port.c 25 KB

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  1. /*
  2. * FreeModbus Libary: BARE Demo Application
  3. * Copyright (C) 2006 Christian Walter <wolti@sil.at>
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation; either version 2 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program; if not, write to the Free Software
  17. * Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
  18. *
  19. * File: $Id$
  20. */
  21. /* ----------------------- Modbus includes ----------------------------------*/
  22. #include "mb.h"
  23. #include "mbport.h"
  24. #include "Main.h"
  25. #include "string.h"
  26. #include "At24cxx.h"
  27. #include "ReadEeprom.h"
  28. #include "gd32e230x_conf.h"
  29. #include "Timer.h"
  30. /* ----------------------- Defines ------------------------------------------*/
  31. //输入寄存器
  32. #define REG_INPUT_START 3000
  33. #define REG_INPUT_NREGS 4
  34. //保持寄存器
  35. #define REG_HOLD_START 4000
  36. #define REG_HOLD_NREGS 1500
  37. //线圈
  38. #define REG_COILS_START 0
  39. #define REG_COILS_NREGS 4
  40. //开关寄存器
  41. #define REG_DISCRETE_START 1000
  42. #define REG_DISCRETE_NREGS 4
  43. /* ----------------------- Static variables ---------------------------------*/
  44. static USHORT usRegInputStart = REG_INPUT_START;
  45. static USHORT usRegInputBuf[REG_INPUT_NREGS];
  46. static USHORT usRegHoldStart = REG_HOLD_START;
  47. static USHORT usRegHoldBuf[REG_HOLD_NREGS];
  48. static USHORT usRegCoilsStart = REG_COILS_START;
  49. static uint8_t usRegCoilsBuf[REG_COILS_NREGS];
  50. static USHORT usRegDiscreteStart = REG_DISCRETE_START;
  51. static uint8_t usRegDiscreteBuf[REG_DISCRETE_NREGS];
  52. extern unsigned long int Delay_Ms;
  53. extern unsigned char detection_value;
  54. /* ----------------------- Start implementation -----------------------------*/
  55. //int
  56. //main( void )
  57. //{
  58. // eMBErrorCode eStatus;
  59. // eStatus = eMBInit( MB_RTU, 0x0A, 0, 38400, MB_PAR_EVEN );
  60. // /* Enable the Modbus Protocol Stack. */
  61. // eStatus = eMBEnable( );
  62. // for( ;; )
  63. // {
  64. // ( void )eMBPoll( );
  65. // /* Here we simply count the number of poll cycles. */
  66. // usRegInputBuf[0]++;
  67. // }
  68. //}
  69. /****************************************************************************
  70. * 名 称:eMBRegInputCB
  71. * 功 能:读取输入寄存器,对应功能码是 04 eMBFuncReadInputRegister
  72. * 入口参数:pucRegBuffer: 数据缓存区,用于响应主机
  73. * usAddress: 寄存器地址
  74. * usNRegs: 要读取的寄存器个数
  75. * 出口参数:
  76. * 注 意:上位机发来的 帧格式是: SlaveAddr(1 Byte)+FuncCode(1 Byte)
  77. * +StartAddrHiByte(1 Byte)+StartAddrLoByte(1 Byte)
  78. * +LenAddrHiByte(1 Byte)+LenAddrLoByte(1 Byte)+
  79. * +CRCAddrHiByte(1 Byte)+CRCAddrLoByte(1 Byte)
  80. * 3 区
  81. ****************************************************************************/
  82. eMBErrorCode
  83. eMBRegInputCB( UCHAR * pucRegBuffer, USHORT usAddress, USHORT usNRegs )
  84. {
  85. eMBErrorCode eStatus = MB_ENOERR;
  86. int iRegIndex;
  87. usAddress = usAddress - 1;
  88. if( ( usAddress >= REG_INPUT_START ) && ( usAddress + usNRegs <= REG_INPUT_START + REG_INPUT_NREGS ) )
  89. {
  90. iRegIndex = ( int )( usAddress - usRegInputStart );
  91. while( usNRegs > 0 )
  92. {
  93. *pucRegBuffer++ = ( unsigned char )( usRegInputBuf[iRegIndex] >> 8 );
  94. *pucRegBuffer++ = ( unsigned char )( usRegInputBuf[iRegIndex] & 0xFF );
  95. iRegIndex++;
  96. usNRegs--;
  97. }
  98. }
  99. else
  100. {
  101. eStatus = MB_ENOREG;
  102. }
  103. return eStatus;
  104. }
  105. /****************************************************************************
  106. * 名 称:eMBRegHoldingCB
  107. * 功 能:对应功能码有:06 写保持寄存器 eMBFuncWriteHoldingRegister
  108. * 16 写多个保持寄存器 eMBFuncWriteMultipleHoldingRegister
  109. * 03 读保持寄存器 eMBFuncReadHoldingRegister
  110. * 23 读写多个保持寄存器 eMBFuncReadWriteMultipleHoldingRegister
  111. * 入口参数:pucRegBuffer: 数据缓存区,用于响应主机
  112. * usAddress: 寄存器地址
  113. * usNRegs: 要读写的寄存器个数
  114. * eMode: 功能码
  115. * 出口参数:
  116. * 注 意:4 区
  117. ****************************************************************************/
  118. //unsigned int test1;
  119. //unsigned int test2;
  120. //unsigned int test3;
  121. //unsigned int test4;
  122. //unsigned long int test5=0x12345678;
  123. //USHORT test6[20];
  124. //unsigned char test[200]={0};
  125. unsigned char Chal_num;
  126. unsigned char WusNRegs;
  127. unsigned int WiRegIndex;
  128. unsigned int WeeiRegIndex;
  129. unsigned char Eeprom_Wbuf[200];
  130. extern ACDC_Wann_Read_Reg_t ACDC_Wann_All;
  131. extern EE_ACDC_ThresVal_struct_ReadReg EE_ACDC_All_ThrVal;
  132. extern EE_ACDC_State_All_Reg_En_t EE_ACDC_State_All_en;
  133. extern ACDC_Over_Func_WriteReg ACDC_Over_AllWriteReg;
  134. extern ACDC_Wann_Read_Reg_t ACDC_Wann_All;
  135. extern AC_Ele_struct_ReadReg AC_Ele_ReadReg_All;
  136. #if SUPPORT_SELF_LOCK
  137. extern uint8_t handle_k_1_status;
  138. extern uint8_t handle_k_2_status;
  139. extern uint8_t handle_k_3_status;
  140. extern uint8_t handle_k_4_status;
  141. #endif
  142. eMBErrorCode
  143. eMBRegHoldingCB( UCHAR * pucRegBuffer, USHORT usAddress, USHORT usNRegs, eMBRegisterMode eMode )
  144. {
  145. eMBErrorCode eStatus = MB_ENOERR;
  146. int iRegIndex;
  147. usAddress = usAddress - 1;
  148. if((usAddress >= REG_HOLD_START) && ((usAddress+usNRegs) <= (REG_HOLD_START + REG_HOLD_NREGS)))
  149. {
  150. iRegIndex = (int)(usAddress - usRegHoldStart);
  151. WiRegIndex = iRegIndex;
  152. switch(eMode)
  153. {
  154. case MB_REG_READ://读寄存器
  155. if((usAddress==Devid_ChalNumAddr)&&(usNRegs==Devid_ChalNumQua)) //读取设备类型和通道
  156. usRegHoldBuf[iRegIndex]= Devid_ChalNum;
  157. else if((usAddress>=AC_Sing_EleSmaAddr)&&(usAddress<=(AC_Sing_EleSmaAddr+AC_Sing_EleSmaQua)))//读取通道的参数
  158. {
  159. Chal_num = (usAddress-AC_Sing_EleSmaAddr)/12; //获取是哪个通道的数据
  160. memcpy(&usRegHoldBuf[iRegIndex],&AC_Ele_ReadReg[Chal_num],usNRegs*2);
  161. if(usAddress==AC_Sing_EleSmaAddr)
  162. Start_Read_Flag = 1;
  163. // else if(usAddress==(AC_Sing_EleSmaAddr+12*(RelaySlaveChaNum-1)))
  164. // Start_Read_Flag = 0;
  165. }
  166. else if((usAddress>=AC_Sing_State_SmaAddr)&&(usAddress<=(AC_Sing_State_SmaAddr+AC_Sing_State_SmaQua)))//读取通道的状态
  167. {
  168. Chal_num = (usAddress-AC_Sing_State_SmaAddr); //获取是哪个通道的数据
  169. //增加其他的状态,开关状态在继电器动作的函数中进行跟新
  170. for(int chn = 0; chn < usNRegs; chn++)
  171. {
  172. EE_ACDC_State_ReadRegTrue[chn].ACDC_Vol_Upthr_En = EE_ACDC_State_ReadReg[chn].ACDC_Vol_Upthr_En;
  173. EE_ACDC_State_ReadRegTrue[chn].ACDC_Vol_Upthr_Warn = EE_ACDC_State_ReadReg[chn].ACDC_Vol_Upthr_Warn;
  174. EE_ACDC_State_ReadRegTrue[chn].ACDC_Vol_Downthr_En = EE_ACDC_State_ReadReg[chn].ACDC_Vol_Downthr_En;
  175. EE_ACDC_State_ReadRegTrue[chn].ACDC_Vol_Downthr_Warn = EE_ACDC_State_ReadReg[chn].ACDC_Vol_Downthr_Warn;
  176. EE_ACDC_State_ReadRegTrue[chn].ACDC_Cur_Upthr_En = EE_ACDC_State_ReadReg[chn].ACDC_Cur_Upthr_En;
  177. EE_ACDC_State_ReadRegTrue[chn].ACDC_Cur_Upthr_Warn = EE_ACDC_State_ReadReg[chn].ACDC_Cur_Upthr_Warn;
  178. EE_ACDC_State_ReadRegTrue[chn].ACDC_Pow_Upthr_En = EE_ACDC_State_ReadReg[chn].ACDC_Pow_Upthr_En;
  179. EE_ACDC_State_ReadRegTrue[chn].ACDC_Pow_Upthr_Warn = EE_ACDC_State_ReadReg[chn].ACDC_Pow_Upthr_Warn;
  180. EE_ACDC_State_ReadRegTrue[chn].ACDC_Ele_Upthr_En = EE_ACDC_State_ReadReg[chn].ACDC_Ele_Upthr_En;
  181. EE_ACDC_State_ReadRegTrue[chn].ACDC_Ele_Upthr_Warn = EE_ACDC_State_ReadReg[chn].ACDC_Ele_Upthr_Warn;
  182. }
  183. memcpy(&usRegHoldBuf[iRegIndex],&EE_ACDC_State_ReadRegTrue[Chal_num],usNRegs*2);
  184. }else if((usAddress>=AC_Sing_Total_Consumer_Addr)&&(usAddress<=AC_Sing_Total_Consumer_Addr+AC_Sing_Total_ConsumerQua))
  185. {
  186. Chal_num = (usAddress-AC_Sing_Total_Consumer_Addr)/2;
  187. memcpy(&usRegHoldBuf[iRegIndex],&EE_ACDC_Total_Consum_Read_Reg[Chal_num],usNRegs*2);
  188. }else if((usAddress >= AC_Sing_All_Chn_ConsumerAddr) &&(usAddress <= AC_Sing_All_Chn_ConsumerAddr + AC_Sing_All_Chn_ConsumerQua))
  189. {
  190. memcpy(&usRegHoldBuf[iRegIndex],&ACDC_Total_All_Chn_Read_Reg,usNRegs*2);
  191. }else if(usAddress == AC_Sing_Detection_Addr)
  192. {
  193. memcpy(&usRegHoldBuf[iRegIndex],&detection_value,usNRegs*2);
  194. }else if(usAddress == AC_Sing_All_Over_Func_Wann_Addr)
  195. {
  196. memcpy(&usRegHoldBuf[iRegIndex],&ACDC_Wann_All,2);
  197. }else if(usAddress >= AC_Sing_All_EleSmaAddr && usAddress <= (AC_Sing_All_EleSmaAddr+AC_Sing_All_EleSmaQua))
  198. {
  199. Start_Read_Flag = 1;
  200. int base_addr = usAddress -AC_Sing_All_EleSmaAddr;
  201. uint32_t * base = (uint32_t *)(&AC_Ele_ReadReg_All);
  202. base += base_addr;
  203. memcpy(&usRegHoldBuf[iRegIndex],base,usNRegs*2);
  204. }
  205. while(usNRegs > 0)
  206. {
  207. *pucRegBuffer++ = (uint8_t)(usRegHoldBuf[iRegIndex] >> 8);
  208. *pucRegBuffer++ = (uint8_t)(usRegHoldBuf[iRegIndex] & 0xFF);
  209. iRegIndex++;
  210. usNRegs--;
  211. }
  212. break;
  213. case MB_REG_WRITE://写寄存器
  214. WusNRegs = usNRegs;
  215. while(usNRegs > 0)
  216. {
  217. usRegHoldBuf[iRegIndex] = *pucRegBuffer++ << 8;
  218. usRegHoldBuf[iRegIndex] |= *pucRegBuffer++;
  219. iRegIndex++;
  220. usNRegs--;
  221. }
  222. if((usAddress>=AC_Sing_Dela_OnSmaAddr)&&(usAddress<=AC_Sing_Dela_OnSmaAddr+AC_Sing_Dela_OnSmaQua)) //设置通道之间的开启延时
  223. {
  224. WeeiRegIndex = (int)(usAddress - AC_Sing_Dela_OnSmaAddr);
  225. Chal_num = (usAddress-AC_Sing_Dela_OnSmaAddr); //设置哪个通道的延时
  226. // memcpy(&ACDC_Delay_WriteReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs); //将接收的数据放入写结构体中
  227. memcpy(&EE_ACDC_Delay_ReadReg_On[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入读结构体中
  228. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将数据由16进制转化为无符号数据存入数组
  229. AT24CxxWrite(Eepr_AC_Sing_Dela_OnSmaAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2); //将数据写入到eeprom中
  230. memcpy(&Sort_Onbuf,&EE_ACDC_Delay_ReadReg_On,Eepr_AC_Sing_Dela_OnSmaQua); //将数据进行排序,然后存入数组中,确保开关的时序
  231. Bubble_Sort(Sort_Onbuf,RelaySlaveChaNum);
  232. // AT24CxxRead(Eepr_AC_Sing_DelaSmaAddr+WusNRegs*2, test, Eepr_AC_Sing_DelaSmaQua); //从eeprom中读出通道延时数据
  233. // memcpy(&EE_ACDC_Delay_ReadReg1,&test,Eepr_AC_Sing_DelaSmaQua); //将数据拷贝到指定的结构体,可能需要注意大小端问题
  234. }
  235. else if((usAddress>=AC_Sing_Dela_OffSmaAddr)&&(usAddress<=AC_Sing_Dela_OffSmaAddr+AC_Sing_Dela_OffSmaQua)) //设置通道之间的关闭延时
  236. {
  237. WeeiRegIndex = (int)(usAddress - AC_Sing_Dela_OffSmaAddr);
  238. Chal_num = (usAddress-AC_Sing_Dela_OffSmaAddr); //设置哪个通道的延时
  239. // memcpy(&ACDC_Delay_WriteReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs); //将接收的数据放入写结构体中
  240. memcpy(&EE_ACDC_Delay_ReadReg_Off[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入读结构体中
  241. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将数据由16进制转化为无符号数据存入数组
  242. AT24CxxWrite(Eepr_AC_Sing_Dela_OffSmaAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2); //将数据写入到eeprom中
  243. memcpy(&Sort_Offbuf,&EE_ACDC_Delay_ReadReg_Off,Eepr_AC_Sing_Dela_OffSmaQua); //将数据进行排序,然后存入数组中
  244. Bubble_Sort(Sort_Offbuf,RelaySlaveChaNum);
  245. // AT24CxxRead(Eepr_AC_Sing_DelaSmaAddr+WusNRegs*2, test, Eepr_AC_Sing_DelaSmaQua); //从eeprom中读出通道延时数据
  246. // memcpy(&EE_ACDC_Delay_ReadReg1,&test,Eepr_AC_Sing_DelaSmaQua); //将数据拷贝到指定的结构体,可能需要注意大小端问题
  247. }
  248. else if((usAddress>=AC_Sing_State_SmaWAddr)&&(usAddress<=AC_Sing_State_SmaWAddr+AC_Sing_State_SmaWQua))//设置通道的状态
  249. {
  250. WeeiRegIndex = (int)(usAddress - AC_Sing_State_SmaWAddr);
  251. Chal_num = (usAddress-AC_Sing_State_SmaWAddr); //设置哪个通道的状态
  252. // memcpy(&ACDC_State_WriteReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs); //将接收的数据放入写结构体中
  253. memcpy(&EE_ACDC_State_ReadReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2);//将接收的数据放入读结构体中
  254. for(int i =0; i < RelaySlaveChaNum;i++)
  255. {
  256. if(EE_ACDC_ThresVal_ReadReg[i].ACDC_V_TopThres <= THRESHOULD_JUDGMENT)
  257. {
  258. EE_ACDC_State_ReadReg[i].ACDC_Vol_Upthr_En = false;
  259. }
  260. if(EE_ACDC_ThresVal_ReadReg[i].ACDC_V_DownThres <= THRESHOULD_JUDGMENT)
  261. {
  262. EE_ACDC_State_ReadReg[i].ACDC_Vol_Downthr_En = false;
  263. }
  264. if(EE_ACDC_ThresVal_ReadReg[i].ACDC_I_TopThres <= THRESHOULD_JUDGMENT)
  265. {
  266. EE_ACDC_State_ReadReg[i].ACDC_Cur_Upthr_En = false;
  267. }
  268. if(EE_ACDC_ThresVal_ReadReg[i].ACDC_P_TopThres <= THRESHOULD_JUDGMENT)
  269. {
  270. EE_ACDC_State_ReadReg[i].ACDC_Pow_Upthr_En = false;
  271. }
  272. if(EE_ACDC_ThresVal_ReadReg[i].ACDC_E_TopThres <= THRESHOULD_JUDGMENT)
  273. {
  274. EE_ACDC_State_ReadReg[i].ACDC_Ele_Upthr_En = false;
  275. }
  276. }
  277. #if SUPPORT_SELF_LOCK
  278. #if (RelaySlaveChaNum >= 1)
  279. if(handle_k_1_status == 0)
  280. {
  281. EE_ACDC_State_ReadReg[0].ACDC_Cha_On_Off_State = 0;
  282. }
  283. #endif
  284. #if (RelaySlaveChaNum >= 2)
  285. if(handle_k_2_status == 0)
  286. {
  287. EE_ACDC_State_ReadReg[1].ACDC_Cha_On_Off_State = 0;
  288. }
  289. #endif
  290. #if (RelaySlaveChaNum >= 3)
  291. if(handle_k_3_status == 0)
  292. {
  293. EE_ACDC_State_ReadReg[2].ACDC_Cha_On_Off_State = 0;
  294. }
  295. #endif
  296. #if (RelaySlaveChaNum >= 4)
  297. if(handle_k_4_status == 0)
  298. {
  299. EE_ACDC_State_ReadReg[3].ACDC_Cha_On_Off_State = 0;
  300. }
  301. #endif
  302. #endif
  303. memcpy(&Eeprom_Wbuf,&EE_ACDC_State_ReadReg[Chal_num],WusNRegs*2); //将数据由16进制转化为无符号数据存入数组
  304. AT24CxxWrite(Eepr_AC_Sing_State_SmaWAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2); //将数据写入到eeprom中
  305. if((WusNRegs==RelaySlaveChaNum)&&(EE_ACDC_State_ReadReg[0].ACDC_Cha_On_Off_State==true)&&(EE_ACDC_State_ReadReg[0].ACDC_ALLCha_On_State==true))//通过下发的通道数和开关状态可以判断为全开
  306. {
  307. All_On_Flag = 1; //全开标志置1
  308. All_Off_Flag = 0;
  309. timer_enable(TIMER14);
  310. Delay_Ms_2 = 0;
  311. }
  312. else if((WusNRegs==RelaySlaveChaNum)&&(EE_ACDC_State_ReadReg[0].ACDC_Cha_On_Off_State==false)&&(EE_ACDC_State_ReadReg[0].ACDC_ALLCha_Off_State==true))//通过下发的通道数和开关状态可以判断为全关
  313. {
  314. All_Off_Flag = 1; //全关标志置1
  315. All_On_Flag = 0;
  316. timer_enable(TIMER14);
  317. Delay_Ms_2 = 0;
  318. }
  319. else
  320. {
  321. #if SUPPORT_DETECTION
  322. #if ((RelaySlaveChaNum == 6) || ((RelaySlaveChaNum == 8) && SUPPORT_2_DETECTION))
  323. if((detection_value & 0x1) == 0)
  324. {
  325. uint8_t k = 0;
  326. for(k=0;k <(RelaySlaveChaNum)/2;k++)
  327. EE_ACDC_State_ReadReg[k].ACDC_Cha_On_Off_State = false;
  328. }
  329. if((detection_value & 0x2) == 0)
  330. {
  331. uint8_t k = 0;
  332. for(k=(RelaySlaveChaNum)/2;k <RelaySlaveChaNum;k++)
  333. EE_ACDC_State_ReadReg[k].ACDC_Cha_On_Off_State = false;
  334. }
  335. #else
  336. if(detection_value != 0)
  337. #endif
  338. #endif
  339. //RelayState();
  340. RelayState_ch(Chal_num);
  341. }
  342. }
  343. else if((usAddress>=AC_Sing_Thr_SmaAddr)&&(usAddress<=AC_Sing_Thr_SmaAddr+AC_Sing_Thr_SmaQua))//设置通道的阈值
  344. {
  345. WeeiRegIndex = (int)(usAddress - AC_Sing_Thr_SmaAddr);
  346. Chal_num = (usAddress-AC_Sing_Thr_SmaAddr)/16; //设置哪个通道的阈值
  347. // memcpy(&ACDC_ThresVal_WriteReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入写结构体中
  348. memcpy(&EE_ACDC_ThresVal_ReadReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入读结构体中
  349. if(EE_ACDC_ThresVal_ReadReg[Chal_num].ACDC_V_TopThres <= THRESHOULD_JUDGMENT)
  350. {
  351. EE_ACDC_State_ReadReg[Chal_num].ACDC_Vol_Upthr_En = false;
  352. }else
  353. {
  354. EE_ACDC_State_ReadReg[Chal_num].ACDC_Vol_Upthr_En = true;
  355. }
  356. if(EE_ACDC_ThresVal_ReadReg[Chal_num].ACDC_V_DownThres <= THRESHOULD_JUDGMENT)
  357. {
  358. EE_ACDC_State_ReadReg[Chal_num].ACDC_Vol_Downthr_En = false;
  359. }else
  360. {
  361. EE_ACDC_State_ReadReg[Chal_num].ACDC_Vol_Downthr_En = true;
  362. }
  363. if(EE_ACDC_ThresVal_ReadReg[Chal_num].ACDC_I_TopThres <= THRESHOULD_JUDGMENT)
  364. {
  365. EE_ACDC_State_ReadReg[Chal_num].ACDC_Cur_Upthr_En = false;
  366. }else
  367. {
  368. EE_ACDC_State_ReadReg[Chal_num].ACDC_Cur_Upthr_En = true;
  369. }
  370. if(EE_ACDC_ThresVal_ReadReg[Chal_num].ACDC_P_TopThres <= THRESHOULD_JUDGMENT)
  371. {
  372. EE_ACDC_State_ReadReg[Chal_num].ACDC_Pow_Upthr_En = false;
  373. }else
  374. {
  375. EE_ACDC_State_ReadReg[Chal_num].ACDC_Pow_Upthr_En = true;
  376. }
  377. if(EE_ACDC_ThresVal_ReadReg[Chal_num].ACDC_E_TopThres <= THRESHOULD_JUDGMENT)
  378. {
  379. EE_ACDC_State_ReadReg[Chal_num].ACDC_Ele_Upthr_En = false;
  380. }else
  381. {
  382. EE_ACDC_State_ReadReg[Chal_num].ACDC_Ele_Upthr_En = true;
  383. }
  384. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将数据由16进制转化为无符号数据存入数组
  385. AT24CxxWrite(Eepr_AC_Sing_Thr_SmaAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2); //将数据写入到eeprom中
  386. }
  387. else if((usAddress>=AC_Sing_Coef_SmaAddr)&&(usAddress<=AC_Sing_Coef_SmaAddr+AC_Sing_Coef_SmaQua))//设置通道的系数
  388. {
  389. WeeiRegIndex = (int)(usAddress - AC_Sing_Coef_SmaAddr);
  390. Chal_num = (usAddress-AC_Sing_Coef_SmaAddr)/8; //设置哪个通道的系数
  391. // memcpy(&ACDC_Coef_WriteReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入写结构体中
  392. memcpy(&EE_ACDC_Coef_ReadReg[Chal_num],&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将接收的数据放入读结构体中
  393. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2); //将数据由16进制转化为无符号数据存入数组
  394. AT24CxxWrite(Eepr_AC_Sing_Coef_SmaAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2); //将数据写入到eeprom中
  395. }else if((usAddress>=AC_Sing_Channel_Func)&&(usAddress<=AC_Sing_Channel_Func+AC_Sing_Channel_FuncQua))
  396. {
  397. WeeiRegIndex = (int)(usAddress - AC_Sing_Channel_Func);
  398. memcpy(&ACDC_Over_WriteReg[WeeiRegIndex],&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  399. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  400. AT24CxxWrite(Eepr_AC_Sing_Channel_Func_SmaAddr+WeeiRegIndex*2,Eeprom_Wbuf, WusNRegs*2);
  401. }else if(usAddress >= AC_Sing_Clear_Consumer && usAddress <= AC_Sing_Clear_Consumer+ AC_Sing_Clear_ConsumerQua)
  402. {
  403. //WeeiRegIndex = (int)(usAddress - AC_Sing_Clear_Consumer);
  404. Chal_num = usAddress-AC_Sing_Clear_Consumer;
  405. //AT24CxxRead(Eepr_AC_Sing_Total_Consumer_addr, Eeprom_Rbuf, Eepr_AC_Sing_Total_Consumer_SmaQua);
  406. uint16_t recive = 0;
  407. memcpy(&recive,&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  408. EE_ACDC_Consumer_Clear[Chal_num].flag = 1;
  409. EE_ACDC_Consumer_Clear[Chal_num].value = recive;
  410. consumer_clear_flag = 1;
  411. }else if(usAddress == AC_Sing_Clear_Consumer_all)
  412. {
  413. uint16_t recive = 0;
  414. memcpy(&recive,&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  415. consumer_clear_flag = 1;
  416. for(int i = 0; i < RelaySlaveChaNum;i++)
  417. {
  418. EE_ACDC_Consumer_Clear[i].flag = 1;
  419. EE_ACDC_Consumer_Clear[i].value = recive;
  420. }
  421. }else if(usAddress >= AC_Sing_All_Thr_SmaAddr && (usAddress <=(AC_Sing_All_Thr_SmaAddr + AC_Sing_All_Thr_SmaAddr_Qua)))
  422. {
  423. WeeiRegIndex = (int)(usAddress - AC_Sing_Thr_SmaAddr);
  424. //Chal_num = (usAddress-AC_Sing_All_Thr_SmaAddr)/16;
  425. memcpy(&EE_ACDC_All_ThrVal,&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  426. if(EE_ACDC_All_ThrVal.ACDC_V_TopThres <= THRESHOULD_JUDGMENT)
  427. {
  428. EE_ACDC_State_All_en.ACDC_Vol_Upper_En = false;
  429. }else
  430. {
  431. EE_ACDC_State_All_en.ACDC_Vol_Upper_En = true;
  432. }
  433. if(EE_ACDC_All_ThrVal.ACDC_V_DownThres <= THRESHOULD_JUDGMENT)
  434. {
  435. EE_ACDC_State_All_en.ACDC_Vol_Lower_En= false;
  436. }else
  437. {
  438. EE_ACDC_State_All_en.ACDC_Vol_Lower_En= true;
  439. }
  440. if(EE_ACDC_All_ThrVal.ACDC_I_TopThres <= THRESHOULD_JUDGMENT)
  441. {
  442. EE_ACDC_State_All_en.ACDC_Current_Upper_En = false;
  443. }else
  444. {
  445. EE_ACDC_State_All_en.ACDC_Current_Upper_En= true;
  446. }
  447. if(EE_ACDC_All_ThrVal.ACDC_P_TopThres <= THRESHOULD_JUDGMENT)
  448. {
  449. EE_ACDC_State_All_en.ACDC_Power_Upper_En = false;
  450. }else
  451. {
  452. EE_ACDC_State_All_en.ACDC_Power_Upper_En = true;
  453. }
  454. if(EE_ACDC_All_ThrVal.ACDC_E_TopThres <= THRESHOULD_JUDGMENT)
  455. {
  456. EE_ACDC_State_All_en.ACDC_Consumer_Upper_En = false;
  457. }else
  458. {
  459. EE_ACDC_State_All_en.ACDC_Consumer_Upper_En= true;
  460. }
  461. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],WusNRegs*2);
  462. AT24CxxWrite(Eepr_AC_Sing_All_Thr_SmaAddr,Eeprom_Wbuf, WusNRegs*2);
  463. }else if(usAddress == AC_Sing_All_Over_FuncAddr)
  464. {
  465. memcpy(&ACDC_Over_AllWriteReg,&usRegHoldBuf[WiRegIndex],2);
  466. memcpy(&Eeprom_Wbuf,&usRegHoldBuf[WiRegIndex],2);
  467. AT24CxxWrite(Eepr_AC_Sing_All_Over_SmaAddr,Eeprom_Wbuf,2);
  468. }
  469. }
  470. }
  471. else//错误
  472. {
  473. eStatus = MB_ENOREG;
  474. }
  475. return eStatus;
  476. }
  477. /****************************************************************************
  478. * 名 称:eMBRegCoilsCB
  479. * 功 能:对应功能码有:01 读线圈 eMBFuncReadCoils
  480. * 05 写线圈 eMBFuncWriteCoil
  481. * 15 写多个线圈 eMBFuncWriteMultipleCoils
  482. * 入口参数:pucRegBuffer: 数据缓存区,用于响应主机
  483. * usAddress: 线圈地址
  484. * usNCoils: 要读写的线圈个数
  485. * eMode: 功能码
  486. * 出口参数:
  487. * 注 意:如继电器
  488. * 0 区
  489. ****************************************************************************/
  490. eMBErrorCode
  491. eMBRegCoilsCB( UCHAR * pucRegBuffer, USHORT usAddress, USHORT usNCoils, eMBRegisterMode eMode )
  492. {
  493. eMBErrorCode eStatus = MB_ENOERR;
  494. USHORT iRegIndex;
  495. USHORT usCoilGroups = ((usNCoils - 1) / 8 + 1);
  496. UCHAR ucStatus = 0;
  497. UCHAR ucBits = 0;
  498. UCHAR ucDisp = 0;
  499. usAddress = usAddress - 1;
  500. if((usAddress >= REG_COILS_START) && ((usAddress + usNCoils) <= (REG_COILS_START + REG_COILS_NREGS)))
  501. {
  502. iRegIndex = (int)(usAddress - usRegCoilsStart);
  503. switch(eMode)
  504. {
  505. case MB_REG_READ://读线圈
  506. while(usCoilGroups--)
  507. {
  508. ucDisp = 0;
  509. ucBits = 8;
  510. while((usNCoils--) != 0 && (ucBits--) != 0)
  511. {
  512. ucStatus |= (usRegCoilsBuf[iRegIndex++] << (ucDisp++));
  513. }
  514. *pucRegBuffer++ = ucStatus;
  515. }
  516. break;
  517. case MB_REG_WRITE://写线圈
  518. while(usCoilGroups--)
  519. {
  520. ucStatus = *pucRegBuffer++;
  521. ucBits = 8;
  522. while((usNCoils--) != 0 && (ucBits--) != 0)
  523. {
  524. usRegCoilsBuf[iRegIndex++] = ucStatus & 0X01;
  525. ucStatus >>= 1;
  526. }
  527. }
  528. }
  529. }
  530. else//错误
  531. {
  532. eStatus = MB_ENOREG;
  533. }
  534. return eStatus;
  535. }
  536. /****************************************************************************
  537. * 名 称:eMBRegDiscreteCB
  538. * 功 能:读取离散寄存器,对应功能码有:02 读离散寄存器 eMBFuncReadDiscreteInputs
  539. * 入口参数:pucRegBuffer: 数据缓存区,用于响应主机
  540. * usAddress: 寄存器地址
  541. * usNDiscrete: 要读取的寄存器个数
  542. * 出口参数:
  543. * 注 意:1 区
  544. ****************************************************************************/
  545. eMBErrorCode
  546. eMBRegDiscreteCB( UCHAR * pucRegBuffer, USHORT usAddress, USHORT usNDiscrete )
  547. {
  548. eMBErrorCode eStatus = MB_ENOERR;
  549. USHORT iRegIndex;
  550. USHORT usDiscreteGroups = ((usNDiscrete - 1) / 8 + 1);
  551. UCHAR ucStatus = 0;
  552. UCHAR ucBits = 0;
  553. UCHAR ucDisp = 0;
  554. usAddress = usAddress - 1;
  555. if((usAddress >= REG_DISCRETE_START) && ((usAddress + usNDiscrete) <= (REG_DISCRETE_START + REG_DISCRETE_NREGS)))
  556. {
  557. iRegIndex = (int)(usAddress - usRegDiscreteStart);
  558. while(usDiscreteGroups--)
  559. {
  560. ucDisp = 0;
  561. ucBits = 8;
  562. while((usNDiscrete--) != 0 && (ucBits--) != 0)
  563. {
  564. if(usRegDiscreteBuf[iRegIndex])
  565. {
  566. ucStatus |= (1 << ucDisp);
  567. }
  568. ucDisp++;
  569. }
  570. *pucRegBuffer++ = ucStatus;
  571. }
  572. }
  573. else//错误
  574. {
  575. eStatus = MB_ENOREG;
  576. }
  577. return eStatus;
  578. }