Module_InternalComm.c 89 KB

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  1. #include <sys/time.h>
  2. #include <sys/timeb.h>
  3. #include <sys/types.h>
  4. #include <sys/stat.h>
  5. #include <sys/types.h>
  6. #include <sys/ioctl.h>
  7. #include <sys/socket.h>
  8. #include <sys/ipc.h>
  9. #include <sys/shm.h>
  10. #include <sys/shm.h>
  11. #include <sys/mman.h>
  12. #include <linux/wireless.h>
  13. #include <arpa/inet.h>
  14. #include <netinet/in.h>
  15. #include <unistd.h>
  16. #include <stdarg.h>
  17. #include <stdio.h> /*標準輸入輸出定義*/
  18. #include <stdlib.h> /*標準函數庫定義*/
  19. #include <unistd.h> /*Unix 標準函數定義*/
  20. #include <fcntl.h> /*檔控制定義*/
  21. #include <termios.h> /*PPSIX 終端控制定義*/
  22. #include <errno.h> /*錯誤號定義*/
  23. #include <errno.h>
  24. #include <string.h>
  25. #include <time.h>
  26. #include <ctype.h>
  27. #include <ifaddrs.h>
  28. #include <math.h>
  29. #include "../../define.h"
  30. #include "internalComm.h"
  31. #include <stdbool.h>
  32. #include "Config.h"
  33. #include "Common.h"
  34. #define ARRAY_SIZE(A) (sizeof(A) / sizeof(A[0]))
  35. #define PASS 1
  36. #define FAIL -1
  37. #define YES 1
  38. #define NO 0
  39. #define TEN_MINUTES 600
  40. #define ENV_TEMP_MIN 45
  41. #define ENV_TEMP_MAX 50
  42. #define DEFAULT_AC_INDEX 2
  43. #define EQUAL 0
  44. #define COLOR_MAX_LV 100
  45. #define COLOR_MIN_LV 0
  46. #define AC_DEFAULT_VOL 220
  47. #define NO_DEFINE 255
  48. #define NDEFAULT_AC_INDEX 2
  49. #define OVP_UVP_CHK_COUNT 3
  50. struct SysConfigAndInfo *ShmSysConfigAndInfo;
  51. struct StatusCodeData *ShmStatusCodeData;
  52. struct FanModuleData *ShmFanModuleData;
  53. struct RelayModuleData *ShmRelayModuleData[2];
  54. struct LedModuleData *ShmLedModuleData;
  55. struct PsuData *ShmPsuData;
  56. struct OCPP16Data *ShmOCPP16Data;
  57. ChargerInfoData *ShmChargerInfo;
  58. PsuGroupingInfoData *ShmPsuGrouping;
  59. PsuGroupOutputRelay *ShmOutputRelayConfig[MAX_GROUP_QUANTITY];
  60. PsuGroupOutputRelay *ShmOutputRelayConfirmed[MAX_GROUP_QUANTITY];
  61. PsuGroupParallelRelay *ShmParallelRelayConfig;
  62. PsuGroupParallelRelay *ShmParallelRelayConfirmed;
  63. RBRelayControl *LocationRelayCtrl[MAX_GROUP_QUANTITY];
  64. RBRelayControl *LocationRelayResponse[MAX_GROUP_QUANTITY];
  65. #define VIN_MAX_VOLTAGE_IEC 285 // 大於該值 : OVP
  66. #define VIN_MAX_REV_VOLTAGE_IEC 275 // 小於賦歸 OVP
  67. #define VIN_MIN_VOLTAGE_IEC 160 // 小於該值 : UVP
  68. #define VIN_MIN_REV_VOLTAGE_IEC 170 // 大於賦歸 UVP
  69. #define VIN_MAX_VOLTAGE_UL 315 // 大於該值 : OVP // 美規 (W)
  70. #define VIN_MAX_REV_VOLTAGE_UL 305 // 小於賦歸 OVP
  71. #define VIN_MIN_VOLTAGE_UL 210 // 小於該值 : UVP
  72. #define VIN_MIN_REV_VOLTAGE_UL 220 // 大於賦歸 UVP
  73. #define VIN_DROP_VOLTAGE 150 // 小於該值 : ac drop
  74. #define VOUT_MAX_VOLTAGE 995
  75. #define VOUT_MIN_VOLTAGE 150
  76. #define IOUT_MAX_CURRENT 50
  77. #define MAX_FAN_SPEED 14000
  78. #define MIN_FAN_SPEED 3000
  79. #define NORMAL_FAN_SPEED 7000
  80. // GFD Status
  81. #define GFD_IDLE 0
  82. #define GFD_CABLECHK 1
  83. #define GFD_PRECHARGE 2
  84. #define GFD_CHARGING 3
  85. // LED Intensity (rate)
  86. #define LED_INTENSITY_DARKEST 0.2
  87. #define LED_INTENSITY_MEDIUM 0.6
  88. #define LED_INTENSITY_BRIGHTEST 1
  89. // EE Spec
  90. #define LED_BRIGHTNESS_LV_HIGH 1
  91. #define LED_BRIGHTNESS_LV_MID 0.5
  92. #define LED_BRIGHTNESS_LV_LOW 0.2
  93. // 最小切換 Relay 電壓
  94. #define SELF_TO_CHANGE_RELAY_STATUS 600
  95. // 透過電壓確認 Relay 是否搭上的依據電壓
  96. #define CHECK_RELAY_STATUS 300
  97. #define CHECK_RELAY_STATUS_GAP 100
  98. // 安全在停止充電程序中斷開 Relay 的電流
  99. #define SEFETY_SWITCH_RELAY_CUR 50
  100. // 確認 Relay Welding 電壓
  101. #define RELAY_WELDING_DET 300
  102. byte gunCount;
  103. byte acgunCount;
  104. // 槍資訊
  105. struct ChargingInfoData *_chargingData[CONNECTOR_QUANTITY];
  106. struct ChargingInfoData *ac_chargingInfo[AC_QUANTITY];
  107. bool _isOutputNoneMatch[CHAdeMO_QUANTITY + CCS_QUANTITY + GB_QUANTITY];
  108. struct timeval _checkOutputNoneMatchTimer[CHAdeMO_QUANTITY + CCS_QUANTITY + GB_QUANTITY];
  109. bool _isRelayWelding[CHAdeMO_QUANTITY + CCS_QUANTITY + GB_QUANTITY];
  110. struct timeval _checkRelayWeldingTimer[CHAdeMO_QUANTITY + CCS_QUANTITY + GB_QUANTITY];
  111. byte _threePhaseOvp[3] = {0, 0, 0};
  112. byte _threePhaseUvp[3] = {0, 0, 0};
  113. bool FindChargingInfoData(byte target, struct ChargingInfoData **chargingData);
  114. int Uart5Fd;
  115. char *relayRs485PortName = "/dev/ttyS5";
  116. unsigned short fanSpeedSmoothValue = 500;
  117. struct timeval _close_ac_contactor;
  118. struct timeval _priority_time;
  119. struct timeval _led_priority_time;
  120. struct timeval _ac_charging_comp;
  121. struct timeval _ac_preparing;
  122. struct timeb _ac_startChargingTime;
  123. struct timeb _ac_endChargingTime;
  124. unsigned short _setFanSpeed = 0;
  125. float _beforeChargingTotalEnergy = 0.0;
  126. byte _checkLedChanged = 3;
  127. byte _RelaySelfTestOK;
  128. Ver ver;
  129. PresentInputVoltage inputVoltage;
  130. PresentOutputVoltage outputVoltage;
  131. FanSpeed fanSpeed;
  132. Temperature temperature;
  133. AuxPower auxPower;
  134. Gfd gfd_adc;
  135. Gfd_config gfd_config;
  136. Gpio_in gpio_in;
  137. Gpio_out gpio_out;
  138. Relay outputRelay[2];
  139. Relay regRelay[2];
  140. Relay TempRegRelay[2];
  141. Rtc rtc;
  142. Led_Color cur_led_color;
  143. Led_Color led_color;
  144. Ac_Status acStatus;
  145. Ac_Led_Status ledStatus;
  146. Ac_Alarm_code acAlarmCode;
  147. Ac_Charging_energy acChargingEnergy;
  148. Ac_Charging_current acChargingCurrent;
  149. #define AC_OVP 1
  150. #define AC_UVP 2
  151. #define AC_OCP 4
  152. #define AC_OTP 8
  153. #define AC_GMI_FAULT 16
  154. #define AC_CP_ERROR 32
  155. #define AC_AC_LEAKAGE 64
  156. #define AC_DC_LEAKAGE 128
  157. #define AC_SYSTEM_SELFTEST_FAULT 256
  158. #define AC_HANDSHAKE_TIMEOUT 512
  159. #define AC_EMC_STOP 1024
  160. #define AC_RELAY_WELDING 2048
  161. #define AC_GF_MODULE_FAULT 4096
  162. #define AC_SHUTTER_FAULT 8192
  163. #define AC_LOCKER_FAULT 16384
  164. #define AC_POWER_DROP 32768
  165. #define AC_CIRCUIT_SHORT 65536
  166. #define AC_ROTARY_SWITCH_FAULT 131072
  167. #define AC_RELAY_DRIVE_FAULT 262144
  168. int _alarm_code[] = {AC_OVP, AC_UVP, AC_OCP, AC_OTP, AC_GMI_FAULT, AC_CP_ERROR, AC_AC_LEAKAGE
  169. , AC_DC_LEAKAGE, AC_SYSTEM_SELFTEST_FAULT, AC_HANDSHAKE_TIMEOUT, AC_EMC_STOP, AC_RELAY_WELDING
  170. , AC_GF_MODULE_FAULT, AC_SHUTTER_FAULT, AC_LOCKER_FAULT, AC_POWER_DROP, AC_CIRCUIT_SHORT
  171. , AC_ROTARY_SWITCH_FAULT, AC_RELAY_DRIVE_FAULT};
  172. unsigned long GetTimeoutValue(struct timeval _sour_time);
  173. unsigned long GetTimeoutValue(struct timeval _sour_time)
  174. {
  175. struct timeval _end_time;
  176. gettimeofday(&_end_time, NULL);
  177. return 1000000 * (_end_time.tv_sec - _sour_time.tv_sec) + _end_time.tv_usec - _sour_time.tv_usec;
  178. }
  179. int DiffTimeb(struct timeb ST, struct timeb ET)
  180. {
  181. //return milli-second
  182. unsigned int StartTime, StopTime;
  183. StartTime = (unsigned int) ST.time;
  184. StopTime = (unsigned int) ET.time;
  185. //return (StopTime-StartTime)*1000+ET.millitm-ST.millitm;
  186. return (StopTime - StartTime);
  187. }
  188. unsigned short MaxValue(unsigned short value1, unsigned short value2)
  189. {
  190. return value1 >= value2 ? value1 : value2;
  191. }
  192. //==========================================
  193. // Communication Function
  194. //==========================================
  195. void GetFwAndHwVersion_Fan()
  196. {
  197. if(Query_FW_Ver(Uart5Fd, Addr.Fan, &ver) == PASS)
  198. {
  199. // FanModuleData
  200. strcpy((char *) ShmFanModuleData->version, ver.Version_FW);
  201. // SystemInfo
  202. strcpy((char *) ShmSysConfigAndInfo->SysInfo.FanModuleFwRev, ver.Version_FW);
  203. LOG_INFO("GetFwAndHwVersion_Fan s1 = %s", ver.Version_FW);
  204. }
  205. if (Query_HW_Ver(Uart5Fd, Addr.Fan, &ver) == PASS)
  206. {
  207. // SystemInfo
  208. strcpy((char *) ShmSysConfigAndInfo->SysInfo.FanModuleHwRev, ver.Version_FW);
  209. LOG_INFO("GetFwAndHwVersion_Fan s2 = %s", ver.Version_HW);
  210. }
  211. }
  212. void GetFwAndHwVersion_Relay()
  213. {
  214. if (Query_FW_Ver(Uart5Fd, Addr.DO360_RC1, &ver) == PASS)
  215. {
  216. // RelayModuleData
  217. strcpy((char *) ShmRelayModuleData[0]->version, ver.Version_FW);
  218. // SystemInfo
  219. strcpy((char *) ShmSysConfigAndInfo->SysInfo.RelayModuleFwRev, ver.Version_FW);
  220. LOG_INFO("GetFwAndHwVersion_RC1 s1 = %s", ver.Version_FW);
  221. }
  222. if (Query_HW_Ver(Uart5Fd, Addr.DO360_RC1, &ver) == PASS)
  223. {
  224. // SystemInfo
  225. strcpy((char *) ShmSysConfigAndInfo->SysInfo.RelayModuleHwRev, ver.Version_FW);
  226. LOG_INFO("GetFwAndHwVersion_RC1 s2 = %s", ver.Version_HW);
  227. }
  228. }
  229. void GetFwAndHwVersion_Relay2()
  230. {
  231. // DO360 RC2
  232. if (Query_FW_Ver(Uart5Fd, Addr.DO360_RC2, &ver) == PASS)
  233. {
  234. // RelayModuleData
  235. strcpy((char *) ShmRelayModuleData[1]->version, ver.Version_FW);
  236. // SystemInfo
  237. strcpy((char *) ShmSysConfigAndInfo->SysInfo.Relay2ModuleFwRev, ver.Version_FW);
  238. LOG_INFO("GetFwAndHwVersion_RC2 s1 = %s", ver.Version_FW);
  239. }
  240. if (Query_HW_Ver(Uart5Fd, Addr.DO360_RC2, &ver) == PASS)
  241. {
  242. // SystemInfo
  243. strcpy((char *) ShmSysConfigAndInfo->SysInfo.Relay2ModuleHwRev, ver.Version_FW);
  244. LOG_INFO("GetFwAndHwVersion_RC2 s2 = %s", ver.Version_HW);
  245. }
  246. }
  247. void GetFwAndHwVersion_Led()
  248. {
  249. if (Query_FW_Ver(Uart5Fd, Addr.Led, &ver) == PASS)
  250. {
  251. // LedModuleData
  252. strcpy((char *) ShmLedModuleData->version, ver.Version_FW);
  253. // SystemInfo
  254. strcpy((char *) ShmSysConfigAndInfo->SysInfo.LedModuleFwRev, ver.Version_FW);
  255. LOG_INFO("GetFwAndHwVersion_Led s1 = %s", ver.Version_FW);
  256. ShmLedModuleData->SelfTest_Comp = YES;
  257. }
  258. else
  259. {
  260. //LOG_INFO("GetFwAndHwVersion_Led fail");
  261. }
  262. // if (Query_HW_Ver(Uart5Fd, Addr.Led, &ver) == PASS)
  263. // {
  264. // // SystemInfo
  265. // strcpy((char *) ShmSysConfigAndInfo->SysInfo.RelayModuleHwRev, ver.Version_FW);
  266. // //LOG_INFO("GetFwAndHwVersion_Relay s2 = %s", ver.Version_HW);
  267. // }
  268. }
  269. void GetFwVersion_AC()
  270. {
  271. if (Query_FW_Ver(Uart5Fd, Addr.AcPlug, &ver) == PASS)
  272. {
  273. ac_chargingInfo[0]->SelfTest_Comp = YES;
  274. strcpy((char *) ac_chargingInfo[0]->version, ver.Version_FW);
  275. }
  276. }
  277. void GetAcModelName()
  278. {
  279. memset(ShmSysConfigAndInfo->SysConfig.AcModelName, 0x00, sizeof(ShmSysConfigAndInfo->SysConfig.AcModelName));
  280. if (Query_Model_Name(Uart5Fd, Addr.AcPlug, ShmSysConfigAndInfo->SysConfig.AcModelName) == PASS)
  281. {
  282. LOG_INFO("ac model name = %s", ShmSysConfigAndInfo->SysConfig.AcModelName);
  283. }
  284. }
  285. void SetRtcData_Relay(unsigned char index)
  286. {
  287. struct timeb csuTime;
  288. struct tm *tmCSU;
  289. ftime(&csuTime);
  290. tmCSU = localtime(&csuTime.time);
  291. // LOG_INFO("Time : %04d-%02d-%02d %02d:%02d:%02d", tmCSU->tm_year + 1900,
  292. // tmCSU->tm_mon + 1, tmCSU->tm_mday, tmCSU->tm_hour, tmCSU->tm_min,
  293. // tmCSU->tm_sec);
  294. rtc.RtcData[0] = '0' + (tmCSU->tm_year + 1900) / 1000 % 10;
  295. rtc.RtcData[1] = '0' + (tmCSU->tm_year + 1900) / 100 % 10;
  296. rtc.RtcData[2] = '0' + (tmCSU->tm_year + 1900) / 10 % 10;
  297. rtc.RtcData[3] = '0' + (tmCSU->tm_year + 1900) / 1 % 10;
  298. rtc.RtcData[4] = '0' + (tmCSU->tm_mon + 1) / 10 % 10;
  299. rtc.RtcData[5] = '0' + (tmCSU->tm_mon + 1) / 1 % 10;
  300. rtc.RtcData[6] = '0' + (tmCSU->tm_mday) / 10 % 10;
  301. rtc.RtcData[7] = '0' + (tmCSU->tm_mday) / 1 % 10;
  302. rtc.RtcData[8] = '0' + (tmCSU->tm_hour) / 10 % 10;
  303. rtc.RtcData[9] = '0' + (tmCSU->tm_hour) / 1 % 10;
  304. rtc.RtcData[10] = '0' + (tmCSU->tm_min) / 10 % 10;
  305. rtc.RtcData[11] = '0' + (tmCSU->tm_min) / 1 % 10;
  306. rtc.RtcData[12] = '0' + (tmCSU->tm_sec) / 10 % 10;
  307. rtc.RtcData[13] = '0' + (tmCSU->tm_sec) / 1 % 10;
  308. if(index == 0)
  309. {
  310. if (Config_Rtc_Data(Uart5Fd, Addr.DO360_RC1, &rtc) == PASS)
  311. {
  312. //LOG_INFO("SetRtc (RB) sucessfully.");
  313. }
  314. }
  315. else
  316. {
  317. if (Config_Rtc_Data(Uart5Fd, Addr.DO360_RC2, &rtc) == PASS)
  318. {
  319. //LOG_INFO("SetRtc (RB) sucessfully.");
  320. }
  321. }
  322. }
  323. void SetRtcData_Fan()
  324. {
  325. struct timeb csuTime;
  326. struct tm *tmCSU;
  327. ftime(&csuTime);
  328. tmCSU = localtime(&csuTime.time);
  329. // LOG_INFO("Time : %04d-%02d-%02d %02d:%02d:%02d", tmCSU->tm_year + 1900,
  330. // tmCSU->tm_mon + 1, tmCSU->tm_mday, tmCSU->tm_hour, tmCSU->tm_min,
  331. // tmCSU->tm_sec);
  332. rtc.RtcData[0] = '0' + (tmCSU->tm_year + 1900) / 1000 % 10;
  333. rtc.RtcData[1] = '0' + (tmCSU->tm_year + 1900) / 100 % 10;
  334. rtc.RtcData[2] = '0' + (tmCSU->tm_year + 1900) / 10 % 10;
  335. rtc.RtcData[3] = '0' + (tmCSU->tm_year + 1900) / 1 % 10;
  336. rtc.RtcData[4] = '0' + (tmCSU->tm_mon + 1) / 10 % 10;
  337. rtc.RtcData[5] = '0' + (tmCSU->tm_mon + 1) / 1 % 10;
  338. rtc.RtcData[6] = '0' + (tmCSU->tm_mday) / 10 % 10;
  339. rtc.RtcData[7] = '0' + (tmCSU->tm_mday) / 1 % 10;
  340. rtc.RtcData[8] = '0' + (tmCSU->tm_hour) / 10 % 10;
  341. rtc.RtcData[9] = '0' + (tmCSU->tm_hour) / 1 % 10;
  342. rtc.RtcData[10] = '0' + (tmCSU->tm_min) / 10 % 10;
  343. rtc.RtcData[11] = '0' + (tmCSU->tm_min) / 1 % 10;
  344. rtc.RtcData[12] = '0' + (tmCSU->tm_sec) / 10 % 10;
  345. rtc.RtcData[13] = '0' + (tmCSU->tm_sec) / 1 % 10;
  346. if (Config_Rtc_Data(Uart5Fd, Addr.Fan, &rtc) == PASS)
  347. {
  348. //LOG_INFO("SetRtc (FB) sucessfully.");
  349. }
  350. }
  351. void SetModelName_Fan()
  352. {
  353. if (Config_Model_Name(Uart5Fd, Addr.Fan, ShmSysConfigAndInfo->SysConfig.ModelName) == PASS)
  354. {
  355. LOG_INFO("Set Model name PASS = %s", ShmSysConfigAndInfo->SysConfig.ModelName);
  356. }
  357. }
  358. // AC 三相輸入電壓
  359. void GetPresentInputVol()
  360. {
  361. if (Query_Present_InputVoltage(Uart5Fd, Addr.DO360_RC1, &inputVoltage) == PASS)
  362. {
  363. // resolution : 0.1
  364. ShmSysConfigAndInfo->SysInfo.InputVoltageR = ShmRelayModuleData[0]->InputL1Volt = inputVoltage.L1N_L12;
  365. ShmSysConfigAndInfo->SysInfo.InputVoltageS = ShmRelayModuleData[0]->InputL2Volt = inputVoltage.L2N_L23;
  366. ShmSysConfigAndInfo->SysInfo.InputVoltageT = ShmRelayModuleData[0]->InputL3Volt = inputVoltage.L3N_L31;
  367. //********************************************************************************************************//
  368. // Vin (UVP)
  369. if (ShmSysConfigAndInfo->SysInfo.ChargerType == _CHARGER_TYPE_IEC)
  370. {
  371. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP == NO)
  372. {
  373. if (inputVoltage.L1N_L12 <= VIN_MIN_VOLTAGE_IEC)
  374. {
  375. LOG_INFO("In Uvp L1N_L12 = %f", inputVoltage.L1N_L12);
  376. if (_threePhaseUvp[0] >= OVP_UVP_CHK_COUNT)
  377. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP = YES;
  378. else
  379. _threePhaseUvp[0] += 1;
  380. }
  381. }
  382. else
  383. {
  384. if (inputVoltage.L1N_L12 >= VIN_MIN_REV_VOLTAGE_IEC)
  385. {
  386. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP = NO;
  387. _threePhaseUvp[0] = 0;
  388. }
  389. }
  390. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP == NO)
  391. {
  392. if (inputVoltage.L2N_L23 <= VIN_MIN_VOLTAGE_IEC)
  393. {
  394. LOG_INFO("In Uvp L2N_L23 = %f", inputVoltage.L2N_L23);
  395. if (_threePhaseUvp[1] >= OVP_UVP_CHK_COUNT)
  396. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP = YES;
  397. else
  398. _threePhaseUvp[1] += 1;
  399. }
  400. }
  401. else
  402. {
  403. if (inputVoltage.L2N_L23 >= VIN_MIN_REV_VOLTAGE_IEC)
  404. {
  405. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP = NO;
  406. _threePhaseUvp[1] = 0;
  407. }
  408. }
  409. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP == NO)
  410. {
  411. if (inputVoltage.L3N_L31 <= VIN_MIN_VOLTAGE_IEC)
  412. {
  413. LOG_INFO("In Uvp L3N_L31 = %f", inputVoltage.L3N_L31);
  414. if (_threePhaseUvp[2] >= OVP_UVP_CHK_COUNT)
  415. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP = YES;
  416. else
  417. _threePhaseUvp[2] += 1;
  418. }
  419. }
  420. else
  421. {
  422. if (inputVoltage.L3N_L31 >= VIN_MIN_REV_VOLTAGE_IEC)
  423. {
  424. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP = NO;
  425. _threePhaseUvp[2] = 0;
  426. }
  427. }
  428. }
  429. else if (ShmSysConfigAndInfo->SysInfo.ChargerType == _CHARGER_TYPE_UL)
  430. {
  431. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP == NO)
  432. {
  433. if (inputVoltage.L1N_L12 <= VIN_MIN_VOLTAGE_UL)
  434. {
  435. LOG_INFO("In Uvp L1N_L12 = %f", inputVoltage.L1N_L12);
  436. if (_threePhaseUvp[0] >= OVP_UVP_CHK_COUNT)
  437. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP = YES;
  438. else
  439. _threePhaseUvp[0] += 1;
  440. }
  441. }
  442. else
  443. {
  444. if (inputVoltage.L1N_L12 >= VIN_MIN_REV_VOLTAGE_UL)
  445. {
  446. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputUVP = NO;
  447. _threePhaseUvp[0] = 0;
  448. }
  449. }
  450. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP == NO)
  451. {
  452. if (inputVoltage.L2N_L23 <= VIN_MIN_VOLTAGE_UL)
  453. {
  454. LOG_INFO("In Uvp L2N_L23 = %f", inputVoltage.L2N_L23);
  455. if (_threePhaseUvp[1] >= OVP_UVP_CHK_COUNT)
  456. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP = YES;
  457. else
  458. _threePhaseUvp[1] += 1;
  459. }
  460. }
  461. else
  462. {
  463. if (inputVoltage.L2N_L23 >= VIN_MIN_REV_VOLTAGE_UL)
  464. {
  465. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputUVP = NO;
  466. _threePhaseUvp[1] = 0;
  467. }
  468. }
  469. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP == NO)
  470. {
  471. if (inputVoltage.L3N_L31 <= VIN_MIN_VOLTAGE_UL)
  472. {
  473. LOG_INFO("In Uvp L3N_L31 = %f", inputVoltage.L3N_L31);
  474. if (_threePhaseUvp[2] >= OVP_UVP_CHK_COUNT)
  475. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP = YES;
  476. else
  477. _threePhaseUvp[2] += 1;
  478. }
  479. }
  480. else
  481. {
  482. if (inputVoltage.L3N_L31 >= VIN_MIN_REV_VOLTAGE_UL)
  483. {
  484. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputUVP = NO;
  485. _threePhaseUvp[2] = 0;
  486. }
  487. }
  488. }
  489. //********************************************************************************************************//
  490. // Vin (OVP)
  491. if (ShmSysConfigAndInfo->SysInfo.ChargerType == _CHARGER_TYPE_IEC)
  492. {
  493. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP == NO)
  494. {
  495. if (inputVoltage.L1N_L12 >= VIN_MAX_VOLTAGE_IEC)
  496. {
  497. LOG_INFO("In Ovp L1N_L12 = %f", inputVoltage.L1N_L12);
  498. if (_threePhaseOvp[0] >= OVP_UVP_CHK_COUNT)
  499. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP = YES;
  500. else
  501. _threePhaseOvp[0] += 1;
  502. }
  503. }
  504. else
  505. {
  506. if (inputVoltage.L1N_L12 <= VIN_MAX_REV_VOLTAGE_IEC)
  507. {
  508. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP = NO;
  509. _threePhaseOvp[0] = 0;
  510. }
  511. }
  512. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP == NO)
  513. {
  514. if (inputVoltage.L2N_L23 >= VIN_MAX_VOLTAGE_IEC)
  515. {
  516. LOG_INFO("In Ovp L2N_L23 = %f", inputVoltage.L2N_L23);
  517. if (_threePhaseOvp[1] >= OVP_UVP_CHK_COUNT)
  518. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP = YES;
  519. else
  520. _threePhaseOvp[1] += 1;
  521. }
  522. }
  523. else
  524. {
  525. if (inputVoltage.L2N_L23 <= VIN_MAX_REV_VOLTAGE_IEC)
  526. {
  527. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP = NO;
  528. _threePhaseOvp[1] = 0;
  529. }
  530. }
  531. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP == NO)
  532. {
  533. if (inputVoltage.L3N_L31 >= VIN_MAX_VOLTAGE_IEC)
  534. {
  535. LOG_INFO("In Ovp L3N_L31 = %f", inputVoltage.L3N_L31);
  536. if (_threePhaseOvp[2] >= OVP_UVP_CHK_COUNT)
  537. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP = YES;
  538. else
  539. _threePhaseOvp[2] += 1;
  540. }
  541. }
  542. else
  543. {
  544. if (inputVoltage.L3N_L31 <= VIN_MAX_REV_VOLTAGE_IEC)
  545. {
  546. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP = NO;
  547. _threePhaseOvp[2] = 0;
  548. }
  549. }
  550. }
  551. else if (ShmSysConfigAndInfo->SysInfo.ChargerType == _CHARGER_TYPE_UL)
  552. {
  553. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP == NO)
  554. {
  555. if (inputVoltage.L1N_L12 >= VIN_MAX_VOLTAGE_UL)
  556. {
  557. LOG_INFO("In Ovp L1N_L12 = %f", inputVoltage.L1N_L12);
  558. if (_threePhaseOvp[0] >= OVP_UVP_CHK_COUNT)
  559. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP = YES;
  560. else
  561. _threePhaseOvp[0] += 0;
  562. }
  563. }
  564. else
  565. {
  566. if (inputVoltage.L1N_L12 <= VIN_MAX_REV_VOLTAGE_UL)
  567. {
  568. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputOVP = NO;
  569. _threePhaseOvp[0] = 0;
  570. }
  571. }
  572. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP == NO)
  573. {
  574. if (inputVoltage.L2N_L23 >= VIN_MAX_VOLTAGE_UL)
  575. {
  576. LOG_INFO("In Ovp L2N_L23 = %f", inputVoltage.L2N_L23);
  577. if (_threePhaseOvp[1] >= OVP_UVP_CHK_COUNT)
  578. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP = YES;
  579. else
  580. _threePhaseOvp[1] += 0;
  581. }
  582. }
  583. else
  584. {
  585. if (inputVoltage.L2N_L23 <= VIN_MAX_REV_VOLTAGE_UL)
  586. {
  587. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL2InputOVP = NO;
  588. _threePhaseOvp[1] = 0;
  589. }
  590. }
  591. if (ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP == NO)
  592. {
  593. if (inputVoltage.L3N_L31 >= VIN_MAX_VOLTAGE_UL)
  594. {
  595. LOG_INFO("In Ovp L3N_L31 = %f", inputVoltage.L3N_L31);
  596. if (_threePhaseOvp[2] >= OVP_UVP_CHK_COUNT)
  597. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP = YES;
  598. else
  599. _threePhaseOvp[2] += 1;
  600. }
  601. }
  602. else
  603. {
  604. if (inputVoltage.L3N_L31 <= VIN_MAX_REV_VOLTAGE_UL)
  605. {
  606. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL3InputOVP = NO;
  607. _threePhaseOvp[2] = 0;
  608. }
  609. }
  610. }
  611. }
  612. }
  613. // 左右槍的 Relay 前後的輸出電壓
  614. void GetPersentOutputVol()
  615. {
  616. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  617. {
  618. // two relay board
  619. if (Query_Present_OutputVoltage(Uart5Fd, Addr.DO360_RC1, &outputVoltage) == PASS)
  620. {
  621. ShmRelayModuleData[0]->Gun1FuseOutputVolt = outputVoltage.behindFuse_Voltage_C1;
  622. ShmRelayModuleData[0]->Gun1RelayOutputVolt = outputVoltage.behindRelay_Voltage_C1;
  623. ShmRelayModuleData[0]->Gun2FuseOutputVolt = outputVoltage.behindFuse_Voltage_C2;
  624. ShmRelayModuleData[0]->Gun2RelayOutputVolt = outputVoltage.behindRelay_Voltage_C2;
  625. _chargingData[0]->FuseChargingVoltage = ShmRelayModuleData[0]->Gun1FuseOutputVolt;
  626. _chargingData[0]->FireChargingVoltage = ShmRelayModuleData[0]->Gun1RelayOutputVolt;
  627. _chargingData[3]->FuseChargingVoltage = ShmRelayModuleData[0]->Gun2FuseOutputVolt;
  628. _chargingData[3]->FireChargingVoltage = ShmRelayModuleData[0]->Gun2RelayOutputVolt;
  629. }
  630. // DO360 RC2
  631. if (Query_Present_OutputVoltage(Uart5Fd, Addr.DO360_RC2, &outputVoltage) == PASS)
  632. {
  633. ShmRelayModuleData[1]->Gun1FuseOutputVolt = outputVoltage.behindFuse_Voltage_C1;
  634. ShmRelayModuleData[1]->Gun1RelayOutputVolt = outputVoltage.behindRelay_Voltage_C1;
  635. ShmRelayModuleData[1]->Gun2FuseOutputVolt = outputVoltage.behindFuse_Voltage_C2;
  636. ShmRelayModuleData[1]->Gun2RelayOutputVolt = outputVoltage.behindRelay_Voltage_C2;
  637. _chargingData[1]->FuseChargingVoltage = ShmRelayModuleData[1]->Gun2FuseOutputVolt;
  638. _chargingData[1]->FireChargingVoltage = ShmRelayModuleData[1]->Gun2RelayOutputVolt;
  639. _chargingData[2]->FuseChargingVoltage = ShmRelayModuleData[1]->Gun1FuseOutputVolt;
  640. _chargingData[2]->FireChargingVoltage = ShmRelayModuleData[1]->Gun1RelayOutputVolt;
  641. }
  642. }
  643. else
  644. {
  645. // only one relay board
  646. if (Query_Present_OutputVoltage(Uart5Fd, Addr.DO360_RC1, &outputVoltage) == PASS)
  647. {
  648. ShmRelayModuleData[0]->Gun1FuseOutputVolt = outputVoltage.behindFuse_Voltage_C1;
  649. ShmRelayModuleData[0]->Gun1RelayOutputVolt = outputVoltage.behindRelay_Voltage_C1;
  650. ShmRelayModuleData[0]->Gun2FuseOutputVolt = outputVoltage.behindFuse_Voltage_C2;
  651. ShmRelayModuleData[0]->Gun2RelayOutputVolt = outputVoltage.behindRelay_Voltage_C2;
  652. _chargingData[0]->FuseChargingVoltage = ShmRelayModuleData[0]->Gun1FuseOutputVolt;
  653. _chargingData[0]->FireChargingVoltage = ShmRelayModuleData[0]->Gun1RelayOutputVolt;
  654. _chargingData[1]->FuseChargingVoltage = ShmRelayModuleData[0]->Gun2FuseOutputVolt;
  655. _chargingData[1]->FireChargingVoltage = ShmRelayModuleData[0]->Gun2RelayOutputVolt;
  656. }
  657. }
  658. }
  659. // 風扇速度
  660. void GetFanSpeed()
  661. {
  662. //LOG_INFO("Get fan board speed");
  663. if (Query_Fan_Speed(Uart5Fd, Addr.Fan, &fanSpeed) == PASS)
  664. {
  665. ShmFanModuleData->PresentFan1Speed = fanSpeed.speed[0];
  666. ShmFanModuleData->PresentFan2Speed = fanSpeed.speed[1];
  667. ShmFanModuleData->PresentFan3Speed = fanSpeed.speed[2];
  668. ShmFanModuleData->PresentFan4Speed = fanSpeed.speed[3];
  669. // LOG_INFO("SystemFanRotaSpeed_1 = %d", fanSpeed.speed[0]);
  670. // LOG_INFO("SystemFanRotaSpeed_2 = %d", fanSpeed.speed[1]);
  671. // LOG_INFO("SystemFanRotaSpeed_3 = %d", fanSpeed.speed[2]);
  672. // LOG_INFO("SystemFanRotaSpeed_4 = %d", fanSpeed.speed[3]);
  673. // Config_Fan_Speed(Uart5Fd, Addr.Fan, &fanSpeed[0]);
  674. //SysInfoData (SystemFanRotaSpeed)
  675. }
  676. }
  677. // 讀取 Relay 狀態
  678. void GetRelayOutputStatus()
  679. {
  680. unsigned char location = 0;
  681. if(Query_Relay_Output(Uart5Fd, Addr.DO360_RC1, &regRelay[0]) == PASS)
  682. {
  683. regRelay[0].relay_event.bits.AC_Contactor = outputRelay[0].relay_event.bits.AC_Contactor;
  684. }
  685. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  686. {
  687. if(Query_Relay_Output(Uart5Fd, Addr.DO360_RC2, &regRelay[1]) == PASS)
  688. {
  689. regRelay[1].relay_event.bits.AC_Contactor = outputRelay[1].relay_event.bits.AC_Contactor;
  690. }
  691. }
  692. // update output relay feedback status
  693. for(int i = 0; i < ShmChargerInfo->Control.MaxConnector; i++)
  694. {
  695. location = ShmPsuGrouping->GroupCollection[i].Location;
  696. if(ShmOutputRelayConfirmed[i]->bits.Output_N != LocationRelayResponse[location]->bits.Gun_N)
  697. {
  698. LOG_INFO("Gun %d Get K1K2 N %s at Location %d",
  699. i + 1, LocationRelayResponse[location]->bits.Gun_N ? "On" : "Off", location + 1);
  700. }
  701. ShmOutputRelayConfirmed[i]->bits.Output_N = LocationRelayResponse[location]->bits.Gun_N;
  702. if(ShmOutputRelayConfirmed[i]->bits.Output_P != LocationRelayResponse[location]->bits.Gun_P)
  703. {
  704. LOG_INFO("Gun %d Get K1K2 P %s at Location %d",
  705. i + 1, LocationRelayResponse[location]->bits.Gun_P ? "On" : "Off", location + 1);
  706. }
  707. ShmOutputRelayConfirmed[i]->bits.Output_P = LocationRelayResponse[location]->bits.Gun_P;
  708. }
  709. // update parallel relay feedback status
  710. for(int i = 0; i < ShmChargerInfo->Control.MaxConnector - 1; i++)
  711. {
  712. bool relayOnOff = 0;
  713. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  714. {
  715. relayOnOff = LocationRelayResponse[i]->bits.Gun_Parallel_N_P;
  716. }
  717. else
  718. {
  719. bool original = ShmParallelRelayConfig->CtrlValue & (1 << i) ? false : true;
  720. relayOnOff = LocationRelayResponse[i]->bits.Gun_Parallel_N_P == LocationRelayResponse[i + 1]->bits.Gun_Parallel_N_P ?
  721. LocationRelayResponse[i]->bits.Gun_Parallel_N_P : original;
  722. #if 0
  723. if(LocationRelayResponse[i]->bits.Gun_Parallel_N_P != LocationRelayResponse[i + 1]->bits.Gun_Parallel_N_P)
  724. {
  725. LOG_INFO("Parallel Relay N & P at Location %d is Not Match: %d, %d",
  726. i + 1, LocationRelayResponse[i]->bits.Gun_Parallel_N_P, LocationRelayResponse[i + 1]->bits.Gun_Parallel_N_P);
  727. }
  728. #endif
  729. }
  730. if((ShmParallelRelayConfirmed->CtrlValue & (1 << i)) != (relayOnOff << i))
  731. {
  732. LOG_INFO("Get Parallel Relay N & P %s at Location %d", relayOnOff ? "On" : "Off", i + 1);
  733. }
  734. if(relayOnOff)
  735. {
  736. ShmParallelRelayConfirmed->CtrlValue |= 1 << i;
  737. }
  738. else
  739. {
  740. ShmParallelRelayConfirmed->CtrlValue &= ~(1 << i);
  741. }
  742. }
  743. }
  744. // 確認 K1 K2 relay 的狀態
  745. void CheckK1K2RelayOutput(byte index)
  746. {
  747. unsigned char location = 0;
  748. if(index < MAX_GROUP_QUANTITY && index < ShmChargerInfo->Control.MaxConnector)
  749. {
  750. location = ShmPsuGrouping->GroupCollection[index].Location;
  751. if(LocationRelayCtrl[location]->bits.Gun_N == LocationRelayCtrl[location]->bits.Gun_P)
  752. {
  753. _chargingData[index]->RelayK1K2Status = LocationRelayCtrl[location]->bits.Gun_N ? YES : NO;
  754. }
  755. }
  756. #if 0
  757. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  758. {
  759. // two relay board
  760. if (index == 0)
  761. {
  762. if (regRelay[0].relay_event.bits.Gun1_N == YES && regRelay[0].relay_event.bits.Gun1_P == YES)
  763. _chargingData[index]->RelayK1K2Status = YES;
  764. else
  765. _chargingData[index]->RelayK1K2Status = NO;
  766. }
  767. else if (index == 1)
  768. {
  769. if (regRelay[1].relay_event.bits.Gun2_N == YES && regRelay[1].relay_event.bits.Gun2_P == YES)
  770. _chargingData[index]->RelayK1K2Status = YES;
  771. else
  772. _chargingData[index]->RelayK1K2Status = NO;
  773. }
  774. if (regRelay[0].relay_event.bits.Gun1_Parallel_N == YES && regRelay[0].relay_event.bits.Gun1_Parallel_P == YES &&
  775. regRelay[0].relay_event.bits.Gun2_Parallel_N == YES && regRelay[0].relay_event.bits.Gun2_Parallel_P == YES &&
  776. regRelay[1].relay_event.bits.Gun1_Parallel_N == YES && regRelay[1].relay_event.bits.Gun1_Parallel_P == YES)
  777. ShmSysConfigAndInfo->SysInfo.BridgeRelayStatus = YES;
  778. else
  779. ShmSysConfigAndInfo->SysInfo.BridgeRelayStatus = NO;
  780. }
  781. else
  782. {
  783. // only one relay board
  784. if (index == 0)
  785. {
  786. if (regRelay[0].relay_event.bits.Gun1_N == YES && regRelay[0].relay_event.bits.Gun1_P == YES)
  787. _chargingData[index]->RelayK1K2Status = YES;
  788. else
  789. _chargingData[index]->RelayK1K2Status = NO;
  790. }
  791. else if (index == 1)
  792. {
  793. if (regRelay[0].relay_event.bits.Gun2_N == YES && regRelay[0].relay_event.bits.Gun2_P == YES)
  794. _chargingData[index]->RelayK1K2Status = YES;
  795. else
  796. _chargingData[index]->RelayK1K2Status = NO;
  797. }
  798. if (regRelay[0].relay_event.bits.Gun1_Parallel_N == YES && regRelay[0].relay_event.bits.Gun2_Parallel_N == YES)
  799. ShmSysConfigAndInfo->SysInfo.BridgeRelayStatus = YES;
  800. else
  801. ShmSysConfigAndInfo->SysInfo.BridgeRelayStatus = NO;
  802. }
  803. // LOG_INFO("Check Relay Output. index = %d, RelayKPK2Status = %d, BridgeRelayStatus = %d",
  804. // index, _chargingData[index]->RelayKPK2Status, ShmSysConfigAndInfo->SysInfo.BridgeRelayStatus);
  805. #endif
  806. }
  807. void GetGfdAdc()
  808. {
  809. // define : 每 0.2 ~ 1 秒一次
  810. // occur : <= 75k 歐姆 @ 150 - 750 Vdc
  811. // warning : >= 100 歐姆 && <= 500 歐姆 @ 150-750 Vdc
  812. // if (Query_Gfd_Adc(Uart5Fd, Addr.Relay, &gfd_adc) == PASS)
  813. // {
  814. // for (int i = 0; i < gunCount; i++)
  815. // {
  816. // if (_chargingData[i]->Type == 0x09 && !ShmSysConfigAndInfo->SysConfig.AlwaysGfdFlag)
  817. // {
  818. // if ((_chargingData[i]->PresentChargingVoltage * 10) >= VOUT_MIN_VOLTAGE)
  819. // _chargingData[i]->GroundFaultStatus = GFD_PASS;
  820. // continue;
  821. // }
  822. // if (i == 0)
  823. // {
  824. // _chargingData[i]->GroundFaultStatus = gfd_adc.result_conn1;
  825. // LOG_INFO("GFD ******** Result = %d, Step = %d, R = %d, Vol = %d",
  826. // _chargingData[i]->GroundFaultStatus, gfd_adc.rb_step_1, gfd_adc.Resister_conn1, gfd_adc.voltage_conn1);
  827. // if (_chargingData[i]->GroundFaultStatus == GFD_FAIL)
  828. // {
  829. // LOG_INFO("GFD Fail. index = %d, Step = %d, R = %d, Vol = %d",
  830. // i, gfd_adc.rb_step_1, gfd_adc.Resister_conn1, gfd_adc.voltage_conn1);
  831. // }
  832. // else if (_chargingData[i]->GroundFaultStatus == GFD_PASS ||
  833. // _chargingData[i]->GroundFaultStatus == GFD_WARNING)
  834. // {
  835. // if (_chargingData[i]->GroundFaultStatus == GFD_WARNING)
  836. // {
  837. // LOG_INFO("GFD Warning. index = %d, Result = %d, R = %d, Vol = %d",
  838. // i, _chargingData[i]->GroundFaultStatus, gfd_adc.Resister_conn1, gfd_adc.voltage_conn1);
  839. // }
  840. // }
  841. // }
  842. // else if (i == 1)
  843. // {
  844. // _chargingData[i]->GroundFaultStatus = gfd_adc.result_conn2;
  845. // if (_chargingData[i]->GroundFaultStatus == GFD_FAIL)
  846. // {
  847. // LOG_INFO("GFD Fail. index = %d, Step = %d, R = %d, Vol = %d",
  848. // i, gfd_adc.rb_step_2, gfd_adc.Resister_conn2, gfd_adc.voltage_conn2);
  849. // }
  850. // else if (_chargingData[i]->GroundFaultStatus == GFD_PASS ||
  851. // _chargingData[i]->GroundFaultStatus == GFD_WARNING)
  852. // {
  853. // if (_chargingData[i]->GroundFaultStatus == GFD_WARNING)
  854. // {
  855. // LOG_INFO("GFD Warning. index = %d, Result = %d, R = %d, Vol = %d",
  856. // i, _chargingData[i]->GroundFaultStatus, gfd_adc.Resister_conn1, gfd_adc.voltage_conn1);
  857. // }
  858. // }
  859. // }
  860. // }
  861. // }
  862. }
  863. void GetGpioInput()
  864. {
  865. if (Query_Gpio_Input(Uart5Fd, Addr.Aux, &gpio_in) == PASS)
  866. {
  867. // AC Contactor Status
  868. if (gpio_in.AC_MainBreaker == 1)
  869. {
  870. // AC Main Breaker ON
  871. LOG_INFO("RB AC Main Breaker.");
  872. }
  873. if (gpio_in.SPD == 1)
  874. {
  875. // SPD (雷擊保護) ON
  876. LOG_INFO("RB SPD.");
  877. }
  878. if (gpio_in.Door_Open == 1)
  879. {
  880. // Door Open
  881. LOG_INFO("RB Door Open.");
  882. }
  883. if (gpio_in.GFD[0] == 1)
  884. {
  885. // GFD_1 Trigger
  886. }
  887. if (gpio_in.GFD[1] == 1)
  888. {
  889. // GFD_2 Trigger
  890. }
  891. if (gpio_in.AC_Drop == 1)
  892. {
  893. // AC Drop
  894. LOG_INFO("RB AC Drop.");
  895. }
  896. if (gpio_in.Emergency_IO == 1)
  897. {
  898. // Emergency IO ON
  899. LOG_INFO("RB Emergency IO ON.");
  900. }
  901. if (gpio_in.Button_Emergency_Press == 1)
  902. {
  903. // Emergency button Press
  904. }
  905. if (gpio_in.Button_On_Press == 1)
  906. {
  907. // On button Press
  908. }
  909. if (gpio_in.Button_Off_Press == 1)
  910. {
  911. // Off button Press
  912. }
  913. if (gpio_in.Key_1_Press == 1)
  914. {
  915. // key 1 press
  916. }
  917. if (gpio_in.Key_2_Press == 1)
  918. {
  919. // key 2 press
  920. }
  921. if (gpio_in.Key_3_Press == 1)
  922. {
  923. // key 3 press
  924. }
  925. if (gpio_in.Key_4_Press == 1)
  926. {
  927. // key 4 press
  928. }
  929. }
  930. }
  931. // 5V 12V 24V 48V
  932. void GetAuxPower()
  933. {
  934. if (Query_Aux_PowerVoltage(Uart5Fd, Addr.Fan, &auxPower) == PASS)
  935. {
  936. ShmSysConfigAndInfo->SysInfo.AuxPower48V = auxPower.voltage[0];
  937. ShmSysConfigAndInfo->SysInfo.AuxPower24V = auxPower.voltage[1];
  938. //ShmSysConfigAndInfo->SysInfo.AuxPower12V = auxPower.voltage[4];
  939. //ShmSysConfigAndInfo->SysInfo.AuxPower5V = auxPower.voltage[6];
  940. // aux power voltage
  941. //LOG_INFO("aux1 = %x,", auxPower.voltage[0]);
  942. //LOG_INFO("aux2 = %x,", auxPower.voltage[1]);
  943. }
  944. }
  945. void SetFanModuleSpeed()
  946. {
  947. {
  948. FanSpeed _fanSpeed;
  949. _setFanSpeed += fanSpeedSmoothValue;
  950. if (_setFanSpeed >= ShmFanModuleData->SetFan1Speed)
  951. _setFanSpeed = ShmFanModuleData->SetFan1Speed;
  952. //printf("_setFanSpeed = %d \n", _setFanSpeed);
  953. _fanSpeed.speed[0] = _setFanSpeed;
  954. _fanSpeed.speed[1] = _setFanSpeed;
  955. _fanSpeed.speed[2] = _setFanSpeed;
  956. _fanSpeed.speed[3] = _setFanSpeed;
  957. if (Config_Fan_Speed(Uart5Fd, Addr.Fan, &_fanSpeed) == PASS)
  958. {
  959. //LOG_INFO("successfully Fan");
  960. }
  961. }
  962. }
  963. //==========================================
  964. // Common Function
  965. //==========================================
  966. void SetK1K2RelayStatus(byte index)
  967. {
  968. unsigned char location = 0;
  969. if(index < MAX_GROUP_QUANTITY && index < ShmChargerInfo->Control.MaxConnector)
  970. {
  971. if ((_chargingData[index]->SystemStatus >= S_PREPARING_FOR_EVSE &&
  972. _chargingData[index]->SystemStatus <= S_CHARGING))
  973. {
  974. if(!ShmOutputRelayConfig[index]->bits.Output_N || !ShmOutputRelayConfig[index]->bits.Output_P)
  975. {
  976. LOG_INFO("Gun %d Set K1K2 Close And Prepare To Charging", index + 1);
  977. }
  978. ShmOutputRelayConfig[index]->bits.Output_N = true;
  979. ShmOutputRelayConfig[index]->bits.Output_P = true;
  980. }
  981. else if ((_chargingData[index]->SystemStatus >= S_TERMINATING &&
  982. _chargingData[index]->SystemStatus <= S_COMPLETE) ||
  983. _chargingData[index]->SystemStatus == S_ALARM)
  984. {
  985. if ((_chargingData[index]->PresentChargingCurrent * 10) <= SEFETY_SWITCH_RELAY_CUR)
  986. {
  987. if(ShmOutputRelayConfig[index]->bits.Output_N || ShmOutputRelayConfig[index]->bits.Output_P)
  988. {
  989. LOG_INFO("Gun %d Set K1K2 Open And Charging Stop", index + 1);
  990. }
  991. ShmOutputRelayConfig[index]->bits.Output_N = false;
  992. ShmOutputRelayConfig[index]->bits.Output_P = false;
  993. }
  994. }
  995. else
  996. {
  997. if(ShmOutputRelayConfig[index]->bits.Output_N || ShmOutputRelayConfig[index]->bits.Output_P)
  998. {
  999. LOG_INFO("Gun %d Set K1K2 Open At Idle Mode", index + 1);
  1000. }
  1001. ShmOutputRelayConfig[index]->bits.Output_N = false;
  1002. ShmOutputRelayConfig[index]->bits.Output_P = false;
  1003. }
  1004. location = ShmPsuGrouping->GroupCollection[index].Location;
  1005. if(ShmOutputRelayConfig[index]->bits.Output_N != LocationRelayCtrl[location]->bits.Gun_N)
  1006. {
  1007. #if 0
  1008. LOG_INFO("Connector %d Set K1K2 N %s at Location %d",
  1009. index + 1, ShmOutputRelayConfig[index]->bits.Output_N ? "On" : "Off", location + 1);
  1010. #endif
  1011. }
  1012. LocationRelayCtrl[location]->bits.Gun_N = ShmOutputRelayConfig[index]->bits.Output_N;
  1013. if(ShmOutputRelayConfig[index]->bits.Output_P != LocationRelayCtrl[location]->bits.Gun_P)
  1014. {
  1015. #if 0
  1016. LOG_INFO("Connector %d Set K1K2 P %s at Location %d",
  1017. index + 1, ShmOutputRelayConfig[index]->bits.Output_P ? "On" : "Off", location + 1);
  1018. #endif
  1019. }
  1020. LocationRelayCtrl[location]->bits.Gun_P = ShmOutputRelayConfig[index]->bits.Output_P;
  1021. }
  1022. }
  1023. void SetParalleRelayStatus()
  1024. {
  1025. for(int i = 0; i < ShmChargerInfo->Control.MaxConnector - 1; i++)
  1026. {
  1027. if((ShmParallelRelayConfig->CtrlValue & (1 << i)) != (LocationRelayCtrl[i]->bits.Gun_Parallel_N_P << i))
  1028. {
  1029. #if 0
  1030. LOG_INFO("Set Parallel Relay N & P %s at Location %d",
  1031. (ShmParallelRelayConfig->CtrlValue & (1 << i)) ? "On" : "Off", i + 1);
  1032. #endif
  1033. }
  1034. LocationRelayCtrl[i]->bits.Gun_Parallel_N_P = (ShmParallelRelayConfig->CtrlValue & (1 << i)) ? YES : NO;
  1035. if(!ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  1036. {
  1037. if((ShmParallelRelayConfig->CtrlValue & (1 << i)) != (LocationRelayCtrl[i]->bits.Gun_Parallel_P << i))
  1038. {
  1039. #if 0
  1040. LOG_INFO("Set Parallel Relay P %s at Location %d",
  1041. (ShmParallelRelayConfig->CtrlValue & (1 << i)) ? "On" : "Off", i + 1);
  1042. #endif
  1043. }
  1044. LocationRelayCtrl[i + 1]->bits.Gun_Parallel_N_P = (ShmParallelRelayConfig->CtrlValue & (1 << i)) ? YES : NO;
  1045. }
  1046. }
  1047. }
  1048. void SetAcContactorStatus(void)
  1049. {
  1050. if(ShmChargerInfo->Control.RelayCtrl.bits.AcContactor == YES &&
  1051. ShmChargerInfo->Control.RelayCtrl.bits.AcContactorOffByPsu == NO &&
  1052. ShmChargerInfo->Control.RelayCtrl.bits.AcContactorOffByEmergency == NO)
  1053. {
  1054. outputRelay[0].relay_event.bits.AC_Contactor = YES;
  1055. }
  1056. else
  1057. {
  1058. outputRelay[0].relay_event.bits.AC_Contactor = NO;
  1059. }
  1060. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  1061. {
  1062. if(ShmChargerInfo->Control.RelayCtrl.bits.AcContactor == YES &&
  1063. ShmChargerInfo->Control.RelayCtrl.bits.AcContactorOffByPsu == NO &&
  1064. ShmChargerInfo->Control.RelayCtrl.bits.AcContactorOffByEmergency == NO)
  1065. {
  1066. outputRelay[1].relay_event.bits.AC_Contactor = YES;
  1067. }
  1068. else
  1069. {
  1070. outputRelay[1].relay_event.bits.AC_Contactor = NO;
  1071. }
  1072. }
  1073. }
  1074. void CheckAlarmOccur()
  1075. {
  1076. bool isErr = false;
  1077. for(byte count = 0; count < sizeof(_alarm_code)/sizeof(_alarm_code[0]); count++)
  1078. {
  1079. if (acAlarmCode.AcAlarmCode & _alarm_code[count])
  1080. {
  1081. isErr = true;
  1082. switch(_alarm_code[count])
  1083. {
  1084. case AC_OVP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcSystemInputOVP = YES; break;
  1085. case AC_UVP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcSystemInputUVP = YES; break;
  1086. case AC_OCP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemAcOutputOCP = YES; break;
  1087. case AC_OTP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemAmbientOTP = YES; break;
  1088. case AC_GMI_FAULT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcGroundfaultFail = YES; break;
  1089. case AC_CP_ERROR: ShmStatusCodeData->InfoCode.InfoEvents.bits.PilotFault = YES; break;
  1090. case AC_AC_LEAKAGE: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.RcdTrip = YES; break;
  1091. case AC_DC_LEAKAGE: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.RcdTrip = YES; break;
  1092. case AC_SYSTEM_SELFTEST_FAULT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.McuSelftestFail = YES; break;
  1093. case AC_HANDSHAKE_TIMEOUT: break;
  1094. //case AC_EMC_STOP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.EmergencyStopTrip = YES; break;
  1095. case AC_RELAY_WELDING: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcOutputRelayWelding = YES; break;
  1096. case AC_GF_MODULE_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.RcdSelfTestFail = YES; break;
  1097. case AC_SHUTTER_FAULT: break;
  1098. case AC_LOCKER_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcConnectorLockFail = YES; break;
  1099. case AC_POWER_DROP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputDrop = YES; break;
  1100. case AC_CIRCUIT_SHORT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.CircuitShort = YES; break;
  1101. case AC_ROTARY_SWITCH_FAULT: break;
  1102. case AC_RELAY_DRIVE_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcOutputRelayDrivingFault = YES; break;
  1103. }
  1104. }
  1105. else
  1106. {
  1107. switch(_alarm_code[count])
  1108. {
  1109. case AC_OVP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcSystemInputOVP = NO; break;
  1110. case AC_UVP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcSystemInputUVP = NO; break;
  1111. case AC_OCP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemAcOutputOCP = NO; break;
  1112. case AC_OTP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemAmbientOTP = NO; break;
  1113. case AC_GMI_FAULT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.AcGroundfaultFail = NO; break;
  1114. case AC_CP_ERROR: ShmStatusCodeData->InfoCode.InfoEvents.bits.PilotFault = NO; break;
  1115. case AC_AC_LEAKAGE: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.RcdTrip = NO; break;
  1116. case AC_DC_LEAKAGE: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.RcdTrip = NO; break;
  1117. case AC_SYSTEM_SELFTEST_FAULT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.McuSelftestFail = NO; break;
  1118. case AC_HANDSHAKE_TIMEOUT: break;
  1119. //case AC_EMC_STOP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.EmergencyStopTrip = NO; break;
  1120. case AC_RELAY_WELDING: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcOutputRelayWelding = NO; break;
  1121. case AC_GF_MODULE_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.RcdSelfTestFail = NO; break;
  1122. case AC_SHUTTER_FAULT: break;
  1123. case AC_LOCKER_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcConnectorLockFail = NO; break;
  1124. case AC_POWER_DROP: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.SystemL1InputDrop = NO; break;
  1125. case AC_CIRCUIT_SHORT: ShmStatusCodeData->AlarmCode.AlarmEvents.bits.CircuitShort = NO; break;
  1126. case AC_ROTARY_SWITCH_FAULT: break;
  1127. case AC_RELAY_DRIVE_FAULT: ShmStatusCodeData->FaultCode.FaultEvents.bits.AcOutputRelayDrivingFault = NO; break;
  1128. }
  1129. }
  1130. }
  1131. ac_chargingInfo[0]->IsErrorOccur = isErr;
  1132. }
  1133. bool IsNoneMatchLedColor()
  1134. {
  1135. bool result = false;
  1136. if (cur_led_color.Connect_1_Red != led_color.Connect_1_Red ||
  1137. cur_led_color.Connect_1_Green != led_color.Connect_1_Green ||
  1138. cur_led_color.Connect_1_Blue != led_color.Connect_1_Blue ||
  1139. cur_led_color.Connect_2_Red != led_color.Connect_2_Red ||
  1140. cur_led_color.Connect_2_Green != led_color.Connect_2_Green ||
  1141. cur_led_color.Connect_2_Blue != led_color.Connect_2_Blue)
  1142. {
  1143. result = true;
  1144. }
  1145. return result;
  1146. }
  1147. void SetLedColor(struct ChargingInfoData *chargingData_1, struct ChargingInfoData *chargingData_2)
  1148. {
  1149. byte _colorBuf = COLOR_MAX_LV * LED_INTENSITY_BRIGHTEST;
  1150. if (ShmSysConfigAndInfo->SysConfig.LedInfo.Intensity == _LED_INTENSITY_DARKEST)
  1151. _colorBuf = COLOR_MAX_LV * LED_INTENSITY_DARKEST;
  1152. else if (ShmSysConfigAndInfo->SysConfig.LedInfo.Intensity == _LED_INTENSITY_MEDIUM)
  1153. _colorBuf = COLOR_MAX_LV * LED_INTENSITY_MEDIUM;
  1154. if (ShmSysConfigAndInfo->SysInfo.IsAlternatvieConf)
  1155. {
  1156. if ((chargingData_1->SystemStatus == S_BOOTING || chargingData_1->SystemStatus == S_IDLE || chargingData_1->SystemStatus == S_RESERVATION) &&
  1157. (chargingData_2->SystemStatus == S_BOOTING || chargingData_2->SystemStatus == S_IDLE || chargingData_2->SystemStatus == S_RESERVATION))
  1158. {
  1159. led_color.Connect_1_Green = _colorBuf;
  1160. led_color.Connect_1_Blue = COLOR_MIN_LV;
  1161. led_color.Connect_1_Red = COLOR_MIN_LV;
  1162. led_color.Connect_2_Green = _colorBuf;
  1163. led_color.Connect_2_Blue = COLOR_MIN_LV;
  1164. led_color.Connect_2_Red = COLOR_MIN_LV;
  1165. }
  1166. else if ((chargingData_1->SystemStatus >= S_AUTHORIZING && chargingData_1->SystemStatus <= S_COMPLETE) ||
  1167. (chargingData_1->SystemStatus >= S_CCS_PRECHARGE_ST0 && chargingData_1->SystemStatus <= S_CCS_PRECHARGE_ST1) ||
  1168. (chargingData_2->SystemStatus >= S_AUTHORIZING && chargingData_2->SystemStatus <= S_COMPLETE) ||
  1169. (chargingData_2->SystemStatus >= S_CCS_PRECHARGE_ST0 && chargingData_2->SystemStatus <= S_CCS_PRECHARGE_ST1))
  1170. {
  1171. led_color.Connect_1_Green = COLOR_MIN_LV;
  1172. led_color.Connect_1_Blue = _colorBuf;
  1173. led_color.Connect_1_Red = COLOR_MIN_LV;
  1174. led_color.Connect_2_Green = COLOR_MIN_LV;
  1175. led_color.Connect_2_Blue = _colorBuf;
  1176. led_color.Connect_2_Red = COLOR_MIN_LV;
  1177. }
  1178. }
  1179. else
  1180. {
  1181. if (chargingData_1->SystemStatus == S_BOOTING || chargingData_1->SystemStatus == S_IDLE || chargingData_1->SystemStatus == S_RESERVATION)
  1182. {
  1183. led_color.Connect_1_Green = _colorBuf;
  1184. led_color.Connect_1_Blue = COLOR_MIN_LV;
  1185. led_color.Connect_1_Red = COLOR_MIN_LV;
  1186. }
  1187. else if ((chargingData_1->SystemStatus >= S_AUTHORIZING && chargingData_1->SystemStatus <= S_COMPLETE) ||
  1188. (chargingData_1->SystemStatus >= S_CCS_PRECHARGE_ST0 && chargingData_1->SystemStatus <= S_CCS_PRECHARGE_ST1))
  1189. {
  1190. led_color.Connect_1_Green = COLOR_MIN_LV;
  1191. led_color.Connect_1_Blue = _colorBuf;
  1192. led_color.Connect_1_Red = COLOR_MIN_LV;
  1193. }
  1194. // --------------------------------------------------------------------------
  1195. if (chargingData_2->SystemStatus == S_BOOTING || chargingData_2->SystemStatus == S_IDLE || chargingData_2->SystemStatus == S_RESERVATION)
  1196. {
  1197. led_color.Connect_2_Green = _colorBuf;
  1198. led_color.Connect_2_Blue = COLOR_MIN_LV;
  1199. led_color.Connect_2_Red = COLOR_MIN_LV;
  1200. }
  1201. else if ((chargingData_2->SystemStatus >= S_AUTHORIZING && chargingData_2->SystemStatus <= S_COMPLETE) ||
  1202. (chargingData_2->SystemStatus >= S_CCS_PRECHARGE_ST0 && chargingData_2->SystemStatus <= S_CCS_PRECHARGE_ST1))
  1203. {
  1204. led_color.Connect_2_Green = COLOR_MIN_LV;
  1205. led_color.Connect_2_Blue = _colorBuf;
  1206. led_color.Connect_2_Red = COLOR_MIN_LV;
  1207. }
  1208. }
  1209. if (ShmSysConfigAndInfo->SysWarningInfo.Level == 2)
  1210. {
  1211. led_color.Connect_1_Green = COLOR_MIN_LV;
  1212. led_color.Connect_1_Blue = COLOR_MIN_LV;
  1213. led_color.Connect_1_Red = _colorBuf;
  1214. led_color.Connect_2_Green = COLOR_MIN_LV;
  1215. led_color.Connect_2_Blue = COLOR_MIN_LV;
  1216. led_color.Connect_2_Red = _colorBuf;
  1217. }
  1218. if (_checkLedChanged > 0)
  1219. {
  1220. if (Config_Led_Color(Uart5Fd, Addr.Led, &led_color) == PASS)
  1221. {
  1222. _checkLedChanged--;
  1223. cur_led_color.Connect_1_Red = led_color.Connect_1_Red;
  1224. cur_led_color.Connect_1_Green = led_color.Connect_1_Green;
  1225. cur_led_color.Connect_1_Blue = led_color.Connect_1_Blue;
  1226. cur_led_color.Connect_2_Red = led_color.Connect_2_Red;
  1227. cur_led_color.Connect_2_Green = led_color.Connect_2_Green;
  1228. cur_led_color.Connect_2_Blue = led_color.Connect_2_Blue;
  1229. }
  1230. }
  1231. else if (IsNoneMatchLedColor())
  1232. _checkLedChanged = 3;
  1233. }
  1234. //==========================================
  1235. // Init all share memory
  1236. //==========================================
  1237. int InitShareMemory()
  1238. {
  1239. int result = PASS;
  1240. int MeterSMId;
  1241. if ((MeterSMId = shmget(ShmSysConfigAndInfoKey, sizeof(struct SysConfigAndInfo), 0777)) < 0)
  1242. {
  1243. #ifdef SystemLogMessage
  1244. LOG_ERROR("shmget ShmSysConfigAndInfo NG");
  1245. #endif
  1246. result = FAIL;
  1247. }
  1248. else if ((ShmSysConfigAndInfo = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1249. {
  1250. #ifdef SystemLogMessage
  1251. LOG_ERROR("[shmat ShmSysConfigAndInfo NG");
  1252. #endif
  1253. result = FAIL;
  1254. }
  1255. if ((MeterSMId = shmget(ShmStatusCodeKey, sizeof(struct StatusCodeData), 0777)) < 0)
  1256. {
  1257. #ifdef SystemLogMessage
  1258. LOG_ERROR("shmget ShmStatusCodeData NG");
  1259. #endif
  1260. result = FAIL;
  1261. }
  1262. else if ((ShmStatusCodeData = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1263. {
  1264. #ifdef SystemLogMessage
  1265. LOG_ERROR("shmat ShmStatusCodeData NG");
  1266. #endif
  1267. result = FAIL;
  1268. }
  1269. if ((MeterSMId = shmget(ShmFanBdKey, sizeof(struct FanModuleData), 0777)) < 0)
  1270. {
  1271. #ifdef SystemLogMessage
  1272. LOG_ERROR("shmget ShmFanModuleData NG");
  1273. #endif
  1274. result = FAIL;
  1275. }
  1276. else if ((ShmFanModuleData = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1277. {
  1278. #ifdef SystemLogMessage
  1279. LOG_ERROR("shmat ShmFanModuleData NG");
  1280. #endif
  1281. result = FAIL;
  1282. }
  1283. memset(ShmFanModuleData,0,sizeof(struct FanModuleData));
  1284. if ((MeterSMId = shmget(ShmRelayBdKey, sizeof(struct RelayModuleData), 0777)) < 0)
  1285. {
  1286. #ifdef SystemLogMessage
  1287. LOG_ERROR("shmget ShmRelayModuleData NG");
  1288. #endif
  1289. result = FAIL;
  1290. }
  1291. else if ((ShmRelayModuleData[0] = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1292. {
  1293. #ifdef SystemLogMessage
  1294. LOG_ERROR("shmat ShmRelayModuleData NG");
  1295. #endif
  1296. result = FAIL;
  1297. }
  1298. memset(ShmRelayModuleData[0],0,sizeof(struct RelayModuleData));
  1299. // DO360 RC2
  1300. if ((MeterSMId = shmget(ShmRelay2BdKey, sizeof(struct RelayModuleData), 0777)) < 0)
  1301. {
  1302. #ifdef SystemLogMessage
  1303. LOG_ERROR("shmget ShmRelay2ModuleData NG");
  1304. #endif
  1305. result = FAIL;
  1306. }
  1307. else if ((ShmRelayModuleData[1] = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1308. {
  1309. #ifdef SystemLogMessage
  1310. LOG_ERROR("shmat ShmRelay2ModuleData NG");
  1311. #endif
  1312. result = FAIL;
  1313. }
  1314. memset(ShmRelayModuleData[1],0,sizeof(struct RelayModuleData));
  1315. if ((MeterSMId = shmget(ShmLedBdKey, sizeof(struct LedModuleData), 0777)) < 0)
  1316. {
  1317. #ifdef SystemLogMessage
  1318. LOG_ERROR("shmget ShmLedModuleData NG");
  1319. #endif
  1320. result = FAIL;
  1321. }
  1322. else if ((ShmLedModuleData = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1323. {
  1324. #ifdef SystemLogMessage
  1325. LOG_ERROR("shmat ShmLedModuleData NG");
  1326. #endif
  1327. result = FAIL;
  1328. }
  1329. memset(ShmLedModuleData,0,sizeof(struct LedModuleData));
  1330. if ((MeterSMId = shmget(ShmPsuKey, sizeof(struct PsuData), 0777)) < 0)
  1331. {
  1332. #ifdef SystemLogMessage
  1333. LOG_ERROR("shmget ShmPsuData NG");
  1334. #endif
  1335. result = FAIL;
  1336. }
  1337. else if ((ShmPsuData = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1338. {
  1339. #ifdef SystemLogMessage
  1340. LOG_ERROR("shmat ShmPsuData NG");
  1341. #endif
  1342. result = FAIL;
  1343. }
  1344. if ((MeterSMId = shmget(ShmOcppModuleKey, sizeof(struct OCPP16Data), 0777)) < 0)
  1345. {
  1346. #ifdef SystemLogMessage
  1347. LOG_ERROR("shmat ShmOCPP16Data NG");
  1348. #endif
  1349. result = FAIL;
  1350. }
  1351. else if ((ShmOCPP16Data = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1352. {
  1353. #ifdef SystemLogMessage
  1354. LOG_ERROR("shmat ShmOCPP16Data NG");
  1355. #endif
  1356. result = FAIL;
  1357. }
  1358. if ((MeterSMId = shmget(SM_ChargerInfoKey, sizeof(ChargerInfoData), 0777)) < 0)
  1359. {
  1360. #ifdef SystemLogMessage
  1361. LOG_ERROR("shmat ChargerInfoData NG");
  1362. #endif
  1363. result = FAIL;
  1364. }
  1365. else if ((ShmChargerInfo = shmat(MeterSMId, NULL, 0)) == (void *) -1)
  1366. {
  1367. #ifdef SystemLogMessage
  1368. LOG_ERROR("shmat ChargerInfoData NG");
  1369. #endif
  1370. result = FAIL;
  1371. }
  1372. if(result == PASS)
  1373. {
  1374. ShmPsuGrouping = &ShmChargerInfo->PsuGrouping;
  1375. for(int i = 0; i < MAX_GROUP_QUANTITY; i++)
  1376. {
  1377. ShmOutputRelayConfig[i] = &ShmChargerInfo->PsuGrouping.OutputRelayConfig[i];
  1378. ShmOutputRelayConfirmed[i] = &ShmChargerInfo->PsuGrouping.OutputRelayConfirmed[i];
  1379. }
  1380. ShmParallelRelayConfig = &ShmChargerInfo->PsuGrouping.ParallelRelayConfig;
  1381. ShmParallelRelayConfirmed = &ShmChargerInfo->PsuGrouping.ParallelRelayConfirmed;
  1382. if(ShmChargerInfo->Control.SysCtrl.bits.RelayBoardDisable == false)
  1383. {
  1384. LocationRelayCtrl[0] = (RBRelayControl *)&outputRelay[0].relay_event.relay_status[1];
  1385. LocationRelayCtrl[1] = (RBRelayControl *)&outputRelay[0].relay_event.relay_status[2];
  1386. LocationRelayResponse[0] = (RBRelayControl *)&regRelay[0].relay_event.relay_status[1];
  1387. LocationRelayResponse[1] = (RBRelayControl *)&regRelay[0].relay_event.relay_status[2];
  1388. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  1389. {
  1390. LocationRelayCtrl[2] = (RBRelayControl *)&outputRelay[1].relay_event.relay_status[1];
  1391. LocationRelayCtrl[3] = (RBRelayControl *)&outputRelay[1].relay_event.relay_status[2];
  1392. LocationRelayResponse[2] = (RBRelayControl *)&regRelay[1].relay_event.relay_status[1];
  1393. LocationRelayResponse[3] = (RBRelayControl *)&regRelay[1].relay_event.relay_status[2];
  1394. }
  1395. }
  1396. }
  1397. return result;
  1398. }
  1399. int InitComPort()
  1400. {
  1401. int fd;
  1402. struct termios tios;
  1403. fd = open(relayRs485PortName, O_RDWR);
  1404. if(fd <= 0)
  1405. {
  1406. #ifdef SystemLogMessage
  1407. LOG_ERROR("Module_InternalComm. InitComPort NG");
  1408. #endif
  1409. if(ShmStatusCodeData!=NULL)
  1410. {
  1411. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.CsuInitFailed=1;
  1412. }
  1413. sleep(5);
  1414. return -1;
  1415. }
  1416. ioctl (fd, TCGETS, &tios);
  1417. tios.c_cflag = B115200 | CS8 | CLOCAL | CREAD;
  1418. tios.c_lflag = 0;
  1419. tios.c_iflag = 0;
  1420. tios.c_oflag = 0;
  1421. tios.c_cc[VMIN]=0;
  1422. tios.c_cc[VTIME]=(byte)0; // timeout 0.5 second
  1423. tios.c_lflag=0;
  1424. tcflush(fd, TCIFLUSH);
  1425. ioctl (fd, TCSETS, &tios);
  1426. return fd;
  1427. }
  1428. //================================================
  1429. // Main process
  1430. //================================================
  1431. bool FindChargingInfoData(byte target, struct ChargingInfoData **chargingData)
  1432. {
  1433. for (byte index = 0; index < CHAdeMO_QUANTITY; index++) {
  1434. if (ShmSysConfigAndInfo->SysInfo.ChademoChargingData[index].Index
  1435. == target) {
  1436. chargingData[target] =
  1437. &ShmSysConfigAndInfo->SysInfo.ChademoChargingData[index];
  1438. return true;
  1439. }
  1440. }
  1441. for (byte index = 0; index < CCS_QUANTITY; index++) {
  1442. if (ShmSysConfigAndInfo->SysInfo.CcsChargingData[index].Index
  1443. == target) {
  1444. chargingData[target] =
  1445. &ShmSysConfigAndInfo->SysInfo.CcsChargingData[index];
  1446. return true;
  1447. }
  1448. }
  1449. for (byte index = 0; index < GB_QUANTITY; index++) {
  1450. if (ShmSysConfigAndInfo->SysInfo.GbChargingData[index].Index
  1451. == target) {
  1452. chargingData[target] =
  1453. &ShmSysConfigAndInfo->SysInfo.GbChargingData[index];
  1454. return true;
  1455. }
  1456. }
  1457. //DO360
  1458. if(GENERAL_GUN_QUANTITY > 0 && target < GENERAL_GUN_QUANTITY)
  1459. {
  1460. ShmSysConfigAndInfo->SysInfo.ConnectorInfo[target].GeneralChargingData.Index = target;
  1461. chargingData[target] = &ShmSysConfigAndInfo->SysInfo.ConnectorInfo[target].GeneralChargingData;
  1462. return true;
  1463. }
  1464. return false;
  1465. }
  1466. bool FindAcChargingInfoData(byte target, struct ChargingInfoData **acChargingData)
  1467. {
  1468. if (target < AC_QUANTITY)
  1469. {
  1470. acChargingData[target] = &ShmSysConfigAndInfo->SysInfo.AcChargingData[target];
  1471. return true;
  1472. }
  1473. return false;
  1474. }
  1475. void Initialization()
  1476. {
  1477. bool isPass = false;
  1478. for (byte index = 0; index < ARRAY_SIZE(outputRelay[0].relay_event.relay_status); index++)
  1479. {
  1480. outputRelay[0].relay_event.relay_status[index] = 0x00;
  1481. outputRelay[1].relay_event.relay_status[index] = 0x00;
  1482. }
  1483. while(!isPass)
  1484. {
  1485. isPass = true;
  1486. for (byte _index = 0; _index < gunCount; _index++)
  1487. {
  1488. if (!FindChargingInfoData(_index, &_chargingData[0]))
  1489. {
  1490. LOG_ERROR("InternalComm : FindChargingInfoData false");
  1491. isPass = false;
  1492. break;
  1493. }
  1494. }
  1495. sleep(1);
  1496. }
  1497. isPass = false;
  1498. if (acgunCount > 0)
  1499. {
  1500. while(!isPass)
  1501. {
  1502. isPass = true;
  1503. for (byte _index = 0; _index < acgunCount; _index++)
  1504. {
  1505. if (!FindAcChargingInfoData(_index, &ac_chargingInfo[0]))
  1506. {
  1507. LOG_ERROR("EvComm : FindAcChargingInfoData false");
  1508. isPass = false;
  1509. break;
  1510. }
  1511. }
  1512. sleep(1);
  1513. }
  1514. }
  1515. }
  1516. bool IsNoneMatchRelayStatus(byte index)
  1517. {
  1518. bool result = false;
  1519. if(regRelay[index].relay_event.relay_status[0] != outputRelay[index].relay_event.relay_status[0] ||
  1520. regRelay[index].relay_event.relay_status[1] != outputRelay[index].relay_event.relay_status[1] ||
  1521. regRelay[index].relay_event.relay_status[2] != outputRelay[index].relay_event.relay_status[2])
  1522. {
  1523. if(TempRegRelay[index].relay_event.bits.AC_Contactor != outputRelay[index].relay_event.bits.AC_Contactor)
  1524. {
  1525. LOG_INFO("[%d]AC Contact Relay none match, need to %s", index,
  1526. outputRelay[index].relay_event.bits.AC_Contactor == YES ? "On" : "Off");
  1527. }
  1528. if(TempRegRelay[index].relay_event.bits.CCS_Precharge != outputRelay[index].relay_event.bits.CCS_Precharge)
  1529. {
  1530. #if 0
  1531. LOG_INFO("[%d]CCS Precharge Relay none match, need to %s", index,
  1532. outputRelay[index].relay_event.bits.CCS_Precharge == YES ? "On" : "Off");
  1533. #endif
  1534. }
  1535. if(TempRegRelay[index].relay_event.bits.Gun1_P != outputRelay[index].relay_event.bits.Gun1_P)
  1536. {
  1537. #if 0
  1538. LOG_INFO("[%d]SMR1:D+ Relay none match, need to %s", index,
  1539. outputRelay[index].relay_event.bits.Gun1_P == YES ? "On" : "Off");
  1540. #endif
  1541. }
  1542. if(TempRegRelay[index].relay_event.bits.Gun1_N != outputRelay[index].relay_event.bits.Gun1_N)
  1543. {
  1544. #if 0
  1545. LOG_INFO("[%d]SMR1:D- Relay none match, need to %s", index,
  1546. outputRelay[index].relay_event.bits.Gun1_N == YES ? "On" : "Off");
  1547. #endif
  1548. }
  1549. if(TempRegRelay[index].relay_event.bits.Gun2_P != outputRelay[index].relay_event.bits.Gun2_P)
  1550. {
  1551. #if 0
  1552. LOG_INFO("[%d]SMR2:D+ Relay none match, need to %s", index,
  1553. outputRelay[index].relay_event.bits.Gun2_P == YES ? "On" : "Off");
  1554. #endif
  1555. }
  1556. if(TempRegRelay[index].relay_event.bits.Gun2_N != outputRelay[index].relay_event.bits.Gun2_N)
  1557. {
  1558. #if 0
  1559. LOG_INFO("[%d]SMR2:D- Relay none match, need to %s", index,
  1560. outputRelay[index].relay_event.bits.Gun2_N == YES ? "On" : "Off");
  1561. #endif
  1562. }
  1563. if(TempRegRelay[index].relay_event.bits.Gun1_Parallel_P != outputRelay[index].relay_event.bits.Gun1_Parallel_P)
  1564. {
  1565. #if 0
  1566. LOG_INFO("[%d]Parallel:D+ Relay none match, need to %s", index,
  1567. outputRelay[index].relay_event.bits.Gun1_Parallel_P == YES ? "On" : "Off");
  1568. #endif
  1569. }
  1570. if(TempRegRelay[index].relay_event.bits.Gun1_Parallel_N != outputRelay[index].relay_event.bits.Gun1_Parallel_N)
  1571. {
  1572. #if 0
  1573. LOG_INFO("[%d]Parallel:D- Relay none match, need to %s", index,
  1574. outputRelay[index].relay_event.bits.Gun1_Parallel_N == YES ? "On" : "Off");
  1575. #endif
  1576. }
  1577. if(TempRegRelay[index].relay_event.bits.Gun2_Parallel_P != outputRelay[index].relay_event.bits.Gun2_Parallel_P)
  1578. {
  1579. #if 0
  1580. LOG_INFO("[%d]Parallel2:D+ Relay none match, need to %s", index,
  1581. outputRelay[index].relay_event.bits.Gun2_Parallel_P == YES ? "On" : "Off");
  1582. #endif
  1583. }
  1584. if(TempRegRelay[index].relay_event.bits.Gun2_Parallel_N != outputRelay[index].relay_event.bits.Gun2_Parallel_N)
  1585. {
  1586. #if 0
  1587. LOG_INFO("[%d]Parallel2:D- Relay none match, need to %s", index,
  1588. outputRelay[index].relay_event.bits.Gun2_Parallel_N == YES ? "On" : "Off");
  1589. #endif
  1590. }
  1591. TempRegRelay[index].relay_event.relay_status[0] = outputRelay[index].relay_event.relay_status[0];
  1592. TempRegRelay[index].relay_event.relay_status[1] = outputRelay[index].relay_event.relay_status[1];
  1593. TempRegRelay[index].relay_event.relay_status[2] = outputRelay[index].relay_event.relay_status[2];
  1594. result = true;
  1595. }
  1596. return result;
  1597. }
  1598. void CheckRelayStatusByADC()
  1599. {
  1600. if (ShmRelayModuleData[0]->Gun1FuseOutputVolt > 0 && ShmRelayModuleData[0]->Gun1RelayOutputVolt > 0 &&
  1601. (ShmRelayModuleData[0]->Gun1FuseOutputVolt == ShmRelayModuleData[0]->Gun1RelayOutputVolt))
  1602. {
  1603. // Relay 前後電壓一致
  1604. _chargingData[0]->RelayK1K2Status = 0x01;
  1605. }
  1606. else
  1607. _chargingData[0]->RelayK1K2Status = 0x00;
  1608. if (ShmRelayModuleData[1]->Gun2FuseOutputVolt > 0 && ShmRelayModuleData[1]->Gun2RelayOutputVolt > 0 &&
  1609. (ShmRelayModuleData[1]->Gun2FuseOutputVolt == ShmRelayModuleData[1]->Gun2RelayOutputVolt))
  1610. {
  1611. // Relay 前後電壓一致
  1612. _chargingData[1]->RelayK1K2Status = 0x01;
  1613. }
  1614. else
  1615. _chargingData[1]->RelayK1K2Status = 0x00;
  1616. }
  1617. void SetGfdConfig(byte index, byte resister)
  1618. {
  1619. gfd_config.index = index;
  1620. gfd_config.state = resister;
  1621. //LOG_INFO("************************GFD Vol = %d, GFD Res = %d", gfd_config.reqVol, gfd_config.resister);
  1622. if (Config_Gfd_Value(Uart5Fd, Addr.Relay, &gfd_config) == PASS)
  1623. {
  1624. // LOG_INFO("Set reqVol = %f, resister = %d",
  1625. // gfd_config.reqVol,
  1626. // gfd_config.resister);
  1627. }
  1628. }
  1629. /*
  1630. void CableCheckDetected(byte index)
  1631. {
  1632. // Cable Check
  1633. // 當火線上的電壓 = 車端要求的電壓電流
  1634. // _chargingData[targetGun]->EvBatterytargetVoltage
  1635. // 才可以開始偵測 1s
  1636. // Warning : Rgfd <= 150 歐/V 假設電壓為 500V 則~ Rgfd <= 75000 歐
  1637. // Pre-Warning : 150 歐/V < Rgfd <= 500 歐/V 假設電壓為 500V 則 75000 歐 < Rgfd <= 250000
  1638. // SO Normal : Rgfd > 500 歐/V 假設電壓為 500 V 則 Rgfd > 250000 歐
  1639. if ((_chargingData[index]->Type >= _Type_Chademo && _chargingData[index]->Type <= _Type_GB) ||
  1640. (_chargingData[index]->Type == 0x09 && ShmSysConfigAndInfo->SysConfig.AlwaysGfdFlag))
  1641. {
  1642. if ((_chargingData[index]->SystemStatus >= S_PREPARING_FOR_EVSE && _chargingData[index]->SystemStatus <= S_TERMINATING) ||
  1643. (_chargingData[index]->SystemStatus >= S_CCS_PRECHARGE_ST0 && _chargingData[index]->SystemStatus <= S_CCS_PRECHARGE_ST1))
  1644. {
  1645. if (_chargingData[index]->SystemStatus == S_PREPARING_FOR_EVSE &&
  1646. _chargingData[index]->RelayWeldingCheck == YES)
  1647. {
  1648. SetGfdConfig(index, GFD_CABLECHK);
  1649. }
  1650. else if (_chargingData[index]->SystemStatus >= S_CCS_PRECHARGE_ST0 &&
  1651. _chargingData[index]->SystemStatus <= S_CCS_PRECHARGE_ST1)
  1652. {
  1653. SetGfdConfig(index, GFD_PRECHARGE);
  1654. }
  1655. else if (_chargingData[index]->SystemStatus >= S_CHARGING &&
  1656. _chargingData[index]->SystemStatus <= S_TERMINATING)
  1657. {
  1658. if (_chargingData[index]->Type == _Type_GB || _chargingData[index]->Type == _Type_Chademo)
  1659. SetGfdConfig(index, GFD_IDLE);
  1660. else
  1661. SetGfdConfig(index, GFD_CHARGING);
  1662. }
  1663. }
  1664. else if(_chargingData[index]->SystemStatus == S_COMPLETE || _chargingData[index]->SystemStatus == S_PREPARNING
  1665. || _chargingData[index]->SystemStatus == S_IDLE)
  1666. {
  1667. SetGfdConfig(index, GFD_IDLE);
  1668. }
  1669. }
  1670. }
  1671. */
  1672. void CheckOutputPowerOverCarReq(byte index)
  1673. {
  1674. float fireV = _chargingData[index]->FireChargingVoltage;
  1675. float carV = _chargingData[index]->EvBatterytargetVoltage * 10;
  1676. if ((_chargingData[index]->EvBatterytargetVoltage * 10) > 1500 &&
  1677. (_chargingData[index]->Type == _Type_Chademo ||
  1678. _chargingData[index]->Type == _Type_CCS_2 ||
  1679. _chargingData[index]->Type == _Type_GB))
  1680. {
  1681. if (fireV >= (carV + (carV * 0.1)))
  1682. {
  1683. LOG_INFO("[Module_InternalComm]CheckOutputPowerOverCarReq NG : fire = %f, battery = %f",
  1684. _chargingData[index]->FireChargingVoltage, (_chargingData[index]->EvBatterytargetVoltage * 10));
  1685. LOG_INFO("[Module_InternalComm]CheckOutputPowerOverCarReq NG : fire = %f, battery = %f",
  1686. _chargingData[index]->FireChargingVoltage, (_chargingData[index]->EvBatterytargetVoltage * 10));
  1687. _chargingData[index]->StopChargeFlag = YES;
  1688. }
  1689. }
  1690. }
  1691. void CheckOutputVolNoneMatchFire(byte index)
  1692. {
  1693. if ((_chargingData[index]->EvBatterytargetVoltage * 10) > 1500 &&
  1694. (_chargingData[index]->Type == _Type_Chademo ||
  1695. _chargingData[index]->Type == _Type_CCS_2 ||
  1696. _chargingData[index]->Type == _Type_GB))
  1697. {
  1698. if (((_chargingData[index]->PresentChargingVoltage * 10) < _chargingData[index]->FireChargingVoltage - 300) ||
  1699. ((_chargingData[index]->PresentChargingVoltage * 10) > _chargingData[index]->FireChargingVoltage + 300))
  1700. {
  1701. if (!_isOutputNoneMatch[index])
  1702. {
  1703. _isOutputNoneMatch[index] = YES;
  1704. gettimeofday(&_checkOutputNoneMatchTimer[index], NULL);
  1705. }
  1706. else
  1707. {
  1708. if ((GetTimeoutValue(_checkOutputNoneMatchTimer[index]) / 1000) >= 5000)
  1709. {
  1710. LOG_INFO("[Module_InternalComm]CheckOutputVolNoneMatchFire NG (%d) : pre = %f, fire = %f",
  1711. index, (_chargingData[index]->PresentChargingVoltage * 10), _chargingData[index]->FireChargingVoltage);
  1712. LOG_INFO("[Module_InternalComm]CheckOutputVolNoneMatchFire NG (%d): pre = %f, fire = %f",
  1713. index, (_chargingData[index]->PresentChargingVoltage * 10), _chargingData[index]->FireChargingVoltage);
  1714. _chargingData[index]->StopChargeFlag = YES;
  1715. }
  1716. }
  1717. }
  1718. else
  1719. _isOutputNoneMatch[index] = NO;
  1720. }
  1721. }
  1722. void CheckRelayWeldingStatus(byte index)
  1723. {
  1724. if (!_isRelayWelding[index])
  1725. {
  1726. if ((_chargingData[index]->PresentChargingVoltage * 10) >= VOUT_MIN_VOLTAGE * 10)
  1727. {
  1728. gettimeofday(&_checkRelayWeldingTimer[index], NULL);
  1729. _isRelayWelding[index] = YES;
  1730. }
  1731. }
  1732. else
  1733. {
  1734. if ((GetTimeoutValue(_checkRelayWeldingTimer[index]) / 1000) >= 1000)
  1735. {
  1736. _chargingData[index]->RelayWeldingCheck = YES;
  1737. return;
  1738. }
  1739. if (_chargingData[index]->FireChargingVoltage >= VOUT_MIN_VOLTAGE)
  1740. {
  1741. if (_chargingData[index]->Type == _Type_Chademo)
  1742. ShmStatusCodeData->FaultCode.FaultEvents.bits.ChademoOutputRelayWelding = YES;
  1743. else if (_chargingData[index]->Type == _Type_GB)
  1744. ShmStatusCodeData->FaultCode.FaultEvents.bits.GbOutputRelayWelding = YES;
  1745. else if (_chargingData[index]->Type == _Type_CCS_2)
  1746. ShmStatusCodeData->FaultCode.FaultEvents.bits.CcsOutputRelayWelding = YES;
  1747. LOG_INFO("CheckRelayWeldingStatus : fail");
  1748. _chargingData[index]->StopChargeFlag = YES;
  1749. }
  1750. }
  1751. }
  1752. void GetPsuTempForFanSpeed()
  1753. {
  1754. char temp = 0;
  1755. for (byte index = 0; index < ShmPsuData->GroupCount; index++)
  1756. {
  1757. for (byte count = 0; count < ShmPsuData->PsuGroup[index].GroupPresentPsuQuantity; count++)
  1758. {
  1759. if (temp < ShmPsuData->PsuGroup[index].PsuModule[count].ExletTemp)
  1760. temp = ShmPsuData->PsuGroup[index].PsuModule[count].ExletTemp;
  1761. }
  1762. }
  1763. ShmSysConfigAndInfo->SysInfo.SystemAmbientTemp = temp;
  1764. if (ShmSysConfigAndInfo->SysConfig.SwitchDebugFlag == NO)
  1765. {
  1766. if (ShmFanModuleData->TestFanSpeed == NORMAL_FAN_SPEED)
  1767. {
  1768. if (temp >= ENV_TEMP_MAX)
  1769. ShmFanModuleData->TestFanSpeed = MAX_FAN_SPEED;
  1770. }
  1771. else if (ShmFanModuleData->TestFanSpeed == MAX_FAN_SPEED)
  1772. {
  1773. if (temp <= ENV_TEMP_MIN)
  1774. ShmFanModuleData->TestFanSpeed = NORMAL_FAN_SPEED;
  1775. }
  1776. else
  1777. ShmFanModuleData->TestFanSpeed = NORMAL_FAN_SPEED;
  1778. }
  1779. }
  1780. void GetFanSpeedByFunction()
  1781. {
  1782. if (ShmSysConfigAndInfo->SysConfig.SwitchDebugFlag == YES)
  1783. return;
  1784. // 風控修改 :
  1785. // ******************************************************* //
  1786. //
  1787. // 當前PSU輸出總 KW PSU Temp
  1788. // 50 x -------------------- x ---------- + 0.5 x (PSU Temp - 70)
  1789. // 當前樁最大功率 KW 50
  1790. //
  1791. // ******************************************************* //
  1792. // 當前樁最大功率 KW : ShmPsuData->SystemAvailablePower
  1793. unsigned int _maxPower = ShmPsuData->SystemAvailablePower;
  1794. // 當前PSU輸出總 KW & PSU Temp :
  1795. unsigned char temp = 0;
  1796. float power = 0;
  1797. for (byte index = 0; index < ShmPsuData->GroupCount; index++)
  1798. {
  1799. for (byte count = 0; count < ShmPsuData->PsuGroup[index].GroupPresentPsuQuantity; count++)
  1800. {
  1801. if (temp < ShmPsuData->PsuGroup[index].PsuModule[count].ExletTemp)
  1802. temp = ShmPsuData->PsuGroup[index].PsuModule[count].ExletTemp;
  1803. }
  1804. power += (_chargingData[index]->PresentChargingPower * 10);
  1805. }
  1806. double _pw_rate = 0;
  1807. if (_maxPower > 0)
  1808. _pw_rate = power / (double)_maxPower;
  1809. double _temp_rate = 0;
  1810. if (temp > 0)
  1811. _temp_rate = (double)temp / 50;
  1812. unsigned char _temp_diff = 0;
  1813. if (temp > 70)
  1814. _temp_diff = temp - 70;
  1815. ShmFanModuleData->TestFanSpeed = (((50 * _pw_rate * _temp_rate) + (0.5 * _temp_diff)) / 100) * MAX_FAN_SPEED;
  1816. if (ShmFanModuleData->TestFanSpeed > MAX_FAN_SPEED)
  1817. ShmFanModuleData->TestFanSpeed = MAX_FAN_SPEED;
  1818. if (ShmFanModuleData->TestFanSpeed < 0)
  1819. ShmFanModuleData->TestFanSpeed = 0;
  1820. // -----------------------------------------------------------------------
  1821. // printf("power = %f \n", power);
  1822. // printf("_maxPower = %d \n", _maxPower);
  1823. // printf("temp = %d \n", temp);
  1824. //
  1825. // printf("_pw_rate = %f \n", _pw_rate);
  1826. // printf("_temp_rate = %f \n", _temp_rate);
  1827. // printf("_temp_diff = %d \n", _temp_diff);
  1828. // printf("fan rate = %f \n", (30 * _pw_rate * _temp_rate + 14 * _temp_diff));
  1829. // printf("ShmFanModuleData->TestFanSpeed = %d \n", ShmFanModuleData->TestFanSpeed);
  1830. }
  1831. void GetAcStatus()
  1832. {
  1833. if (Query_AC_Status(Uart5Fd, Addr.AcPlug, &acStatus) == PASS)
  1834. {
  1835. ShmSysConfigAndInfo->SysConfig.AcRatingCurrent = acStatus.MaxCurrent;
  1836. if(ShmSysConfigAndInfo->SysConfig.AcMaxChargingCurrent == 0)
  1837. ShmSysConfigAndInfo->SysConfig.AcMaxChargingCurrent = ShmSysConfigAndInfo->SysConfig.AcRatingCurrent;
  1838. ac_chargingInfo[0]->ConnectorPlugIn = acStatus.CpStatus;
  1839. // LOG_INFO("CpStatus = %d \n", acStatus.CpStatus);
  1840. // printf("CurLimit = %d \n", acStatus.CurLimit);
  1841. // printf("PilotVol_P = %d \n", acStatus.PilotVol_P);
  1842. // printf("PilotVol_N = %d \n", acStatus.PilotVol_N);
  1843. // printf("LockStatus = %d \n", acStatus.LockStatus);
  1844. // printf("RelayStatus = %d \n", acStatus.RelayStatus);
  1845. // printf("ShutterStatus = %d \n", acStatus.ShutterStatus);
  1846. // printf("MeterStatus = %d \n", acStatus.MeterStatus);
  1847. // printf("PpStatus = %d \n", acStatus.PpStatus);
  1848. // printf("MaxCurrent = %d \n", acStatus.MaxCurrent);
  1849. // printf("RotateSwitchStatus = %d \n", acStatus.RelayStatus);
  1850. // printf("============================== \n");
  1851. //
  1852. // ac_chargingInfo[0]->SystemStatus = acStatus.CpStatus;
  1853. }
  1854. // else
  1855. // LOG_INFO("GetAcStatus return fail. \n");
  1856. }
  1857. void GetAcAlarmCode()
  1858. {
  1859. if (Query_AC_Alarm_Code(Uart5Fd, Addr.AcPlug, &acAlarmCode) == PASS)
  1860. {
  1861. CheckAlarmOccur();
  1862. }
  1863. }
  1864. unsigned char GetChargingEnergy()
  1865. {
  1866. return Query_Charging_Energy(Uart5Fd, Addr.AcPlug, &acChargingEnergy);
  1867. }
  1868. unsigned char GetChargingCurrent()
  1869. {
  1870. return Query_Charging_Current(Uart5Fd, Addr.AcPlug, &acChargingCurrent);
  1871. }
  1872. void ChangeLedStatus()
  1873. {
  1874. if (ac_chargingInfo[0]->SystemStatus == S_IDLE)
  1875. ledStatus.ActionMode = 1;
  1876. else if (ac_chargingInfo[0]->SystemStatus == S_PREPARNING)
  1877. ledStatus.ActionMode = 3;
  1878. else if (ac_chargingInfo[0]->SystemStatus == S_CHARGING)
  1879. ledStatus.ActionMode = 4;
  1880. Config_LED_Status(Uart5Fd, Addr.AcPlug, &ledStatus);
  1881. }
  1882. void SetLegacyReq(byte _switch)
  1883. {
  1884. Config_Legacy_Req(Uart5Fd, Addr.AcPlug, _switch);
  1885. }
  1886. void SetCpDuty(byte _value)
  1887. {
  1888. Config_Ac_Duty(Uart5Fd, Addr.AcPlug, _value);
  1889. }
  1890. void ChangeToCsuMode()
  1891. {
  1892. ac_chargingInfo[0]->IsModeChagned = Config_CSU_Mode(Uart5Fd, Addr.AcPlug);
  1893. // if (ac_chargingInfo[0]->IsModeChagned == PASS)
  1894. // {
  1895. // Config_Reset_MCU(Uart5Fd, Addr.AcPlug);
  1896. // }
  1897. }
  1898. void ChangeStartOrStopDateTime(byte isStart)
  1899. {
  1900. char cmdBuf[32];
  1901. struct timeb csuTime;
  1902. struct tm *tmCSU;
  1903. ftime(&csuTime);
  1904. tmCSU = localtime(&csuTime.time);
  1905. sprintf(cmdBuf, "%04d-%02d-%02d %02d:%02d:%02d", tmCSU->tm_year + 1900,
  1906. tmCSU->tm_mon + 1, tmCSU->tm_mday, tmCSU->tm_hour, tmCSU->tm_min,
  1907. tmCSU->tm_sec);
  1908. if (isStart)
  1909. strcpy((char *)ac_chargingInfo[0]->StartDateTime, cmdBuf);
  1910. else
  1911. strcpy((char *)ac_chargingInfo[0]->StopDateTime, cmdBuf);
  1912. }
  1913. void OcppStartTransation(byte gunIndex)
  1914. {
  1915. if(strcmp((char *)ac_chargingInfo[0]->StartUserId, "") == EQUAL)
  1916. strcpy((char *)ShmOCPP16Data->StartTransaction[gunIndex].IdTag, (char *)ShmOCPP16Data->StartTransaction[gunIndex].IdTag);
  1917. else
  1918. strcpy((char *)ShmOCPP16Data->StartTransaction[gunIndex].IdTag, (char *)ac_chargingInfo[0]->StartUserId);
  1919. LOG_INFO("AC IdTag = %s", ShmOCPP16Data->StartTransaction[gunIndex].IdTag);
  1920. ShmOCPP16Data->CpMsg.bits[gunIndex].StartTransactionReq = YES;
  1921. }
  1922. void OcppStopTransation(byte gunIndex)
  1923. {
  1924. if(strcmp((char *)ac_chargingInfo[0]->StartUserId, "") == EQUAL)
  1925. strcpy((char *)ShmOCPP16Data->StopTransaction[gunIndex].IdTag, (char *)ShmOCPP16Data->StopTransaction[gunIndex].IdTag);
  1926. else
  1927. strcpy((char *)ShmOCPP16Data->StopTransaction[gunIndex].IdTag, (char *)ac_chargingInfo[0]->StartUserId);
  1928. LOG_INFO("AC IdTag = %s", ShmOCPP16Data->StopTransaction[gunIndex].IdTag);
  1929. ShmOCPP16Data->CpMsg.bits[gunIndex].StopTransactionReq = YES;
  1930. }
  1931. bool OcppRemoteStop(byte gunIndex)
  1932. {
  1933. bool result = ShmOCPP16Data->CsMsg.bits[gunIndex].RemoteStopTransactionReq;
  1934. if (ShmOCPP16Data->CsMsg.bits[gunIndex].RemoteStopTransactionReq == YES)
  1935. {
  1936. strcpy((char *)ShmOCPP16Data->StopTransaction[gunIndex].StopReason, "Remote");
  1937. ShmOCPP16Data->CsMsg.bits[gunIndex].RemoteStopTransactionReq = NO;
  1938. }
  1939. return result;
  1940. }
  1941. unsigned char isModeChange()
  1942. {
  1943. unsigned char result = NO;
  1944. if(ac_chargingInfo[0]->SystemStatus != ac_chargingInfo[0]->PreviousSystemStatus)
  1945. {
  1946. result = YES;
  1947. ac_chargingInfo[0]->PreviousSystemStatus = ac_chargingInfo[0]->SystemStatus;
  1948. }
  1949. return result;
  1950. }
  1951. void AcChargeTypeProcess()
  1952. {
  1953. if (acgunCount > 0)
  1954. {
  1955. //ac_chargingInfo[0]->SelfTest_Comp = YES;
  1956. //ac_chargingInfo[0]->IsModeChagned = PASS;
  1957. //---------------------------------------------
  1958. if (ac_chargingInfo[0]->SelfTest_Comp == NO)
  1959. {
  1960. ac_chargingInfo[0]->IsModeChagned = NO;
  1961. GetFwVersion_AC();
  1962. GetAcModelName();
  1963. }
  1964. else if (ac_chargingInfo[0]->SelfTest_Comp == YES)
  1965. {
  1966. if (ac_chargingInfo[0]->IsModeChagned != PASS)
  1967. {
  1968. ChangeToCsuMode();
  1969. return;
  1970. }
  1971. GetAcStatus();
  1972. GetAcAlarmCode();
  1973. byte _status = S_NONE;
  1974. if (ac_chargingInfo[0]->SystemStatus == S_IDLE && ac_chargingInfo[0]->IsErrorOccur)
  1975. {
  1976. _status = S_ALARM;
  1977. }
  1978. else if (acStatus.CpStatus == AC_SYS_A || ac_chargingInfo[0]->IsErrorOccur)
  1979. {
  1980. if (ac_chargingInfo[0]->SystemStatus == S_CHARGING)
  1981. _status = S_TERMINATING;
  1982. else if (ac_chargingInfo[0]->SystemStatus >= S_TERMINATING)
  1983. {
  1984. if (GetTimeoutValue(_ac_charging_comp) >= 10000000 && acStatus.CpStatus == AC_SYS_A)
  1985. _status = S_IDLE;
  1986. }
  1987. else
  1988. _status = S_IDLE;
  1989. }
  1990. else if (ac_chargingInfo[0]->SystemStatus >= S_PREPARNING &&
  1991. ac_chargingInfo[0]->SystemStatus < S_CHARGING)
  1992. {
  1993. if (acStatus.CpStatus == AC_SYS_C && acStatus.RelayStatus == YES)
  1994. _status = S_CHARGING;
  1995. else if (GetTimeoutValue(_ac_preparing) >= 30000000)
  1996. _status = S_IDLE;
  1997. }
  1998. else if ((acStatus.CpStatus == AC_SYS_B || ac_chargingInfo[0]->ConnectorPlugIn == AC_SYS_B) &&
  1999. ac_chargingInfo[0]->IsAvailable &&
  2000. !ac_chargingInfo[0]->IsErrorOccur &&
  2001. (ShmSysConfigAndInfo->SysInfo.WaitForPlugit == YES ||
  2002. ShmSysConfigAndInfo->SysConfig.AuthorisationMode == AUTH_MODE_DISABLE))
  2003. {
  2004. if (ac_chargingInfo[0]->RemoteStartFlag == YES)
  2005. {
  2006. LOG_INFO("** AC Remote");
  2007. ac_chargingInfo[0]->RemoteStartFlag = NO;
  2008. strcpy((char *)ac_chargingInfo[0]->StartUserId, "");
  2009. ShmSysConfigAndInfo->SysInfo.WaitForPlugit = NO;
  2010. _status = S_PREPARNING;
  2011. }
  2012. else if (ShmSysConfigAndInfo->SysInfo.OrderCharging == NO_DEFINE)
  2013. {
  2014. LOG_INFO("** UserId = %s", ShmSysConfigAndInfo->SysConfig.UserId);
  2015. strcpy((char *)ac_chargingInfo[0]->StartUserId, (char *)ShmSysConfigAndInfo->SysConfig.UserId);
  2016. LOG_INFO("** CardNumber = %s", ac_chargingInfo[0]->StartUserId);
  2017. strcpy((char *)ShmSysConfigAndInfo->SysConfig.UserId, "");
  2018. ShmSysConfigAndInfo->SysInfo.WaitForPlugit = NO;
  2019. _status = S_PREPARNING;
  2020. }
  2021. }
  2022. else if (ac_chargingInfo[0]->SystemStatus == S_CHARGING)
  2023. {
  2024. if (OcppRemoteStop(1))
  2025. _status = S_TERMINATING;
  2026. }
  2027. //printf("_status = %d \n", _status);
  2028. if (_status != S_NONE && ac_chargingInfo[0]->SystemStatus != _status)
  2029. {
  2030. ac_chargingInfo[0]->SystemStatus = _status;
  2031. }
  2032. // 設定限制最大充電電流 >= 6 ~ <= 32
  2033. switch(ac_chargingInfo[0]->SystemStatus)
  2034. {
  2035. case S_IDLE:
  2036. case S_ALARM:
  2037. {
  2038. if (isModeChange())
  2039. {
  2040. ac_chargingInfo[0]->PresentChargedEnergy = 0.0;
  2041. ac_chargingInfo[0]->PresentChargingVoltage = 0;
  2042. ac_chargingInfo[0]->ChargingFee = 0.0;
  2043. strcpy((char *)ac_chargingInfo[0]->StartDateTime, "");
  2044. strcpy((char *)ac_chargingInfo[0]->StopDateTime, "");
  2045. _beforeChargingTotalEnergy = 0.0;
  2046. }
  2047. ChangeLedStatus();
  2048. }
  2049. break;
  2050. case S_PREPARNING:
  2051. {
  2052. if (isModeChange())
  2053. {
  2054. //ShmSysConfigAndInfo->SysInfo.SystemPage = _LCM_NONE;
  2055. ShmSysConfigAndInfo->SysInfo.CurGunSelectedByAc = DEFAULT_AC_INDEX;
  2056. if (ShmSysConfigAndInfo->SysInfo.OrderCharging != NO_DEFINE)
  2057. ShmSysConfigAndInfo->SysInfo.OrderCharging = NO_DEFINE;
  2058. gettimeofday(&_ac_preparing, NULL);
  2059. }
  2060. if (GetChargingEnergy() == PASS)
  2061. {
  2062. //ac_chargingInfo[0]->PresentChargedEnergy = acChargingEnergy.Energy / 100;
  2063. _beforeChargingTotalEnergy = acChargingEnergy.Energy;
  2064. }
  2065. SetLegacyReq(YES);
  2066. ChangeLedStatus();
  2067. }
  2068. break;
  2069. case S_CHARGING:
  2070. {
  2071. if (isModeChange())
  2072. {
  2073. ftime(&_ac_startChargingTime);
  2074. OcppStartTransation(1);
  2075. ChangeStartOrStopDateTime(YES);
  2076. ShmSysConfigAndInfo->SysInfo.CurGunSelectedByAc = DEFAULT_AC_INDEX;
  2077. }
  2078. if (GetChargingEnergy() == PASS)
  2079. {
  2080. if ((acChargingEnergy.Energy - _beforeChargingTotalEnergy) > 0)
  2081. {
  2082. ac_chargingInfo[0]->PresentChargedEnergy += (acChargingEnergy.Energy - _beforeChargingTotalEnergy) / 100;
  2083. if (ShmSysConfigAndInfo->SysConfig.BillingData.isBilling)
  2084. {
  2085. ac_chargingInfo[0]->ChargingFee += ac_chargingInfo[0]->PresentChargedEnergy * ShmSysConfigAndInfo->SysConfig.BillingData.Cur_fee;
  2086. }
  2087. }
  2088. _beforeChargingTotalEnergy = acChargingEnergy.Energy;
  2089. }
  2090. if (GetChargingCurrent() == PASS)
  2091. ac_chargingInfo[0]->PresentChargingPower = (((float)(AC_DEFAULT_VOL * acChargingCurrent.OuputCurrentL1) / 10) / 1000);
  2092. ftime(&_ac_endChargingTime);
  2093. ac_chargingInfo[0]->PresentChargedDuration = DiffTimeb(_ac_startChargingTime, _ac_endChargingTime);
  2094. ac_chargingInfo[0]->PresentChargingVoltage = AC_DEFAULT_VOL;
  2095. ac_chargingInfo[0]->PresentChargingCurrent = ((float)acChargingCurrent.OuputCurrentL1 / 10);
  2096. // 用以判斷是否有在輸出
  2097. ac_chargingInfo[0]->IsCharging = acStatus.RelayStatus;
  2098. SetCpDuty(ShmSysConfigAndInfo->SysConfig.AcMaxChargingCurrent);
  2099. ChangeLedStatus();
  2100. }
  2101. break;
  2102. case S_TERMINATING:
  2103. {
  2104. if (isModeChange())
  2105. {
  2106. ChangeStartOrStopDateTime(NO);
  2107. gettimeofday(&_ac_charging_comp, NULL);
  2108. }
  2109. SetLegacyReq(NO);
  2110. if (acStatus.RelayStatus == NO)
  2111. ac_chargingInfo[0]->SystemStatus = S_COMPLETE;
  2112. }
  2113. break;
  2114. case S_COMPLETE:
  2115. {
  2116. if (isModeChange())
  2117. {
  2118. gettimeofday(&_ac_charging_comp, NULL);
  2119. ftime(&_ac_endChargingTime);
  2120. if (strcmp((char *)ac_chargingInfo[0]->StartDateTime, "") != EQUAL)
  2121. {
  2122. // AC 固定為第2把槍
  2123. OcppStopTransation(1);
  2124. }
  2125. ChangeStartOrStopDateTime(NO);
  2126. ac_chargingInfo[0]->PresentChargedDuration = DiffTimeb(_ac_startChargingTime, _ac_endChargingTime);
  2127. }
  2128. }
  2129. break;
  2130. }
  2131. }
  2132. }
  2133. }
  2134. int main(void)
  2135. {
  2136. if(InitShareMemory() == FAIL)
  2137. {
  2138. #ifdef SystemLogMessage
  2139. LOG_ERROR("InitShareMemory NG");
  2140. #endif
  2141. if(ShmStatusCodeData!=NULL)
  2142. {
  2143. ShmStatusCodeData->AlarmCode.AlarmEvents.bits.FailToCreateShareMemory=1;
  2144. }
  2145. sleep(5);
  2146. return 0;
  2147. }
  2148. gunCount = ShmChargerInfo->Control.MaxConnector;
  2149. acgunCount = ShmSysConfigAndInfo->SysConfig.AcConnectorCount;
  2150. // Open Uart5 for RB
  2151. Uart5Fd = InitComPort();
  2152. Initialization();
  2153. sleep(1);
  2154. if(Uart5Fd < 0)
  2155. {
  2156. LOG_ERROR("(Internal) open port error.");
  2157. return 0;
  2158. }
  2159. memset(&outputRelay[0], 0x00, sizeof(Relay));
  2160. memset(&outputRelay[1], 0x00, sizeof(Relay));
  2161. if(ShmChargerInfo->Control.SysCtrl.bits.RelayBoardDisable == false)
  2162. {
  2163. if(Config_Relay_Output(Uart5Fd, Addr.DO360_RC1, &outputRelay[0]) != PASS)
  2164. LOG_INFO("Config_Relay1_Output fail");
  2165. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  2166. {
  2167. if(Config_Relay_Output(Uart5Fd, Addr.DO360_RC2, &outputRelay[1]) != PASS)
  2168. LOG_INFO("Config_Relay2_Output fail");
  2169. }
  2170. }
  2171. _RelaySelfTestOK = NO;
  2172. cur_led_color.Connect_1_Red = COLOR_MIN_LV;
  2173. cur_led_color.Connect_1_Green = COLOR_MIN_LV;
  2174. cur_led_color.Connect_1_Blue = COLOR_MIN_LV;
  2175. cur_led_color.Connect_2_Red = COLOR_MIN_LV;
  2176. cur_led_color.Connect_2_Green = COLOR_MIN_LV;
  2177. cur_led_color.Connect_2_Blue = COLOR_MIN_LV;
  2178. //bool printRelayStatus = true;
  2179. for(;;)
  2180. {
  2181. if(!ShmSysConfigAndInfo->SysInfo.FirmwareUpdate)
  2182. {
  2183. // 程序開始之前~ 必須先確定 FW 版本與硬體版本,確認後!!~ 該模組才算是真正的 Initial Comp.
  2184. if(ShmChargerInfo->Control.SysCtrl.bits.RelayBoardDisable == false)
  2185. {
  2186. if (ShmRelayModuleData[0]->SelfTest_Comp == NO && !ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2187. {
  2188. // clena fw version
  2189. memset(ShmSysConfigAndInfo->SysInfo.RelayModuleFwRev, 0x00, 32);
  2190. GetFwAndHwVersion_Relay();
  2191. SetRtcData_Relay(0);
  2192. sleep(1);
  2193. if(strlen((char *)ShmSysConfigAndInfo->SysInfo.RelayModuleFwRev))
  2194. {
  2195. ShmRelayModuleData[0]->SelfTest_Comp = YES;
  2196. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable == false)
  2197. {
  2198. _RelaySelfTestOK = YES;
  2199. }
  2200. }
  2201. }
  2202. // DO360 RC2
  2203. if (ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable == true &&
  2204. ShmRelayModuleData[1]->SelfTest_Comp == NO && !ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2205. {
  2206. // clena fw version
  2207. memset(ShmSysConfigAndInfo->SysInfo.Relay2ModuleFwRev, 0x00, 32);
  2208. GetFwAndHwVersion_Relay2();
  2209. SetRtcData_Relay(1);
  2210. sleep(1);
  2211. if (strlen((char *)ShmSysConfigAndInfo->SysInfo.Relay2ModuleFwRev) != 0)
  2212. {
  2213. ShmRelayModuleData[1]->SelfTest_Comp = YES;
  2214. if(ShmRelayModuleData[0]->SelfTest_Comp == YES)
  2215. {
  2216. _RelaySelfTestOK = YES;
  2217. }
  2218. }
  2219. }
  2220. }
  2221. if(ShmChargerInfo->Control.SysCtrl.bits.FanBoardDisable == false)
  2222. {
  2223. if (ShmFanModuleData->SelfTest_Comp == NO && !ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2224. {
  2225. // clena fw version
  2226. memset(ShmSysConfigAndInfo->SysInfo.FanModuleFwRev, 0x00, 32);
  2227. GetFwAndHwVersion_Fan();
  2228. SetModelName_Fan();
  2229. SetRtcData_Fan();
  2230. sleep(1);
  2231. gettimeofday(&_priority_time, NULL);
  2232. if(strlen((char *)ShmSysConfigAndInfo->SysInfo.FanModuleFwRev) != 0)
  2233. {
  2234. ShmFanModuleData->SelfTest_Comp = YES;
  2235. }
  2236. }
  2237. }
  2238. if(_RelaySelfTestOK == YES || ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2239. {
  2240. // ==============優先權最高 10 ms ==============
  2241. // 輸出電壓
  2242. GetPersentOutputVol();
  2243. // 三相輸入電壓
  2244. GetPresentInputVol();
  2245. GetRelayOutputStatus();
  2246. for(int i = 0; i < ShmChargerInfo->Control.MaxConnector; i++)
  2247. {
  2248. // check k1 k2 relay 狀態
  2249. CheckK1K2RelayOutput(i);
  2250. // 依據當前各槍的狀態選擇 搭上/放開 Relay
  2251. SetK1K2RelayStatus(i);
  2252. if (_chargingData[i]->SystemStatus == S_IDLE)
  2253. {
  2254. _chargingData[i]->RelayWeldingCheck = NO;
  2255. _isRelayWelding[i] = NO;
  2256. }
  2257. if (_chargingData[i]->SystemStatus == S_BOOTING ||
  2258. (_chargingData[i]->SystemStatus >= S_REASSIGN_CHECK && _chargingData[i]->SystemStatus <= S_COMPLETE) ||
  2259. (_chargingData[i]->SystemStatus >= S_CCS_PRECHARGE_ST0 && _chargingData[i]->SystemStatus <= S_CCS_PRECHARGE_ST1) ||
  2260. ShmSysConfigAndInfo->SysInfo.WaitForPlugit == YES ||
  2261. (ShmSysConfigAndInfo->SysInfo.PageIndex >= _LCM_AUTHORIZING && ShmSysConfigAndInfo->SysInfo.PageIndex <= _LCM_WAIT_FOR_PLUG))
  2262. {
  2263. _chargingData[i]->IsReadyToCharging = YES;
  2264. // 限定只有在槍類別為 GBT 的時候才做 relay welding 的判斷
  2265. // if (_chargingData[i]->Type == _Type_GB)
  2266. // {
  2267. // if (_chargingData[i]->SystemStatus >= S_PREPARING_FOR_EVSE &&
  2268. // _chargingData[i]->RelayWeldingCheck == NO)
  2269. // CheckRelayWeldingStatus(i);
  2270. // }
  2271. // else
  2272. _chargingData[i]->RelayWeldingCheck = YES;
  2273. if (_chargingData[i]->SystemStatus == S_CHARGING)
  2274. {
  2275. // DO360 do not check under voltage output & any voltage difference
  2276. //CheckOutputPowerOverCarReq(i);
  2277. //CheckOutputVolNoneMatchFire(i);
  2278. }
  2279. else
  2280. _isOutputNoneMatch[i] = NO;
  2281. }
  2282. else
  2283. _chargingData[i]->IsReadyToCharging = NO;
  2284. }
  2285. // 橋接 relay
  2286. SetParalleRelayStatus();
  2287. SetAcContactorStatus();
  2288. // 搭上/鬆開 Relay
  2289. if(IsNoneMatchRelayStatus(0))
  2290. {
  2291. if (Config_Relay_Output(Uart5Fd, Addr.DO360_RC1, &outputRelay[0]))
  2292. {
  2293. //regRelay[0].relay_event.relay_status[0] = outputRelay[0].relay_event.relay_status[0];
  2294. //regRelay[0].relay_event.relay_status[1] = outputRelay[0].relay_event.relay_status[1];
  2295. //regRelay[0].relay_event.relay_status[2] = outputRelay[0].relay_event.relay_status[2];
  2296. }
  2297. if(ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2298. {
  2299. regRelay[0].relay_event.relay_status[0] = outputRelay[0].relay_event.relay_status[0];
  2300. regRelay[0].relay_event.relay_status[1] = outputRelay[0].relay_event.relay_status[1];
  2301. regRelay[0].relay_event.relay_status[2] = outputRelay[0].relay_event.relay_status[2];
  2302. }
  2303. }
  2304. if(ShmChargerInfo->Control.SysCtrl.bits.SecondRelayBoardEnable)
  2305. {
  2306. // 搭上/鬆開 Relay
  2307. if(IsNoneMatchRelayStatus(1))
  2308. {
  2309. if (Config_Relay_Output(Uart5Fd, Addr.DO360_RC2, &outputRelay[1]))
  2310. {
  2311. //regRelay[1].relay_event.relay_status[0] = outputRelay[1].relay_event.relay_status[0];
  2312. //regRelay[1].relay_event.relay_status[1] = outputRelay[1].relay_event.relay_status[1];
  2313. //regRelay[1].relay_event.relay_status[2] = outputRelay[1].relay_event.relay_status[2];
  2314. }
  2315. }
  2316. if(ShmChargerInfo->Control.TestCtrl.bits.ChargingSimulation)
  2317. {
  2318. regRelay[1].relay_event.relay_status[0] = outputRelay[1].relay_event.relay_status[0];
  2319. regRelay[1].relay_event.relay_status[1] = outputRelay[1].relay_event.relay_status[1];
  2320. regRelay[1].relay_event.relay_status[2] = outputRelay[1].relay_event.relay_status[2];
  2321. }
  2322. }
  2323. }
  2324. if (ShmFanModuleData->SelfTest_Comp == YES ||
  2325. strlen((char *)ShmSysConfigAndInfo->SysInfo.FanModuleFwRev) != 0 ||
  2326. ShmSysConfigAndInfo->SysInfo.FanModuleFwRev[0] != '\0')
  2327. {
  2328. if (GetTimeoutValue(_priority_time) / 1000 >= 1000)
  2329. {
  2330. //GetPsuTempForFanSpeed();
  2331. GetFanSpeedByFunction();
  2332. GetFanSpeed();
  2333. ShmSysConfigAndInfo->SysInfo.SystemFanRotaSpeed = _setFanSpeed;
  2334. gettimeofday(&_priority_time, NULL);
  2335. unsigned short TargetSpeed = ShmFanModuleData->TestFanSpeed;
  2336. if(TargetSpeed != 0 && TargetSpeed < MIN_FAN_SPEED)
  2337. {
  2338. TargetSpeed = MIN_FAN_SPEED;
  2339. }
  2340. ShmFanModuleData->SetFan1Speed = TargetSpeed;
  2341. ShmFanModuleData->SetFan2Speed = TargetSpeed;
  2342. ShmFanModuleData->SetFan3Speed = TargetSpeed;
  2343. ShmFanModuleData->SetFan4Speed = TargetSpeed;
  2344. //LOG_INFO("set fan = %d", ShmFanModuleData->SetFan1Speed);
  2345. SetFanModuleSpeed();
  2346. }
  2347. }
  2348. }
  2349. usleep(10000);
  2350. }
  2351. return FAIL;
  2352. }