oc.c 41 KB

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  1. /******************************************************************************
  2. 版权所有:
  3. 文件名称: Oc.c
  4. 文件版本: 01.01
  5. 创建作者: xxxxxx
  6. 创建日期: 2012-03-28
  7. 功能说明: 过流保护
  8. 其它说明:
  9. 修改记录:
  10. */
  11. /*------------------------------- 头文件 --------------------------------------
  12. */
  13. #include "head.h"
  14. /*------------------------------- 宏定义 --------------------------------------
  15. */
  16. /*------------------------------ 类型结构 -------------------------------------
  17. */
  18. /*------------------------------ 全局变量 -------------------------------------
  19. */
  20. /*------------------------------ 函数声明 -------------------------------------
  21. */
  22. /*------------------------------ 外部函数 -------------------------------------
  23. 外部函数供其它实体文件引用,必须仔细检查传入参数的合法性.
  24. */
  25. bool CalDir_A(int sw, bool bQD, bool bInv)
  26. {
  27. int indexU, indexI;
  28. bool bzx = false;
  29. indexU = PUB_AC_UBC1;
  30. indexI = UI_SW_INDEX(sw, SW_AC_IA);
  31. if (!tPT.uPT1DX.bFlag.bPTYC && (g_ui[indexU].m2[0] > pRunSet->dVOL10V_SQR) && bQD) // UBC > 10V
  32. {
  33. if (!bInv) // 电流反向
  34. {
  35. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN0, COS0, SIN300, COS300); // 计算A相电流方向
  36. }
  37. else
  38. {
  39. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN180, COS180, SIN120, COS120); // 计算A相电流方向
  40. }
  41. }
  42. return bzx;
  43. }
  44. bool CalDir_B(int sw, bool bQD, bool bInv)
  45. {
  46. int indexU, indexI;
  47. bool bzx = false;
  48. indexU = PUB_AC_UCA1;
  49. indexI = UI_SW_INDEX(sw, SW_AC_IB);
  50. if (!tPT.uPT1DX.bFlag.bPTYC && (g_ui[indexU].m2[0] > pRunSet->dVOL10V_SQR) && bQD) // UCA > 10V
  51. {
  52. if (!bInv)
  53. {
  54. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN0, COS0, SIN300, COS300); // 计算B相电流方向
  55. }
  56. else
  57. {
  58. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN180, COS180, SIN120, COS120); // 计算B相电流方向
  59. }
  60. }
  61. return bzx;
  62. }
  63. bool CalDir_C(int sw, bool bQD, bool bInv)
  64. {
  65. int indexU, indexI;
  66. bool bzx = false;
  67. indexU = PUB_AC_UAB1;
  68. indexI = UI_SW_INDEX(sw, SW_AC_IC);
  69. if (!tPT.uPT1DX.bFlag.bPTYC && (g_ui[indexU].m2[0] > pRunSet->dVOL10V_SQR) && bQD) // UAB > 10V
  70. {
  71. if (!bInv)
  72. {
  73. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN0, COS0, SIN300, COS300); // 计算C相电流方向
  74. }
  75. else
  76. {
  77. bzx = PowerDirectionalRelay(g_ui[indexU].ri.r, g_ui[indexU].ri.i, g_ui[indexU].m2[0], g_ui[indexI].ri.r, g_ui[indexI].ri.i, g_ui[indexI].m2[0], pRunSet->dVOL10V_SQR, pRunSet->dIWL_SQR[sw], SIN180, COS180, SIN120, COS120); // 计算C相电流方向
  78. }
  79. }
  80. return bzx;
  81. }
  82. bool pro_check_bh_all(int sw)
  83. {
  84. if (soe_check(EV_GL1TZ + sw * EV_SW_NUM) == true)
  85. return true;
  86. if (soe_check(EV_GL2TZ + sw * EV_SW_NUM) == true)
  87. return true;
  88. if (soe_check(EV_GL3TZ + sw * EV_SW_NUM) == true)
  89. return true;
  90. if (soe_check(EV_LX1TZ + sw * EV_SW_NUM) == true)
  91. return true;
  92. if (soe_check(EV_LX2TZ + sw * EV_SW_NUM) == true)
  93. return true;
  94. if (soe_check(EV_LX3TZ + sw * EV_SW_NUM) == true)
  95. return true;
  96. if (soe_check(EV_GLJS + sw * EV_SW_NUM) == true)
  97. return true;
  98. if (soe_check(EV_LXJS + sw * EV_SW_NUM) == true)
  99. return true;
  100. if (soe_check(EV_FA_GL_TZ + sw * EV_SW_NUM) == true)
  101. return true;
  102. if (soe_check(EV_FA_LX_TZ + sw * EV_SW_NUM) == true)
  103. return true;
  104. #ifdef SOE_RECORD_DELAY
  105. if (g_soe_queue.fzsoe_wait_flag)
  106. return true;
  107. #endif
  108. return false;
  109. }
  110. bool pro_check_gl_all(int sw)
  111. {
  112. if (soe_check(EV_GL1TZ + sw * EV_SW_NUM) == true)
  113. return true;
  114. if (soe_check(EV_GL2TZ + sw * EV_SW_NUM) == true)
  115. return true;
  116. if (soe_check(EV_GL3TZ + sw * EV_SW_NUM) == true)
  117. return true;
  118. if (soe_check(EV_GL1GJ + sw * EV_SW_NUM) == true)
  119. return true;
  120. if (soe_check(EV_GL2GJ + sw * EV_SW_NUM) == true)
  121. return true;
  122. if (soe_check(EV_GL3GJ + sw * EV_SW_NUM) == true)
  123. return true;
  124. if (soe_check(EV_GLJS + sw * EV_SW_NUM) == true)
  125. return true;
  126. if (soe_check(EV_FA_GL_TZ + sw * EV_SW_NUM) == true)
  127. return true;
  128. #ifdef SOE_RECORD_DELAY
  129. if (g_soe_queue.fzsoe_wait_flag)
  130. return true;
  131. #endif
  132. return false;
  133. }
  134. bool pro_check_lx_all(int sw)
  135. {
  136. if (soe_check(EV_LX1GJ + sw * EV_SW_NUM) == true)
  137. return true;
  138. if (soe_check(EV_LX2GJ + sw * EV_SW_NUM) == true)
  139. return true;
  140. if (soe_check(EV_LX3GJ + sw * EV_SW_NUM) == true)
  141. return true;
  142. if (soe_check(EV_LX1TZ + sw * EV_SW_NUM) == true)
  143. return true;
  144. if (soe_check(EV_LX2TZ + sw * EV_SW_NUM) == true)
  145. return true;
  146. if (soe_check(EV_LX3TZ + sw * EV_SW_NUM) == true)
  147. return true;
  148. if (soe_check(EV_LXJS + sw * EV_SW_NUM) == true)
  149. return true;
  150. if (soe_check(EV_FA_LX_TZ + sw * EV_SW_NUM) == true)
  151. return true;
  152. #ifdef SOE_RECORD_DELAY
  153. if (g_soe_queue.fzsoe_wait_flag)
  154. return true;
  155. #endif
  156. #ifdef FUN_JDXX
  157. if (soe_check(EV_JDXX_GJ + sw * EV_SW_NUM) == true)
  158. return true;
  159. if (soe_check(EV_JDXX_TZ + sw * EV_SW_NUM) == true)
  160. return true;
  161. #endif
  162. return false;
  163. }
  164. bool pro_check_fault_all(int sw)
  165. {
  166. bool ret;
  167. ret = pro_check_gl_all(sw) || pro_check_lx_all(sw);
  168. return ret;
  169. }
  170. void pro_check_gl_abc(int sw, DWORD i_set, DWORD I1, DWORD I2, DWORD I3)
  171. {
  172. bool bIa, bIb, bIc;
  173. int ui_begin;
  174. TRELAY_T *pR = &g_tRelay[sw];
  175. ui_begin = UI_SW_INDEX_BEGIN(sw);
  176. bIa = (g_ui[ui_begin + SW_AC_IA].m2[0] > i_set) ? true : false;
  177. bIb = (g_ui[ui_begin + SW_AC_IB].m2[0] > i_set) ? true : false;
  178. bIc = (g_ui[ui_begin + SW_AC_IC].m2[0] > i_set) ? true : false;
  179. if (bIa && bIb && bIc)
  180. {
  181. if (soe_check(EV_IABC_GL + sw * EV_SW_NUM) == false)
  182. {
  183. soe_record_ev(EV_IABC_GL + sw * EV_SW_NUM, 1, I1, I2, I3);
  184. pR->bYcRefresh.bAGl = true;
  185. pR->bYcRefresh.bBGl = true;
  186. pR->bYcRefresh.bCGl = true;
  187. }
  188. }
  189. else if (bIa && bIb)
  190. {
  191. if (soe_check(EV_IAB_GL + sw * EV_SW_NUM) == false)
  192. {
  193. soe_record_ev(EV_IAB_GL + sw * EV_SW_NUM, 1, I1, I2, 0);
  194. pR->bYcRefresh.bAGl = true;
  195. pR->bYcRefresh.bBGl = true;
  196. }
  197. }
  198. else if (bIa && bIc)
  199. {
  200. if (soe_check(EV_ICA_GL + sw * EV_SW_NUM) == false)
  201. {
  202. soe_record_ev(EV_ICA_GL + sw * EV_SW_NUM, 1, I1, I3, 0);
  203. pR->bYcRefresh.bAGl = true;
  204. pR->bYcRefresh.bCGl = true;
  205. }
  206. }
  207. else if (bIb && bIc)
  208. {
  209. if (soe_check(EV_IBC_GL + sw * EV_SW_NUM) == false)
  210. {
  211. soe_record_ev(EV_IBC_GL + sw * EV_SW_NUM, 1, I2, I3, 0);
  212. pR->bYcRefresh.bBGl = true;
  213. pR->bYcRefresh.bCGl = true;
  214. }
  215. }
  216. else if (bIa)
  217. {
  218. if (soe_check(EV_IA_GL + sw * EV_SW_NUM) == false)
  219. {
  220. soe_record_ev(EV_IA_GL + sw * EV_SW_NUM, 1, I1, 0, 0);
  221. pR->bYcRefresh.bAGl = true;
  222. }
  223. }
  224. else if (bIb)
  225. {
  226. if (soe_check(EV_IB_GL + sw * EV_SW_NUM) == false)
  227. {
  228. soe_record_ev(EV_IB_GL + sw * EV_SW_NUM, 1, I2, 0, 0);
  229. pR->bYcRefresh.bBGl = true;
  230. }
  231. }
  232. else if (bIc)
  233. {
  234. if (soe_check(EV_IC_GL + sw * EV_SW_NUM) == false)
  235. {
  236. soe_record_ev(EV_IC_GL + sw * EV_SW_NUM, 1, I3, 0, 0);
  237. pR->bYcRefresh.bCGl = true;
  238. }
  239. }
  240. }
  241. void pro_check_fd_gl_abc(int sw, DWORD i_set, DWORD I1, DWORD I2, DWORD I3, int soe_no)
  242. {
  243. bool bIa, bIb, bIc;
  244. int ui_begin;
  245. u32 code;
  246. ui_begin = UI_SW_INDEX_BEGIN(sw);
  247. bIa = (g_ui[ui_begin + SW_AC_IA].m2[0] > i_set) ? true : false;
  248. bIb = (g_ui[ui_begin + SW_AC_IB].m2[0] > i_set) ? true : false;
  249. bIc = (g_ui[ui_begin + SW_AC_IC].m2[0] > i_set) ? true : false;
  250. // soe_no--;
  251. if ((soe_no == EV_GL1TZ) || (soe_no == EV_GL1GJ))
  252. code = EV_GL1_IA + sw * EV_SW_NUM;
  253. else if ((soe_no == EV_GL2TZ) || (soe_no == EV_GL2GJ))
  254. code = EV_GL2_IA + sw * EV_SW_NUM;
  255. else if ((soe_no == EV_GL3TZ) || (soe_no == EV_GL3GJ))
  256. code = EV_GL3_IA + sw * EV_SW_NUM;
  257. else
  258. return;
  259. if (bIa)
  260. {
  261. if (soe_check(code) == false)
  262. {
  263. soe_record_ev(code, 1, I1, 0, 0);
  264. }
  265. }
  266. if (bIb)
  267. {
  268. if (soe_check(code + 1) == false)
  269. {
  270. soe_record_ev(code + 1, 1, I2, 0, 0);
  271. }
  272. }
  273. if (bIc)
  274. {
  275. if (soe_check(code + 2) == false)
  276. {
  277. soe_record_ev(code + 2, 1, I3, 0, 0);
  278. }
  279. }
  280. }
  281. void pro_rst_fd_gl_event(int sw, int soe_no)
  282. {
  283. u32 code;
  284. if (soe_no == EV_GL1TZ)
  285. code = EV_GL1_IA;
  286. else if (soe_no == EV_GL2TZ)
  287. code = EV_GL2_IA;
  288. else if (soe_no == EV_GL3TZ)
  289. code = EV_GL3_IA;
  290. else
  291. return;
  292. if (soe_check(code + sw * EV_SW_NUM) == true)
  293. {
  294. soe_record_ev(code + sw * EV_SW_NUM, 0, 0, 0, 0);
  295. }
  296. if (soe_check(code + sw * EV_SW_NUM + 1) == true)
  297. {
  298. soe_record_ev(code + sw * EV_SW_NUM + 1, 0, 0, 0, 0);
  299. }
  300. if (soe_check(code + sw * EV_SW_NUM + 2) == true)
  301. {
  302. soe_record_ev(code + sw * EV_SW_NUM + 2, 0, 0, 0, 0);
  303. }
  304. }
  305. void pro_rst_event(int sw, int soe_no)
  306. {
  307. if (soe_check(soe_no + sw * EV_SW_NUM) == true)
  308. {
  309. soe_record_ev(soe_no + sw * EV_SW_NUM, 0, 0, 0, 0);
  310. }
  311. }
  312. void xb_bs_soe(int sw, u32 dStep)
  313. {
  314. int i;
  315. bool bxb_bs[BHOC_NUMBER] = {false}, xb_soe = false;
  316. for (i = BH_GL1; i < BHOC_NUMBER; i++)
  317. {
  318. TOC_T *poc = &g_tRelay[sw].tOC[i];
  319. if ((i == BH_GL1) || (i == BH_GL2) || (i == BH_GL3) || (i == BH_GLJS))
  320. bxb_bs[i] = poc->sta.bFlag.bXBbs;
  321. else
  322. bxb_bs[i] = false;
  323. RunTR(&poc->tXBTime, bxb_bs[i], dStep);
  324. RunTR(&poc->tXBQD25ms, bxb_bs[i], dStep);
  325. if ((poc->tXBTime.boolTrip) && (poc->tXBQD25ms.boolTrip))
  326. {
  327. xb_soe = true;
  328. break;
  329. }
  330. }
  331. if (xb_soe)
  332. {
  333. if (soe_check(EV_XBBS + sw * EV_SW_NUM) == false)
  334. {
  335. soe_record_ev(EV_XBBS + sw * EV_SW_NUM, 1, 0, 0, 0);
  336. }
  337. }
  338. else
  339. {
  340. if (soe_check(EV_XBBS + sw * EV_SW_NUM) == true)
  341. {
  342. soe_record_ev(EV_XBBS + sw * EV_SW_NUM, 0, 0, 0, 0);
  343. }
  344. }
  345. }
  346. void Pro_OC(int sw, u32 dStep, int oc, int soe_no)
  347. {
  348. bool bQDD, bTrip;
  349. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  350. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  351. u16 soeno = soe_no + sw * EV_SW_NUM;
  352. bool bfxmz, bxbbs, bxb;
  353. int ui_begin;
  354. bool bIazx, bIbzx, bIczx;
  355. bool bdyenable = true; // 低电压闭锁
  356. bool bTz = false;
  357. // 电流启动
  358. ui_begin = UI_SW_INDEX_BEGIN(sw);
  359. poc->sta.bFlag.bIaQD = OverRelay(g_ui[ui_begin + SW_AC_IA].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIaQD);
  360. poc->sta.bFlag.bIbQD = OverRelay(g_ui[ui_begin + SW_AC_IB].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIbQD);
  361. poc->sta.bFlag.bIcQD = OverRelay(g_ui[ui_begin + SW_AC_IC].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIcQD);
  362. bIazx = CalDir_A(sw, poc->sta.bFlag.bIaQD && pSet->bDir, pRunSet->tSwSet[sw].bTT_DIR_Inv); // 方向计算
  363. bIbzx = CalDir_B(sw, poc->sta.bFlag.bIbQD && pSet->bDir, pRunSet->tSwSet[sw].bTT_DIR_Inv);
  364. bIczx = CalDir_C(sw, poc->sta.bFlag.bIcQD && pSet->bDir, pRunSet->tSwSet[sw].bTT_DIR_Inv);
  365. bxb = pRunSet->tSwSet[sw].bTT_bh_xbbs;
  366. poc->sta.bFlag.bIaxb = bxb && XBCalc(sw, SW_AC_IA, pRunSet->tSwSet[sw].d_bh_xbcoe, poc->sta.bFlag.bIaQD);
  367. poc->sta.bFlag.bIbxb = bxb && XBCalc(sw, SW_AC_IB, pRunSet->tSwSet[sw].d_bh_xbcoe, poc->sta.bFlag.bIbQD);
  368. poc->sta.bFlag.bIcxb = bxb && XBCalc(sw, SW_AC_IC, pRunSet->tSwSet[sw].d_bh_xbcoe, poc->sta.bFlag.bIcQD);
  369. bfxmz = (tPT.uPT1DX.bFlag.bPTYC) // PT异常,自动满足方向
  370. || (!pSet->bDir) // 方向不投入
  371. || bIazx || bIbzx || bIczx;
  372. bQDD = poc->sta.bFlag.bIaQD || poc->sta.bFlag.bIbQD || poc->sta.bFlag.bIcQD;
  373. bxbbs = (poc->sta.bFlag.bIaxb || poc->sta.bFlag.bIbxb || poc->sta.bFlag.bIcxb); // 谐波闭锁
  374. #ifndef OCI_XB_0MS
  375. if (BH_ALL_EN(sw))
  376. {
  377. if ((oc == BH_GL1) || (oc == BH_GL2) || (oc == BH_GL3))
  378. {
  379. poc->sta.bFlag.bXBbs = (BH_ALL_EN(sw) && (pSet->bTz || pSet->bGj) && bQDD) && bxbbs;
  380. if (oc == BH_GL1)
  381. xb_bs_soe(g_protect.sw, dStep);
  382. }
  383. }
  384. #endif
  385. poc->sta.bFlag.bddyQD = LowRelay(g_sw_pub.m2_min[2], pRunSet->dU_DDYBS, pRunSet->dU_DDYBS, poc->sta.bFlag.bddyQD);
  386. bdyenable = (!pRunSet->bTT_DDYBS) // 低电压闭锁未投入,自动满足
  387. || (poc->sta.bFlag.bddyQD && !tPT.uPT1DX.bFlag.bPTYC) // 低电压满足,TV正常
  388. || (tPT.uPT1DX.bFlag.bPTYC); // PT异常,低电压自动满足
  389. poc->sta.bFlag.bQD = (BH_ALL_EN(sw) && (pSet->bTz || pSet->bGj) && bQDD && bdyenable && (!bxbbs) && bfxmz);
  390. if (poc->sta.bFlag.bQD) // 幅值启动
  391. {
  392. if (!poc->sta.bFlag.bQDWave)
  393. {
  394. rcd_start(sw, RECORD_TYPE_GLGZ, RECORD_LEN_TZQD); // 录波类型:跳闸类
  395. poc->sta.bFlag.bQDWave = true;
  396. }
  397. }
  398. else
  399. {
  400. poc->sta.bFlag.bQDWave = false;
  401. }
  402. #ifdef EV_GL_STATR
  403. gl_start_soe_set(poc->sta.bFlag.bQD, sw, soe_no + 2); // 过流启动SOE
  404. #endif
  405. RunTR(&poc->tQDTime, poc->sta.bFlag.bQD, dStep);
  406. RunTR(&poc->tQD25ms, poc->sta.bFlag.bQD, dStep);
  407. // 如果速断时间到,启动时间未到,调用幅值启动加速模块
  408. if (poc->sta.bFlag.bQD && poc->tQDTime.boolTrip && !poc->tQD25ms.boolTrip)
  409. {
  410. if (protect_amp_qd_js(sw))
  411. {
  412. // 预置25ms,让下个循环再出口
  413. PreSetTime(&poc->tQD25ms, T_25ms);
  414. #ifdef CPU_FUXI
  415. // FUXI平台等待下一个循环会导致偶尔动作时间超40ms,改为不等待,本循环处理完
  416. poc->tQD25ms.boolTrip = 1;
  417. #endif
  418. }
  419. }
  420. bTrip = poc->tQDTime.boolTrip && poc->tQD25ms.boolTrip;
  421. poc->sta.bFlag.bGj = bTrip && pSet->bGj; // 告警
  422. poc->sta.bFlag.bGjEvent = poc->sta.bFlag.bGj;
  423. // 过流三段闭锁重合闸
  424. poc->sta.bFlag.bBSCH = poc->sta.bFlag.bTz && !pRunSet->tSwSet[sw].dT_ch_gl_tt;
  425. if (bTrip) // 条件满足,置动作灯
  426. {
  427. poc->sta.bFlag.bTripBak = true;
  428. // poc->sta.bFlag.bDzLed = true;
  429. }
  430. poc->sta.bFlag.bTz = bTrip && pSet->bTz;
  431. #ifdef SOE_RECORD_DELAY
  432. bTz = poc->sta.bFlag.bTz && soe_check(EV_TZFAIL + sw * EV_SW_NUM) == false;
  433. #else
  434. bTz = poc->sta.bFlag.bTz;
  435. #endif
  436. #ifdef YX_RESET_TIME
  437. {
  438. bool bY1;
  439. // 故障遥信延时复归
  440. bY1 = (!poc->sta.bFlag.bGj) && poc->sta.bFlag.bGjEvent;
  441. RunTR(&poc->tGjEvRstTime, bY1, dStep);
  442. poc->sta.bFlag.bGjEvent = poc->sta.bFlag.bGj || (!poc->tGjEvRstTime.boolTrip && bY1);
  443. bY1 = (!poc->sta.bFlag.bTz) && poc->sta.bFlag.bTzEvent;
  444. RunTR(&poc->tTzEvRstTime, bY1, dStep);
  445. poc->sta.bFlag.bTzEvent = poc->sta.bFlag.bTz || (!poc->tTzEvRstTime.boolTrip && bY1);
  446. }
  447. bTz = poc->sta.bFlag.bTzEvent;
  448. #endif
  449. if (bTz)
  450. {
  451. gl_soe_set_clr(1, sw, soeno, pSet->dI, false);
  452. if (soe_check(EV_BH_FAULT + sw * EV_SW_NUM) == false) // 保护总
  453. {
  454. soe_record_ev(EV_BH_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  455. }
  456. poc->sta.bFlag.bDzLed = true;
  457. }
  458. else
  459. {
  460. gl_soe_set_clr(0, sw, soeno, pSet->dI, false);
  461. if (pro_check_bh_all(sw) == false)
  462. {
  463. pro_rst_event(sw, EV_BH_FAULT); // 保护总
  464. }
  465. }
  466. // 告警记录及出口
  467. if (poc->sta.bFlag.bGjEvent)
  468. {
  469. gl_soe_set_clr(1, sw, soeno + 1, pSet->dI, BH_WAVETIME_EN(pSet->dT)); // 大于150毫秒,出口也启动录波
  470. if (poc->sta.bFlag.bDzLed == false)
  471. {
  472. poc->sta.bFlag.bGjLed = true;
  473. }
  474. }
  475. else
  476. {
  477. gl_soe_set_clr(0, sw, soeno + 1, pSet->dI, false);
  478. }
  479. }
  480. void Pro_LX(int sw, u32 dStep, int oc, int soe_no)
  481. {
  482. bool bQDD, bQDD1, bTrip;
  483. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  484. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  485. u16 soeno = soe_no + sw * EV_SW_NUM;
  486. int ui_begin;
  487. bool bTz = false;
  488. TRELAY_T *pR = &g_tRelay[sw];
  489. ui_begin = UI_SW_INDEX_BEGIN(sw);
  490. // 电流启动
  491. bQDD = OverRelay(g_ui[ui_begin + SW_AC_I0].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bQD);
  492. bQDD1 = OverRelay(g_ui[PUB_AC_U01].m2[0], pRunSet->dU_U0BS, pRunSet->dU_U0BS, false);
  493. poc->sta.bFlag.bQD = (BH_ALL_EN(sw)) && (pSet->bTz || pSet->bGj) && bQDD && ((bQDD1 && pRunSet->bTT_U0BS) || (!pRunSet->bTT_U0BS));
  494. if (poc->sta.bFlag.bQD) // 幅值启动
  495. {
  496. if (!poc->sta.bFlag.bQDWave)
  497. {
  498. rcd_start(sw, RECORD_TYPE_LXGL, RECORD_LEN_TZQD); // 录波类型:跳闸类
  499. poc->sta.bFlag.bQDWave = true;
  500. }
  501. }
  502. else
  503. {
  504. poc->sta.bFlag.bQDWave = false;
  505. }
  506. #ifdef EV_GL_STATR
  507. lx_start_soe_set(poc->sta.bFlag.bQD, sw, soe_no + 2); // 过流启动SOE
  508. #endif
  509. RunTR(&poc->tQDTime, poc->sta.bFlag.bQD, dStep);
  510. RunTR(&poc->tQD25ms, poc->sta.bFlag.bQD, dStep);
  511. // 如果时间到,启动时间未到,调用幅值启动加速模块
  512. if (poc->sta.bFlag.bQD && poc->tQDTime.boolTrip && !poc->tQD25ms.boolTrip)
  513. {
  514. if (protect_amp_lx_js(sw))
  515. {
  516. // 预置25ms,让下个循环再出口
  517. PreSetTime(&poc->tQD25ms, T_25ms);
  518. #ifdef CPU_FUXI
  519. // FUXI平台等待下一个循环会导致偶尔动作时间超40ms,改为不等待,本循环处理完
  520. poc->tQD25ms.boolTrip = 1;
  521. #endif
  522. }
  523. }
  524. bTrip = poc->tQDTime.boolTrip && poc->tQD25ms.boolTrip;
  525. poc->sta.bFlag.bGj = bTrip && pSet->bGj; // 告警
  526. poc->sta.bFlag.bTz = bTrip && pSet->bTz; // 出口
  527. // 零序闭锁重合闸
  528. poc->sta.bFlag.bBSCH = poc->sta.bFlag.bTz && !pRunSet->tSwSet[sw].dT_ch_jd_tt;
  529. if (bTrip) // 条件满足,置动作灯
  530. {
  531. poc->sta.bFlag.bTripBak = true;
  532. // poc->sta.bFlag.bDzLed = true;
  533. }
  534. #ifdef SOE_RECORD_DELAY
  535. bTz = poc->sta.bFlag.bTz && soe_check(EV_TZFAIL + sw * EV_SW_NUM) == false;
  536. #else
  537. bTz = poc->sta.bFlag.bTz;
  538. #endif
  539. #ifdef YX_RESET_TIME
  540. {
  541. bool bY1;
  542. // 故障遥信延时复归
  543. bY1 = (!poc->sta.bFlag.bGj) && poc->sta.bFlag.bGjEvent;
  544. RunTR(&poc->tGjEvRstTime, bY1, dStep);
  545. poc->sta.bFlag.bGjEvent = poc->sta.bFlag.bGj || (!poc->tGjEvRstTime.boolTrip && bY1);
  546. bY1 = (!poc->sta.bFlag.bTz) && poc->sta.bFlag.bTzEvent;
  547. RunTR(&poc->tTzEvRstTime, bY1, dStep);
  548. poc->sta.bFlag.bTzEvent = poc->sta.bFlag.bTz || (!poc->tTzEvRstTime.boolTrip && bY1);
  549. }
  550. bTz = poc->sta.bFlag.bTzEvent;
  551. #endif
  552. if (bTz)
  553. {
  554. poc->sta.bFlag.bDzLed = true;
  555. if (soe_check(soeno) == false)
  556. {
  557. DWORD I0, U0;
  558. I0 = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_I0].m2[0]), 256, g_ui[ui_begin + SW_AC_I0].m2_factor_k);
  559. U0 = _Mul_Div_U(sqrt_32fix(g_ui[PUB_AC_U01].m2[0]), 256, g_ui[PUB_AC_U01].m2_factor_k);
  560. soe_record_ev(soeno, 1, I0, U0, 0);
  561. // rcd_start(sw,RECORD_TYPE_LXGL, RECORD_LEN_TZQD);
  562. }
  563. if (soe_check(EV_LX_FAULT + sw * EV_SW_NUM) == false) // 零序总
  564. {
  565. soe_record_ev(EV_LX_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  566. pR->bYcRefresh.bLx = true;
  567. }
  568. if (soe_check(EV_BH_FAULT + sw * EV_SW_NUM) == false) // 保护总
  569. {
  570. soe_record_ev(EV_BH_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  571. }
  572. if (soe_check(EV_ALL_FAULT + sw * EV_SW_NUM) == false) // 保护总
  573. {
  574. soe_record_ev(EV_ALL_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  575. }
  576. }
  577. else
  578. {
  579. if (soe_check(soeno) == true)
  580. {
  581. soe_record_ev(soeno, 0, 0, 0, 0);
  582. }
  583. if (pro_check_lx_all(sw) == false)
  584. {
  585. pro_rst_event(sw, EV_LX_FAULT); // 零序总
  586. }
  587. if (pro_check_bh_all(sw) == false)
  588. {
  589. pro_rst_event(sw, EV_BH_FAULT); // 保护总
  590. }
  591. if (pro_check_fault_all(sw) == false)
  592. {
  593. pro_rst_event(sw, EV_ALL_FAULT); // 事故总
  594. }
  595. }
  596. // 告警记录及出口
  597. if (poc->sta.bFlag.bGj)
  598. {
  599. if (poc->sta.bFlag.bDzLed == false)
  600. {
  601. poc->sta.bFlag.bGjLed = true;
  602. }
  603. if (soe_check(soeno + 1) == false)
  604. {
  605. DWORD I0, U0;
  606. I0 = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_I0].m2[0]), 256, g_ui[ui_begin + SW_AC_I0].m2_factor_k);
  607. U0 = _Mul_Div_U(sqrt_32fix(g_ui[PUB_AC_U01].m2[0]), 256, g_ui[PUB_AC_U01].m2_factor_k);
  608. soe_record_ev(soeno + 1, 1, I0, U0, 0);
  609. if (BH_WAVETIME_EN(pSet->dT))
  610. rcd_start(sw, RECORD_TYPE_LXGL, RECORD_LEN_TZQD);
  611. }
  612. if (soe_check(EV_LX_FAULT + sw * EV_SW_NUM) == false) // 零序总
  613. {
  614. soe_record_ev(EV_LX_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  615. pR->bYcRefresh.bLx = true;
  616. }
  617. if (soe_check(EV_ALL_FAULT + sw * EV_SW_NUM) == false) // 保护总
  618. {
  619. soe_record_ev(EV_ALL_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  620. }
  621. }
  622. else
  623. {
  624. if (soe_check(soeno + 1) == true)
  625. {
  626. soe_record_ev(soeno + 1, 0, 0, 0, 0);
  627. }
  628. if (pro_check_lx_all(sw) == false)
  629. {
  630. pro_rst_event(sw, EV_LX_FAULT); // 零序总
  631. }
  632. if (pro_check_fault_all(sw) == false)
  633. {
  634. pro_rst_event(sw, EV_ALL_FAULT); // 事故总
  635. }
  636. }
  637. }
  638. /**************************************************************************
  639. 函数名称:Pro_Accheck
  640. 函数版本:1.00
  641. 作者: 保护产品部
  642. 创建日期:2007.10.15
  643. 函数功能说明:加速功能块
  644. 输入参数:
  645. 其他输入:
  646. 输出参数:
  647. 返回值:
  648. ***************************************************************************/
  649. void Pro_Accheck(int sw, u32 dStep, int oc, int soe_no)
  650. {
  651. bool bQDD, bTrip;
  652. bool bJS3, bJS4, bJS5;
  653. bool bY1, bY2;
  654. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  655. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  656. u16 soeno = soe_no + sw * EV_SW_NUM;
  657. bool bxbbs, benable;
  658. int ui_begin;
  659. DWORD U0;
  660. TRELAY_T *pR = &g_tRelay[sw];
  661. ui_begin = UI_SW_INDEX_BEGIN(sw);
  662. U0 = _Mul_Div_U(sqrt_32fix(g_ui[PUB_AC_U01].m2[0]), 256, g_ui[PUB_AC_U01].m2_factor_k);
  663. if (oc == BH_GLJS || oc == BH_LXJS)
  664. {
  665. benable = BH_ALL_EN(sw);
  666. }
  667. else
  668. {
  669. benable = FA_ALL_EN(sw);
  670. }
  671. // 电流启动
  672. if (oc == BH_GLJS || oc == FA_GL)
  673. {
  674. bool bxb;
  675. DWORD xbcoe; // 谐波系数
  676. if (oc == BH_GLJS)
  677. {
  678. bxb = pRunSet->tSwSet[sw].bTT_bh_xbbs;
  679. xbcoe = pRunSet->tSwSet[sw].d_bh_xbcoe;
  680. }
  681. else
  682. {
  683. bxb = pRunSet->tSwSet[sw].bTT_fa_xbbs;
  684. xbcoe = pRunSet->tSwSet[sw].d_fa_xbcoe;
  685. }
  686. poc->sta.bFlag.bIaQD = OverRelay(g_ui[ui_begin + SW_AC_IA].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIaQD);
  687. poc->sta.bFlag.bIbQD = OverRelay(g_ui[ui_begin + SW_AC_IB].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIbQD);
  688. poc->sta.bFlag.bIcQD = OverRelay(g_ui[ui_begin + SW_AC_IC].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bIcQD);
  689. poc->sta.bFlag.bIaxb = bxb && XBCalc(sw, SW_AC_IA, xbcoe, poc->sta.bFlag.bIaQD);
  690. poc->sta.bFlag.bIbxb = bxb && XBCalc(sw, SW_AC_IB, xbcoe, poc->sta.bFlag.bIbQD);
  691. poc->sta.bFlag.bIcxb = bxb && XBCalc(sw, SW_AC_IC, xbcoe, poc->sta.bFlag.bIcQD);
  692. bQDD = poc->sta.bFlag.bIaQD || poc->sta.bFlag.bIbQD || poc->sta.bFlag.bIcQD;
  693. bxbbs = poc->sta.bFlag.bIaxb || poc->sta.bFlag.bIbxb || poc->sta.bFlag.bIcxb; // 谐波闭锁
  694. if (BH_ALL_EN(sw))
  695. {
  696. if (oc == BH_GLJS)
  697. {
  698. poc->sta.bFlag.bXBbs = (BH_ALL_EN(sw) && (pSet->bTz || pSet->bGj) && bQDD) && bxbbs;
  699. // xb_bs_soe(g_protect.sw,dStep);
  700. }
  701. }
  702. }
  703. else // 零序加速或FA合后零序过流跳闸
  704. {
  705. // 零序电流过量继电器
  706. bY1 = OverRelay(g_ui[UI_SW_INDEX(sw, SW_AC_I0)].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bQD);
  707. // 零序电压过量继电器
  708. // bY2 = OverRelay(g_ui[PUB_AC_U01].m2[0], pRunSet->dU_U0BS, pRunSet->dU_U0BS, false);
  709. bY2 = true;
  710. bQDD = bY1 && ((bY2 && pRunSet->bTT_U0BS) || (!pRunSet->bTT_U0BS));
  711. bxbbs = false;
  712. }
  713. // 检查合闸加速标
  714. if (oc == BH_GLJS || oc == BH_LXJS)
  715. {
  716. bJS3 = g_tRelay[sw].tCHZ.sta.bFlag.bCHJS // 重合加速标
  717. || g_tRelay[sw].tSWST.uSWST.bFlag.bSHJS; // 手合加速标
  718. }
  719. else
  720. {
  721. bJS3 = g_tRelay[sw].tSWST.uSWST.bFlag.bSDJS // 上电加速
  722. //|| g_tRelay[sw].tSWST.uSWST.bFlag.bSHJS; // 手合加速标
  723. ;
  724. }
  725. poc->sta.bFlag.bQD = (benable && (pSet->bTz || pSet->bGj) && bQDD) && (!bxbbs); // 谐波闭锁
  726. // 加速标保持
  727. bJS4 = bJS3 || poc->sta.bFlag.bJSBC;
  728. // 后加速启动条件满足
  729. bJS5 = poc->sta.bFlag.bQD && bJS4;
  730. // 合闸加速标保持
  731. poc->sta.bFlag.bJSBC = bJS5 && bJS4;
  732. if (bJS5) // 幅值启动
  733. {
  734. if (!poc->sta.bFlag.bQDWave)
  735. {
  736. if (oc == BH_GLJS || oc == FA_GL)
  737. {
  738. rcd_start(sw, RECORD_TYPE_GLGZ, RECORD_LEN_TZQD); // 录波类型:跳闸类
  739. }
  740. else
  741. {
  742. rcd_start(sw, RECORD_TYPE_LXGL, RECORD_LEN_TZQD); // 录波类型:跳闸类
  743. }
  744. poc->sta.bFlag.bQDWave = true;
  745. }
  746. }
  747. else
  748. {
  749. poc->sta.bFlag.bQDWave = false;
  750. }
  751. RunTR(&poc->tQDTime, bJS5, dStep);
  752. RunTR(&poc->tQD25ms, bJS5, dStep);
  753. // 如果加速时间到,启动时间未到,调用幅值启动加速模块
  754. if ((oc == BH_GLJS || oc == FA_GL || BH_LXJS) && (poc->sta.bFlag.bQD && poc->tQDTime.boolTrip && !poc->tQD25ms.boolTrip))
  755. {
  756. if (oc == BH_GLJS || oc == FA_GL)
  757. {
  758. if (protect_amp_qd_js(sw))
  759. {
  760. // 预置25ms,让下个循环再出口
  761. PreSetTime(&poc->tQD25ms, T_25ms);
  762. }
  763. }
  764. else
  765. {
  766. if (protect_amp_lx_js(sw))
  767. {
  768. // 预置25ms,让下个循环再出口
  769. PreSetTime(&poc->tQD25ms, T_25ms);
  770. }
  771. }
  772. }
  773. bTrip = poc->tQDTime.boolTrip && poc->tQD25ms.boolTrip;
  774. poc->sta.bFlag.bTz = bTrip; //
  775. if (bTrip) // 条件满足,置动作灯
  776. {
  777. poc->sta.bFlag.bTripBak = true;
  778. // poc->sta.bFlag.bDzLed = true;
  779. }
  780. #ifdef YX_RESET_TIME
  781. // 故障遥信延时复归
  782. bY1 = (!poc->sta.bFlag.bTz) && poc->sta.bFlag.bTzEvent;
  783. RunTR(&poc->tTzEvRstTime, bY1, dStep);
  784. poc->sta.bFlag.bTzEvent = poc->sta.bFlag.bTz || (!poc->tTzEvRstTime.boolTrip && bY1);
  785. #endif
  786. // 出口记录及出口
  787. if (oc == BH_GLJS || oc == FA_GL)
  788. {
  789. #ifdef YX_RESET_TIME
  790. if (poc->sta.bFlag.bTzEvent)
  791. #else
  792. if (poc->sta.bFlag.bTz)
  793. #endif
  794. {
  795. poc->sta.bFlag.bDzLed = true;
  796. gl_soe_set_clr(1, sw, soeno, pSet->dI, BH_WAVETIME_EN(pSet->dT));
  797. if (soe_check(EV_BH_FAULT + sw * EV_SW_NUM) == false) // 保护总
  798. {
  799. soe_record_ev(EV_BH_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  800. }
  801. if (oc == FA_GL)
  802. {
  803. if (soe_check(EV_HHGZ + sw * EV_SW_NUM) == false && pRunSet->tSwSet[sw].bTT_fa_gzbshz)
  804. {
  805. soe_record_ev(EV_HHGZ + sw * EV_SW_NUM, 1, 0, 0, 0);
  806. }
  807. }
  808. }
  809. else
  810. {
  811. gl_soe_set_clr(0, sw, soeno, pSet->dI, false);
  812. if (pro_check_bh_all(sw) == false)
  813. {
  814. pro_rst_event(sw, EV_BH_FAULT); // 保护总
  815. }
  816. }
  817. }
  818. else // 零序加速
  819. {
  820. // 出口记录及出口
  821. #ifdef YX_RESET_TIME
  822. if (poc->sta.bFlag.bTzEvent)
  823. #else
  824. if (poc->sta.bFlag.bTz)
  825. #endif
  826. {
  827. poc->sta.bFlag.bDzLed = true;
  828. if (soe_check(soeno) == false)
  829. {
  830. DWORD I0;
  831. I0 = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_I0].m2[0]), 256, g_ui[ui_begin + SW_AC_I0].m2_factor_k);
  832. // U0 = _Mul_Div_U(sqrt_32fix(g_ui[PUB_AC_U01].m2[0]), 256, g_ui[PUB_AC_U01].m2_factor_k);
  833. soe_record_ev(soeno, 1, I0, U0, 0);
  834. if (BH_WAVETIME_EN(pSet->dT))
  835. rcd_start(sw, RECORD_TYPE_LXGL, RECORD_LEN_TZQD);
  836. }
  837. if (soe_check(EV_LX_FAULT + sw * EV_SW_NUM) == false) // 零序总
  838. {
  839. soe_record_ev(EV_LX_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  840. pR->bYcRefresh.bLx = true;
  841. }
  842. if (soe_check(EV_BH_FAULT + sw * EV_SW_NUM) == false) // 保护总
  843. {
  844. soe_record_ev(EV_BH_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  845. }
  846. if (soe_check(EV_ALL_FAULT + sw * EV_SW_NUM) == false) // 故障总
  847. {
  848. soe_record_ev(EV_ALL_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  849. }
  850. if (oc == FA_LX)
  851. {
  852. if (soe_check(EV_HHGZ + sw * EV_SW_NUM) == false && pRunSet->tSwSet[sw].bTT_fa_gzbshz)
  853. {
  854. soe_record_ev(EV_HHGZ + sw * EV_SW_NUM, 1, 0, 0, 0);
  855. }
  856. }
  857. }
  858. else
  859. {
  860. if (soe_check(soeno) == true)
  861. {
  862. soe_record_ev(soeno, 0, 0, 0, 0);
  863. }
  864. if (pro_check_lx_all(sw) == false)
  865. {
  866. pro_rst_event(sw, EV_LX_FAULT); // 零序总
  867. }
  868. if (pro_check_bh_all(sw) == false)
  869. {
  870. pro_rst_event(sw, EV_BH_FAULT); // 保护总
  871. }
  872. if (pro_check_fault_all(sw) == false)
  873. {
  874. pro_rst_event(sw, EV_ALL_FAULT); // 故障总
  875. }
  876. }
  877. }
  878. }
  879. /******************************************************************************
  880. 函数名称: Pro_BSTZ
  881. 函数版本: 01.01
  882. 创建作者: xxxxxx
  883. 创建日期: 2015-10-23
  884. 函数说明: 大电流闭锁分闸,用于负荷开关,以免过切断容量跳闸
  885. 参数说明: 无
  886. 返回值: 成功返回0.
  887. 修改记录:
  888. */
  889. void Pro_BSTZ(int sw, u32 dStep, int oc, int soe_no)
  890. {
  891. bool bQDD, bTrip;
  892. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  893. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  894. u16 soeno = soe_no + sw * EV_SW_NUM;
  895. // 电流启动
  896. bQDD = OverRelay(g_sw[sw].m2_max, pSet->dI, pSet->dI_fh, poc->sta.bFlag.bQD);
  897. poc->sta.bFlag.bQD = (BH_ALL_EN(sw) // 现有程序FA模式下已处理遮断,所以只需要BH模式投入此功能
  898. && (pSet->bTz || pSet->bGj) && bQDD);
  899. if (poc->sta.bFlag.bQD) // 幅值启动
  900. {
  901. #if 0
  902. if(!poc->sta.bFlag.bQDWave)
  903. {
  904. rcd_start(sw,RECORD_TYPE_GLGZ, RECORD_LEN_TZQD); //录波类型:跳闸类
  905. poc->sta.bFlag.bQDWave=true;
  906. }
  907. #endif
  908. }
  909. RunTR(&poc->tQDTime, poc->sta.bFlag.bQD, dStep);
  910. bTrip = poc->tQDTime.boolTrip;
  911. poc->sta.bFlag.bTz = bTrip && pSet->bTz;
  912. g_tRelay[sw].bBSTZ = bTrip && pSet->bTz;
  913. if (bTrip) // 条件满足,置动作灯
  914. {
  915. poc->sta.bFlag.bTripBak = true;
  916. poc->sta.bFlag.bDzLed = true;
  917. }
  918. if (!BH_ALL_EN(sw))
  919. {
  920. return;
  921. }
  922. // 出口记录及出口
  923. if (poc->sta.bFlag.bTz)
  924. {
  925. if (soe_check(soeno) == false)
  926. {
  927. int ui_begin;
  928. DWORD Ia, Ib, Ic;
  929. ui_begin = UI_SW_INDEX_BEGIN(sw);
  930. Ia = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA].m2[0]), 256, g_ui[ui_begin + SW_AC_IA].m2_factor_k);
  931. Ib = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IB].m2[0]), 256, g_ui[ui_begin + SW_AC_IB].m2_factor_k);
  932. Ic = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IC].m2[0]), 256, g_ui[ui_begin + SW_AC_IC].m2_factor_k);
  933. soe_record_ev(soeno, 1, Ia, Ib, Ic);
  934. // if(BH_WAVETIME_EN(pSet->dT))rcd_start(sw,RECORD_TYPE_GLGZ, RECORD_LEN_TZQD); //录波类型:跳闸类
  935. }
  936. }
  937. else
  938. {
  939. if (soe_check(soeno) == true)
  940. {
  941. soe_record_ev(soeno, 0, 0, 0, 0);
  942. }
  943. }
  944. }
  945. /***********************************
  946. 函数名称: Pro_over_limit_i
  947. 函数版本: 01.01
  948. 创建作者: xxxxxx
  949. 创建日期: 2015-10-23
  950. 函数说明: 电流越限
  951. 参数说明: 无
  952. 返回值: 成功返回0.
  953. 修改记录:
  954. */
  955. void Pro_over_i(int sw, u32 dStep, int oc, int soe_no)
  956. {
  957. bool bQDD, bTrip;
  958. int ui_begin;
  959. DWORD Ia, Ib, Ic;
  960. #ifdef YX_RESET_TIME
  961. bool by1;
  962. #endif
  963. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  964. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  965. u16 soeno = soe_no + sw * EV_SW_NUM;
  966. // 电流启动
  967. bQDD = OverRelay(g_sw[sw].m2_max, pSet->dI, pSet->dI_fh, poc->sta.bFlag.bQD);
  968. poc->sta.bFlag.bQD = (pSet->bTz || pSet->bGj) && bQDD;
  969. RunTR(&poc->tQDTime, poc->sta.bFlag.bQD, dStep);
  970. bTrip = poc->tQDTime.boolTrip; // 告警
  971. poc->sta.bFlag.bGj = bTrip; // 告警
  972. #ifdef YX_RESET_TIME
  973. // 故障遥信延时复归
  974. by1 = (!poc->sta.bFlag.bGj) && poc->sta.bFlag.bGjEvent;
  975. RunTR(&poc->tGjEvRstTime, by1, dStep);
  976. poc->sta.bFlag.bGjEvent = poc->sta.bFlag.bGj || (!poc->tGjEvRstTime.boolTrip && by1);
  977. #endif
  978. // 告警记录及出口
  979. if (bTrip) // 条件满足,置动作灯
  980. {
  981. poc->sta.bFlag.bDzLed = true;
  982. }
  983. if (poc->sta.bFlag.bGj)
  984. {
  985. // gz_soe_set_clr(1,sw,soeno,pSet->dI);
  986. if (soe_check(soeno))
  987. return;
  988. ui_begin = UI_SW_INDEX_BEGIN(sw);
  989. Ia = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA].m2[0]), 256, g_ui[ui_begin + SW_AC_IA].m2_factor_k);
  990. Ib = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IB].m2[0]), 256, g_ui[ui_begin + SW_AC_IB].m2_factor_k);
  991. Ic = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IC].m2[0]), 256, g_ui[ui_begin + SW_AC_IC].m2_factor_k);
  992. soe_record_ev(soeno, 1, Ia, Ib, Ic);
  993. }
  994. else
  995. {
  996. // gz_soe_set_clr(0,sw,soeno,pSet->dI);
  997. if (!soe_check(soeno))
  998. return;
  999. soe_record_ev(soeno, 0, 0, 0, 0);
  1000. }
  1001. }
  1002. void Pro_over_i0(int sw, u32 dStep, int oc, int soe_no)
  1003. {
  1004. bool bQDD, bTrip;
  1005. #ifdef YX_RESET_TIME
  1006. bool by1;
  1007. #endif
  1008. TOC_T *poc = &g_tRelay[sw].tOC[oc];
  1009. OC_SET *pSet = &pRunSet->tSwSet[sw].toc[oc];
  1010. u16 soeno = soe_no + sw * EV_SW_NUM;
  1011. // 电流启动
  1012. bQDD = OverRelay(g_ui[UI_SW_INDEX(sw, SW_AC_I0)].m2[0], pSet->dI, pSet->dI_fh, poc->sta.bFlag.bQD);
  1013. poc->sta.bFlag.bQD = (pSet->bTz || pSet->bGj) && bQDD;
  1014. RunTR(&poc->tQDTime, poc->sta.bFlag.bQD, dStep);
  1015. bTrip = poc->tQDTime.boolTrip; // 告警
  1016. poc->sta.bFlag.bGj = bTrip; // 告警
  1017. #ifdef YX_RESET_TIME
  1018. // 故障遥信延时复归
  1019. by1 = (!poc->sta.bFlag.bGj) && poc->sta.bFlag.bGjEvent;
  1020. RunTR(&poc->tGjEvRstTime, by1, dStep);
  1021. poc->sta.bFlag.bGjEvent = poc->sta.bFlag.bGj || (!poc->tGjEvRstTime.boolTrip && by1);
  1022. #endif
  1023. if (bTrip) // 条件满足,置动作灯
  1024. {
  1025. poc->sta.bFlag.bDzLed = true;
  1026. }
  1027. if (poc->sta.bFlag.bGj)
  1028. {
  1029. if (soe_check(soeno) == false)
  1030. {
  1031. int ui_begin;
  1032. DWORD I0;
  1033. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1034. I0 = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_I0].m2[0]), 256, g_ui[ui_begin + SW_AC_I0].m2_factor_k);
  1035. soe_record_ev(soeno, 1, I0, 0, 0);
  1036. }
  1037. }
  1038. else
  1039. {
  1040. if (soe_check(soeno) == true)
  1041. {
  1042. soe_record_ev(soeno, 0, 0, 0, 0);
  1043. }
  1044. }
  1045. }
  1046. #ifdef EV_GL_STATR
  1047. void gl_start_soe_set(u8 set_clr, int sw, u16 soe_no)
  1048. {
  1049. int ui_begin;
  1050. DWORD Ia, Ib, Ic;
  1051. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1052. Ia = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA].m2[0]), 256, g_ui[ui_begin + SW_AC_IA].m2_factor_k);
  1053. Ib = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IB].m2[0]), 256, g_ui[ui_begin + SW_AC_IB].m2_factor_k);
  1054. Ic = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IC].m2[0]), 256, g_ui[ui_begin + SW_AC_IC].m2_factor_k);
  1055. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1056. if (soe_check(soe_no) != set_clr)
  1057. {
  1058. soe_record_ev(soe_no, set_clr, Ia, Ib, Ic);
  1059. }
  1060. }
  1061. void lx_start_soe_set(u8 set_clr, int sw, u16 soe_no)
  1062. {
  1063. int ui_begin;
  1064. DWORD I0, U0;
  1065. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1066. I0 = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_I0].m2[0]), 256, g_ui[ui_begin + SW_AC_I0].m2_factor_k);
  1067. U0 = _Mul_Div_U(sqrt_32fix(g_ui[PUB_AC_U01].m2[0]), 256, g_ui[PUB_AC_U01].m2_factor_k);
  1068. if (soe_check(soe_no) != set_clr)
  1069. {
  1070. soe_record_ev(soe_no, set_clr, U0, I0, 0);
  1071. }
  1072. }
  1073. #endif
  1074. /******************************************************************************
  1075. 函数名称: gl_soe_set_clr
  1076. 函数版本: 01.01
  1077. 创建作者: xxxxxx
  1078. 创建日期: 2014-12-16
  1079. 函数说明: 过流事件的建立和返回
  1080. 参数说明: set_clr: 1 建立,0 返回
  1081. soe_no: 事件组的起始序号
  1082. i_set: 当前过流保护的定值
  1083. 返回值: 无
  1084. 修改记录:
  1085. */
  1086. int gl_soe_set_clr(u8 set_clr, int sw, u16 soe_no, u32 i_set, bool bfault)
  1087. {
  1088. int ui_begin;
  1089. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1090. switch (set_clr)
  1091. {
  1092. case 1:
  1093. {
  1094. DWORD Ia, Ib, Ic;
  1095. Ia = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA].m2[0]), 256, g_ui[ui_begin + SW_AC_IA].m2_factor_k);
  1096. Ib = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IB].m2[0]), 256, g_ui[ui_begin + SW_AC_IB].m2_factor_k);
  1097. Ic = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IC].m2[0]), 256, g_ui[ui_begin + SW_AC_IC].m2_factor_k);
  1098. if (soe_check(soe_no) == false)
  1099. {
  1100. soe_record_ev(soe_no, 1, Ia, Ib, Ic);
  1101. if (bfault)
  1102. rcd_start(sw, RECORD_TYPE_GLGZ, RECORD_LEN_TZQD); // 录波类型:跳闸类
  1103. }
  1104. pro_check_gl_abc(sw, i_set, Ia, Ib, Ic); // 分相故障判断
  1105. pro_check_fd_gl_abc(sw, i_set, Ia, Ib, Ic, soe_no); // 分段分相故障判断
  1106. if (soe_check(EV_GL_FAULT + sw * EV_SW_NUM) == false) // 过流总
  1107. {
  1108. soe_record_ev(EV_GL_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  1109. }
  1110. if (soe_check(EV_ALL_FAULT + sw * EV_SW_NUM) == false) // 保护总
  1111. {
  1112. soe_record_ev(EV_ALL_FAULT + sw * EV_SW_NUM, 1, 0, 0, 0);
  1113. }
  1114. }
  1115. break;
  1116. case 0:
  1117. {
  1118. if (soe_check(soe_no) == true)
  1119. {
  1120. soe_record_ev(soe_no, 0, 0, 0, 0);
  1121. }
  1122. if (pro_check_gl_all(sw) == false)
  1123. {
  1124. pro_rst_event(sw, EV_IABC_GL);
  1125. pro_rst_event(sw, EV_IAB_GL);
  1126. pro_rst_event(sw, EV_IBC_GL);
  1127. pro_rst_event(sw, EV_ICA_GL);
  1128. pro_rst_event(sw, EV_IA_GL);
  1129. pro_rst_event(sw, EV_IB_GL);
  1130. pro_rst_event(sw, EV_IC_GL);
  1131. pro_rst_event(sw, EV_GL_FAULT); // 过流总
  1132. pro_rst_fd_gl_event(sw, soe_no); // 分段分相故障返回
  1133. }
  1134. if (pro_check_fault_all(sw) == false)
  1135. {
  1136. pro_rst_event(sw, EV_ALL_FAULT); // 保护总
  1137. }
  1138. }
  1139. break;
  1140. }
  1141. return 0;
  1142. }
  1143. /******************************************************************************
  1144. 函数名称: gz_soe_set_clr
  1145. 函数版本: 01.01
  1146. 创建作者: xxxxxx
  1147. 创建日期: 2014-12-16
  1148. 函数说明: 过流事件的建立和返回
  1149. 参数说明: set_clr: 1 建立,0 返回
  1150. soe_no: 事件组的起始序号
  1151. i_set: 当前过流保护的定值
  1152. 返回值: 无
  1153. 修改记录:
  1154. */
  1155. int gz_soe_set_clr(u8 set_clr, int sw, u16 soe_no, u32 i_set)
  1156. {
  1157. int ui_begin, i;
  1158. DWORD Idz;
  1159. ui_begin = UI_SW_INDEX_BEGIN(sw);
  1160. switch (set_clr)
  1161. {
  1162. case 1:
  1163. {
  1164. if (soe_check(soe_no) == false)
  1165. {
  1166. DWORD Ia, Ib, Ic;
  1167. Ia = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA].m2[0]), 256, g_ui[ui_begin + SW_AC_IA].m2_factor_k);
  1168. Ib = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IB].m2[0]), 256, g_ui[ui_begin + SW_AC_IB].m2_factor_k);
  1169. Ic = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IC].m2[0]), 256, g_ui[ui_begin + SW_AC_IC].m2_factor_k);
  1170. soe_record_ev(soe_no, 1, Ia, Ib, Ic);
  1171. }
  1172. for (i = 0; i < 3; i++)
  1173. {
  1174. if (soe_check(soe_no + i + 1) == false)
  1175. {
  1176. if (g_ui[ui_begin + SW_AC_IA + i].m2[0] > i_set)
  1177. {
  1178. Idz = _Mul_Div_U(sqrt_32fix(g_ui[ui_begin + SW_AC_IA + i].m2[0]), 256, g_ui[ui_begin + SW_AC_IA + i].m2_factor_k);
  1179. soe_record_ev(soe_no + i + 1, 1, Idz, 0, 0);
  1180. }
  1181. }
  1182. }
  1183. }
  1184. break;
  1185. case 0:
  1186. {
  1187. if (soe_check(soe_no) == true)
  1188. {
  1189. soe_record_ev(soe_no, 0, 0, 0, 0);
  1190. }
  1191. for (i = 0; i < 3; i++)
  1192. {
  1193. if (soe_check(soe_no + i + 1) == true)
  1194. {
  1195. soe_record_ev(soe_no + i + 1, 0, 0, 0, 0);
  1196. }
  1197. }
  1198. }
  1199. break;
  1200. }
  1201. return 0;
  1202. }
  1203. /**
  1204. * @brief 计算二次谐波含量是否超过设定值
  1205. * @param[in/out] {int} sw 开关号
  1206. * @param[in/out] {int} index 电流索引
  1207. * @param[in/out] {DWORD} xBcoe 谐波占比%
  1208. * @param[in/out] {DWORD} bQD 使能计算
  1209. * @return true 二次谐波含量超过设定值
  1210. * @return false 二次谐波含量没有超过设定值
  1211. * @retval none
  1212. *
  1213. * @warning none
  1214. * @note none
  1215. */
  1216. bool XBCalc(int sw, int index, DWORD xBcoe, bool bQD)
  1217. {
  1218. if (bQD)
  1219. {
  1220. if (g_ui[UI_SW_INDEX(sw, index)].m2[1] > _MulFac_U(g_ui[UI_SW_INDEX(sw, index)].m2[0], xBcoe))
  1221. {
  1222. return (true);
  1223. }
  1224. }
  1225. return (false);
  1226. }
  1227. /*------------------------------ 测试函数 -------------------------------------
  1228. 一个实体文件必须带一个本模块的测试函数来进行单元测试,如果的确不方便在本模块中
  1229. 进行单元测试,必须在此注明实际的测试位置(例如在哪个实体文件中使用哪个测试函数).
  1230. */
  1231. /*------------------------------ 文件结束 -------------------------------------
  1232. */