CUR_MAX;
  1623. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1624. if(r) break;
  1625. pch->thr.c_upper = ((temp[1]<<16)|temp[0])/100;
  1626. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_PWR_MAX:POWER_DC_THRESHOLD_POWER_MAX;
  1627. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1628. if(r) break;
  1629. pch->thr.p_upper = ((temp[1]<<16)|temp[0])/100;
  1630. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_PWRCON_MAX:POWER_DC_THRESHOLD_POWERCON_MAX;
  1631. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1632. if(r) break;
  1633. pch->thr.w_upper = ((temp[1]<<16)|temp[0])/100;
  1634. }
  1635. break;
  1636. case TREE_AC_TYPE:
  1637. {
  1638. uint16_t temp[4];
  1639. uint32_t value;
  1640. if(pch->info.ch==0) {
  1641. offset = POWER_AC3_THRESHOLD_IN;
  1642. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1643. if(r) break;
  1644. pch->thr.v_upper = ((temp[1]<<16)|temp[0])/100;
  1645. r = read_reg(h, pch->info.addr, offset+1, temp, 2);
  1646. if(r) break;
  1647. pch->thr.v_lower = ((temp[1]<<16)|temp[0])/100;
  1648. r = read_reg(h, pch->info.addr, offset+2, temp, 2);
  1649. if(r) break;
  1650. pch->thr.c_upper = ((temp[1]<<16)|temp[0])/100;
  1651. r = read_reg(h, pch->info.addr, offset+3, temp, 2);
  1652. if(r) break;
  1653. pch->thr.p_upper = ((temp[1]<<16)|temp[0])/100;
  1654. r = read_reg(h, pch->info.addr, offset+4, temp, 2);
  1655. pch->thr.w_upper = ((temp[1]<<16)|temp[0])/100;
  1656. }
  1657. else {
  1658. offset = POWER_AC3_THRESHOLD_VOL_MAX;
  1659. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1660. if(r) break;
  1661. pch->thr.v_upper = ((temp[1]<<16)|temp[0])/100;
  1662. offset = POWER_AC3_THRESHOLD_VOL_MIN;
  1663. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1664. if(r) break;
  1665. pch->thr.v_lower = ((temp[1]<<16)|temp[0])/100;
  1666. offset = POWER_AC3_THRESHOLD_CUR_MAX;
  1667. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1668. if(r) break;
  1669. pch->thr.c_upper = ((temp[1]<<16)|temp[0])/100;
  1670. offset = POWER_AC3_THRESHOLD_PWR_MAX;
  1671. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1672. if(r) break;
  1673. pch->thr.p_upper = ((temp[1]<<16)|temp[0]);
  1674. offset = POWER_AC3_THRESHOLD_VOL_MAX;
  1675. r = read_reg(h, pch->info.addr, offset, temp, 2);
  1676. if(r) break;
  1677. pch->thr.p_upper = ((temp[1]<<16)|temp[0]);
  1678. }
  1679. }
  1680. break;
  1681. default:
  1682. r = -1;
  1683. break;
  1684. }
  1685. lock_off(h->lck);
  1686. return r;
  1687. }
  1688. int power_set_threshold(power_ch_t *pch)
  1689. {
  1690. int r=0;
  1691. uint16_t offset;
  1692. power_ch_t *pch2=NULL;
  1693. power_handle_t *h=&pwrHandle;
  1694. lock_on(h->lck);
  1695. pch2 = get_ch(h, pch->info.ch);
  1696. pch2->thr = pch->thr;
  1697. switch(pch->info.type) {
  1698. case AC_SINGLE_S_TYPE:
  1699. case AC_SINGLE_B_TYPE:
  1700. {
  1701. uint16_t offset = 0;
  1702. uint32_t data_temp = 0 ;
  1703. uint16_t data_buf[16] = {0};
  1704. //电压上限
  1705. data_temp = (pch->thr.v_upper*100);
  1706. data_buf[0] = data_temp;
  1707. data_buf[1] = data_temp>>16;
  1708. //电压下限
  1709. data_temp = (pch->thr.v_lower*100);
  1710. data_buf[2] = data_temp;
  1711. data_buf[3] = data_temp>>16;
  1712. //电流上限
  1713. data_temp = (pch->thr.c_upper*100);
  1714. data_buf[4] = data_temp;
  1715. data_buf[5] = data_temp>>16;
  1716. //电流下限
  1717. data_temp = (0);
  1718. data_buf[6] = data_temp;
  1719. data_buf[7] = data_temp>>16;
  1720. //功率上限
  1721. data_temp = (pch->thr.p_upper);
  1722. data_buf[8] = data_temp;
  1723. data_buf[9] = data_temp>>16;
  1724. //功率下限
  1725. data_temp = 0;
  1726. data_buf[10] = data_temp;
  1727. data_buf[11] = data_temp>>16;
  1728. //电能上限
  1729. data_temp = (pch->thr.w_upper);
  1730. data_buf[12] = data_temp;
  1731. data_buf[13] = data_temp>>16;
  1732. //电能下限
  1733. data_temp = 0;
  1734. data_buf[14] = data_temp;
  1735. data_buf[15] = data_temp>>16;
  1736. if(pch->info.ch==0) {
  1737. offset = POWER_AC_TOTAL_THRESHOLD;
  1738. }
  1739. else {
  1740. offset = POWER_AC_THRESHOLD_L+(pch->info.sch)*16;
  1741. }
  1742. r = write_reg(h, pch->info.addr, offset, data_buf, 16);
  1743. if(r==0) {
  1744. r = power_set_alarm(pch);
  1745. }
  1746. }
  1747. break;
  1748. case DCPDU_TYPE:
  1749. {
  1750. uint16_t data_temp[4];
  1751. uint32_t value;
  1752. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_VOL_MAX:POWER_DC_THRESHOLD_VOL_MAX;
  1753. value = pch->thr.v_upper * 100;
  1754. data_temp[0] = value & 0XFFFF;
  1755. data_temp[1] = (value >> 16) & 0xFFFF;
  1756. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1757. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_VOL_MIN:POWER_DC_THRESHOLD_VOL_MIN;
  1758. value = pch->thr.v_lower * 100;
  1759. data_temp[0] = value & 0XFFFF;
  1760. data_temp[1] = (value >> 16) & 0xFFFF;
  1761. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1762. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_CUR_MAX:POWER_DC_THRESHOLD_CUR_MAX;
  1763. value = pch->thr.c_upper * 100;
  1764. data_temp[0] = value & 0XFFFF;
  1765. data_temp[1] = (value >> 16) & 0xFFFF;
  1766. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1767. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_PWR_MAX:POWER_DC_THRESHOLD_POWER_MAX;
  1768. value = pch->thr.p_upper;
  1769. data_temp[0] = value & 0XFFFF;
  1770. data_temp[1] = (value >> 16) & 0xFFFF;
  1771. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1772. offset = (pch->info.ch==0)?POWER_DC_THRESHOLD_TOTAL_PWRCON_MAX:POWER_DC_THRESHOLD_POWERCON_MAX;
  1773. value = pch->thr.w_upper;
  1774. data_temp[0] = value & 0XFFFF;
  1775. data_temp[1] = (value >> 16) & 0xFFFF;
  1776. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1777. if(r==0) {
  1778. r = power_set_alarm(pch);
  1779. }
  1780. }
  1781. break;
  1782. case TREE_AC_TYPE:
  1783. {
  1784. uint16_t data_temp[4];
  1785. uint32_t value;
  1786. if(pch->info.ch<0) {
  1787. offset = POWER_AC3_THRESHOLD_IN;
  1788. value = pch->thr.v_upper * 100;
  1789. data_temp[0] = value & 0XFFFF;
  1790. data_temp[1] = (value >> 16) & 0xFFFF;
  1791. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1792. value = pch->thr.v_upper * 100;
  1793. data_temp[0] = value & 0XFFFF;
  1794. data_temp[1] = (value >> 16) & 0xFFFF;
  1795. r = write_reg(h, pch->info.addr, offset+1, data_temp, 2);
  1796. value = pch->thr.c_upper * 100;
  1797. data_temp[0] = value & 0XFFFF;
  1798. data_temp[1] = (value >> 16) & 0xFFFF;
  1799. r = write_reg(h, pch->info.addr, offset+2, data_temp, 2);
  1800. value = pch->thr.p_upper;
  1801. data_temp[0] = value & 0XFFFF;
  1802. data_temp[1] = (value >> 16) & 0xFFFF;
  1803. r = write_reg(h, pch->info.addr, offset+3, data_temp, 2);
  1804. value = pch->thr.w_upper;
  1805. data_temp[0] = value & 0XFFFF;
  1806. data_temp[1] = (value >> 16) & 0xFFFF;
  1807. r = write_reg(h, pch->info.addr, offset+4, data_temp, 2);
  1808. }
  1809. else
  1810. {
  1811. offset = POWER_AC3_THRESHOLD_VOL_MAX;
  1812. value = pch->thr.v_upper * 100;
  1813. data_temp[0] = value & 0XFFFF;
  1814. data_temp[1] = (value >> 16) & 0xFFFF;
  1815. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1816. if(h->prod->type==PDU_AC_I3O3) {
  1817. offset +=1;
  1818. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1819. offset +=1;
  1820. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1821. }
  1822. offset = POWER_AC3_THRESHOLD_VOL_MIN;
  1823. value = pch->thr.v_lower * 100;
  1824. data_temp[0] = value & 0XFFFF;
  1825. data_temp[1] = (value >> 16) & 0xFFFF;
  1826. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1827. if(h->prod->type==PDU_AC_I3O3) {
  1828. offset +=1;
  1829. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1830. offset +=1;
  1831. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1832. }
  1833. offset = POWER_AC3_THRESHOLD_CUR_MAX;
  1834. value = pch->thr.c_upper * 100;
  1835. data_temp[0] = value & 0XFFFF;
  1836. data_temp[1] = (value >> 16) & 0xFFFF;
  1837. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1838. if(h->prod->type==PDU_AC_I3O3) {
  1839. offset +=1;
  1840. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1841. offset +=1;
  1842. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1843. }
  1844. offset = POWER_AC3_THRESHOLD_PWR_MAX;
  1845. value = pch->thr.p_upper;
  1846. data_temp[0] = value & 0XFFFF;
  1847. data_temp[1] = (value >> 16) & 0xFFFF;
  1848. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1849. if(h->prod->type==PDU_AC_I3O3) {
  1850. offset +=1;;
  1851. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1852. offset +=1;
  1853. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1854. }
  1855. offset = POWER_AC3_THRESHOLD_PWRCON_MAX;
  1856. value = pch->thr.w_upper;
  1857. data_temp[0] = value & 0XFFFF;
  1858. data_temp[1] = (value >> 16) & 0xFFFF;
  1859. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1860. if(h->prod->type==PDU_AC_I3O3) {
  1861. offset +=1;
  1862. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1863. offset +=1;
  1864. r = write_reg(h, pch->info.addr, offset, data_temp, 2);
  1865. }
  1866. if(r==0) {
  1867. r = power_set_alarm(pch);
  1868. }
  1869. }
  1870. }
  1871. break;
  1872. default:
  1873. r = -1;
  1874. break;
  1875. }
  1876. lock_off(h->lck);
  1877. return r;
  1878. }
  1879. int power_set_open_delay(power_ch_t *pch)
  1880. {
  1881. int r=-1;
  1882. uint16_t tmp[2],reg,offset;
  1883. power_handle_t *h=&pwrHandle;
  1884. lock_on(h->lck);
  1885. switch(pch->info.type) {
  1886. case AC_SINGLE_S_TYPE:
  1887. case AC_SINGLE_B_TYPE:
  1888. {
  1889. tmp[0] = pch->info.open_delay*1000;
  1890. offset = POWER_AC_OPEN_DELAY_TIME_L+pch->info.sch;
  1891. r = write_reg(h, pch->info.addr, offset, tmp, 1);
  1892. }
  1893. break;
  1894. case DCPDU_TYPE:
  1895. {
  1896. uint32_t time=pch->info.open_delay*100;
  1897. tmp[0] = time & 0xffff;
  1898. tmp[1] = (time >> 16) & 0xffff;
  1899. offset = POWER_DC_SET_OPEN_DELAY+pch->info.sch;
  1900. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1901. }
  1902. break;
  1903. case TREE_AC_TYPE:
  1904. {
  1905. uint32_t time=pch->info.open_delay*100;
  1906. tmp[0] = time & 0xffff;
  1907. tmp[1] = (time >> 16) & 0xffff;
  1908. if(h->prod->type==PDU_AC_I3O3) {
  1909. offset = POWER_AC3_OPEN_DELAY_TIME+pch->info.sch*3;
  1910. r = write_reg(h, pch->info.addr, offset+0, tmp, 2);
  1911. if(r) break;
  1912. r = write_reg(h, pch->info.addr, offset+1, tmp, 2);
  1913. if(r) break;
  1914. r = write_reg(h, pch->info.addr, offset+2, tmp, 2);
  1915. if(r) break;
  1916. }
  1917. else {
  1918. offset = POWER_AC3_OPEN_DELAY_TIME+pch->info.sch;
  1919. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1920. }
  1921. }
  1922. break;
  1923. case AC_MULTI_S_TYPE:
  1924. case AC_MULTI_B_TYPE:
  1925. case DC_OUT_TYPE:
  1926. case DC_IN_TYPE:
  1927. default:
  1928. r = -1;
  1929. }
  1930. lock_off(h->lck);
  1931. return r;
  1932. }
  1933. int power_set_clear_consumer(power_ch_t *pch)
  1934. {
  1935. int r=-1;
  1936. uint16_t tmp[2],reg,offset;
  1937. power_handle_t *h=&pwrHandle;
  1938. lock_on(h->lck);
  1939. switch(pch->info.type) {
  1940. case AC_SINGLE_S_TYPE:
  1941. case AC_SINGLE_B_TYPE:
  1942. {
  1943. uint16_t val = 1;
  1944. offset = POWER_AC_RESET_CONSUMP + pch->info.sch;
  1945. r = write_reg(h, pch->info.addr, offset, &val, 1);
  1946. }
  1947. break;
  1948. case DCPDU_TYPE:
  1949. {
  1950. uint32_t val = 1;
  1951. offset = POWER_DC_CONSUMP_CLEAR + pch->info.sch;
  1952. r = write_reg(h, pch->info.addr, offset, (uint16_t*)&val, 1);
  1953. }
  1954. break;
  1955. case TREE_AC_TYPE:
  1956. {
  1957. uint32_t val = 1;
  1958. offset = POWER_AC3_RESET_CONSUMP + pch->info.sch;
  1959. r = write_reg(h, pch->info.addr, offset, (uint16_t*)&val, 1);
  1960. }
  1961. break;
  1962. }
  1963. lock_off(h->lck);
  1964. return 0;
  1965. }
  1966. int power_set_close_delay(power_ch_t *pch)
  1967. {
  1968. int r=-1;
  1969. uint16_t tmp[2],reg,offset;
  1970. power_handle_t *h=&pwrHandle;
  1971. lock_on(h->lck);
  1972. switch(pch->info.type) {
  1973. case AC_SINGLE_S_TYPE:
  1974. case AC_SINGLE_B_TYPE:
  1975. {
  1976. tmp[0] = pch->info.close_delay*1000;
  1977. offset = POWER_AC_CLOSE_DELAY_TIME_L+pch->info.sch;
  1978. r = write_reg(h, pch->info.addr, offset, tmp, 1);
  1979. }
  1980. break;
  1981. case DCPDU_TYPE:
  1982. {
  1983. uint32_t time=pch->info.close_delay*100;
  1984. tmp[0] = time & 0xffff;
  1985. tmp[1] = (time >> 16) & 0xffff;
  1986. offset = POWER_DC_SET_CLOSE_DELAY+pch->info.ch-1;
  1987. //r = write_reg(h, pch->info.addr, offset, tmp, 2);
  1988. }
  1989. break;
  1990. case TREE_AC_TYPE:
  1991. {
  1992. uint32_t time=pch->info.close_delay*100;
  1993. if(h->prod->type==PDU_AC_I3O3) {
  1994. offset = POWER_AC3_CLOSE_DELAY_TIME+pch->info.sch*3;
  1995. r = write_reg(h, pch->info.addr, offset+0, tmp, 2);
  1996. if(r) break;
  1997. r = write_reg(h, pch->info.addr, offset+1, tmp, 2);
  1998. if(r) break;
  1999. r = write_reg(h, pch->info.addr, offset+2, tmp, 2);
  2000. if(r) break;
  2001. }
  2002. else {
  2003. offset = POWER_AC3_CLOSE_DELAY_TIME+pch->info.sch;
  2004. r = write_reg(h, pch->info.addr, offset, tmp, 2);
  2005. }
  2006. }
  2007. break;
  2008. case AC_MULTI_S_TYPE:
  2009. case AC_MULTI_B_TYPE:
  2010. case DC_OUT_TYPE:
  2011. case DC_IN_TYPE:
  2012. default:
  2013. r = -1;
  2014. break;
  2015. }
  2016. lock_off(h->lck);
  2017. return r;
  2018. }
  2019. int power_data_get(power_all_t *all)
  2020. {
  2021. power_handle_t *h=&pwrHandle;
  2022. if(!all) {
  2023. return -1;
  2024. }
  2025. *all = h->all;
  2026. return 0;
  2027. }
  2028. power_all_t * power_get_all(void)
  2029. {
  2030. power_handle_t *h=&pwrHandle;
  2031. return &h->all;
  2032. }
  2033. int power_breaker_get(breaker_all_t *all)
  2034. {
  2035. int i,j,idx=0;
  2036. power_handle_t *h=&pwrHandle;
  2037. if(!all) {
  2038. return -1;
  2039. }
  2040. lock_on(h->lck);
  2041. all->cnt = 0;
  2042. for(i=1; i<=h->cnt; i++) {
  2043. if(h->pbrd[i]) {
  2044. all->cnt += h->pbrd[i]->chs;
  2045. }
  2046. }
  2047. if(all->cnt>0) {
  2048. all->data = (breaker_data_t*)malloc(sizeof(breaker_data_t)*all->cnt);
  2049. if(all->data) {
  2050. for(i=1; i<=h->cnt; i++) {
  2051. if(h->pbrd[i]) {
  2052. for(j=0; j<2; j++) {
  2053. if(h->pbrd[i]->brk[j].info.addr>0) {
  2054. all->data[idx++] = h->pbrd[i]->brk[j];
  2055. }
  2056. }
  2057. }
  2058. }
  2059. }
  2060. else {
  2061. all->cnt = 0;
  2062. }
  2063. }
  2064. lock_off(h->lck);
  2065. return 0;
  2066. }