serialinfo.cpp 16 KB

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  1. #include "serialinfo.h"
  2. SerialInfo::SerialInfo()
  3. {
  4. }
  5. void SerialInfo::on_startWork()
  6. {
  7. timer = new QTimer(this);
  8. connect(timer, &QTimer::timeout, this, &SerialInfo::on_Check_PDUStatus);
  9. timer->start(1000); // Start the timer
  10. }
  11. void SerialInfo::on_closeWork()
  12. {
  13. if(timer)timer->stop();
  14. deleteLater();
  15. }
  16. void SerialInfo::on_Check_PDUStatus()
  17. {
  18. //轮询PDU信息
  19. char OrderArray[8];
  20. uint16_t crc=0;
  21. OrderArray[0]=0x01;
  22. OrderArray[1]=0x03;
  23. //查询设备类型及通道数
  24. OrderArray[2] = (_SWITCH_T_AC_TYPE_CHN_INFO >> 8) & 0xFF; // High byte
  25. OrderArray[3] = _SWITCH_T_AC_TYPE_CHN_INFO & 0xFF; // Low byte
  26. OrderArray[4]=0x00;
  27. OrderArray[5]=0x01;
  28. crc = crc16_ccitt(OrderArray, 6);
  29. OrderArray[6] = crc & 0xFF; // Low byte
  30. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  31. SendString=on_SendInfo(OrderArray,8);
  32. RecString=on_Rec_PDUStatus();
  33. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_TYPE_CHN_INFO);
  34. QThread::msleep(QUERYSTAMP);
  35. //查询L1信息
  36. OrderArray[2] = (_SWITCH_T_AC_IN_L1_INFO >> 8) & 0xFF; // High byte
  37. OrderArray[3] = _SWITCH_T_AC_IN_L1_INFO & 0xFF; // Low byte
  38. OrderArray[4]=0x00;
  39. OrderArray[5]=0x08;
  40. crc = crc16_ccitt(OrderArray, 6);
  41. OrderArray[6] = crc & 0xFF; // Low byte
  42. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  43. SendString=on_SendInfo(OrderArray,8);
  44. RecString=on_Rec_PDUStatus();
  45. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_IN_L1_INFO);
  46. QThread::msleep(QUERYSTAMP);
  47. //查询L2信息
  48. OrderArray[2] = (_SWITCH_T_AC_IN_L2_INFO >> 8) & 0xFF; // High byte
  49. OrderArray[3] = _SWITCH_T_AC_IN_L2_INFO & 0xFF; // Low byte
  50. OrderArray[4]=0x00;
  51. OrderArray[5]=0x08;
  52. crc = crc16_ccitt(OrderArray, 6);
  53. OrderArray[6] = crc & 0xFF; // Low byte
  54. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  55. SendString=on_SendInfo(OrderArray,8);
  56. RecString=on_Rec_PDUStatus();
  57. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_IN_L2_INFO);
  58. QThread::msleep(QUERYSTAMP);
  59. //查询L3信息
  60. OrderArray[2] = (_SWITCH_T_AC_IN_L3_INFO >> 8) & 0xFF; // High byte
  61. OrderArray[3] = _SWITCH_T_AC_IN_L3_INFO & 0xFF; // Low byte
  62. OrderArray[4]=0x00;
  63. OrderArray[5]=0x08;
  64. crc = crc16_ccitt(OrderArray, 6);
  65. OrderArray[6] = crc & 0xFF; // Low byte
  66. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  67. SendString=on_SendInfo(OrderArray,8);
  68. RecString=on_Rec_PDUStatus();
  69. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_IN_L3_INFO);
  70. QThread::msleep(QUERYSTAMP);
  71. for(int i=0;i<m_TotalCHTemp;i++)
  72. {
  73. //查询相信息
  74. OrderArray[2] = ((_SWITCH_T_AC_CH_PHASE_INFO + 30*i)>> 8) & 0xFF; // High byte
  75. OrderArray[3] = (_SWITCH_T_AC_CH_PHASE_INFO + 30*i) & 0xFF; // Low byte
  76. OrderArray[4]=0x00;
  77. OrderArray[5]=0x1E;
  78. crc = crc16_ccitt(OrderArray, 6);
  79. OrderArray[6] = crc & 0xFF; // Low byte
  80. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  81. SendString=on_SendInfo(OrderArray,8);
  82. RecString=on_Rec_PDUStatus();
  83. on_Parse_PDUStatus(SendString,RecString,(_SWITCH_T_AC_CH_PHASE_INFO + 30*i));
  84. QThread::msleep(QUERYSTAMP);
  85. }
  86. /*
  87. //查询相信息1
  88. OrderArray[2] = (_SWITCH_T_AC_CH_PHASE_INFO >> 8) & 0xFF; // High byte
  89. OrderArray[3] = _SWITCH_T_AC_CH_PHASE_INFO & 0xFF; // Low byte
  90. OrderArray[4]=0x00;
  91. OrderArray[5]=0x96;
  92. crc = crc16_ccitt(OrderArray, 6);
  93. OrderArray[6] = crc & 0xFF; // Low byte
  94. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  95. SendString=on_SendInfo(OrderArray,8);
  96. RecString=on_Rec_PDUStatus();
  97. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_CH_PHASE_INFO);
  98. QThread::msleep(QUERYSTAMP);
  99. //查询相信息2
  100. OrderArray[2] = ((_SWITCH_T_AC_CH_PHASE_INFO + _SWITCH_CH_DIV)>> 8) & 0xFF; // High byte
  101. OrderArray[3] = (_SWITCH_T_AC_CH_PHASE_INFO + _SWITCH_CH_DIV) & 0xFF; // Low byte
  102. OrderArray[4]=0x00;
  103. OrderArray[5]=0x96;
  104. crc = crc16_ccitt(OrderArray, 6);
  105. OrderArray[6] = crc & 0xFF; // Low byte
  106. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  107. SendString=on_SendInfo(OrderArray,8);
  108. RecString=on_Rec_PDUStatus();
  109. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_CH_PHASE_INFO+_SWITCH_CH_DIV);
  110. QThread::msleep(QUERYSTAMP);
  111. //查询相信息3
  112. OrderArray[2] = ((_SWITCH_T_AC_CH_PHASE_INFO + _SWITCH_CH_DIV*2 )>> 8) & 0xFF; // High byte
  113. OrderArray[3] = (_SWITCH_T_AC_CH_PHASE_INFO + _SWITCH_CH_DIV*2 ) & 0xFF; // Low byte
  114. OrderArray[4]=0x00;
  115. OrderArray[5]=0x96;
  116. crc = crc16_ccitt(OrderArray, 6);
  117. OrderArray[6] = crc & 0xFF; // Low byte
  118. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  119. SendString=on_SendInfo(OrderArray,8);
  120. RecString=on_Rec_PDUStatus();
  121. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_CH_PHASE_INFO+_SWITCH_CH_DIV*2);
  122. QThread::msleep(QUERYSTAMP);
  123. */
  124. //查询通道状态
  125. OrderArray[2] = (_SWITCH_T_AC_CH_STATUS >> 8) & 0xFF; // High byte
  126. OrderArray[3] = _SWITCH_T_AC_CH_STATUS & 0xFF; // Low byte
  127. OrderArray[4]=0x00;
  128. OrderArray[5]=0x0E;
  129. crc = crc16_ccitt(OrderArray, 6);
  130. OrderArray[6] = crc & 0xFF; // Low byte
  131. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  132. SendString=on_SendInfo(OrderArray,8);
  133. RecString=on_Rec_PDUStatus();
  134. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_CH_STATUS);
  135. QThread::msleep(QUERYSTAMP);
  136. //查询modbus传感器
  137. OrderArray[2] = (_SWITCH_T_AC_SENSOR_INFO >> 8) & 0xFF; // High byte
  138. OrderArray[3] = _SWITCH_T_AC_SENSOR_INFO & 0xFF; // Low byte
  139. OrderArray[4]=0x00;
  140. OrderArray[5]=0x10;
  141. crc = crc16_ccitt(OrderArray, 6);
  142. OrderArray[6] = crc & 0xFF; // Low byte
  143. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  144. SendString=on_SendInfo(OrderArray,8);
  145. RecString=on_Rec_PDUStatus();
  146. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_SENSOR_INFO);
  147. QThread::msleep(QUERYSTAMP);
  148. //查询干节点传感器
  149. OrderArray[2] =(_SWITCH_T_AC_SENSOR_INFO1 >> 8) & 0xFF; // High byte
  150. OrderArray[3] = _SWITCH_T_AC_SENSOR_INFO1 & 0xFF; // Low byte
  151. OrderArray[4]=0x00;
  152. OrderArray[5]=0x04;
  153. crc = crc16_ccitt(OrderArray, 6);
  154. OrderArray[6] = crc & 0xFF; // Low byte
  155. OrderArray[7] = (crc >> 8) & 0xFF; // High byte
  156. SendString=on_SendInfo(OrderArray,8);
  157. RecString=on_Rec_PDUStatus();
  158. on_Parse_PDUStatus(SendString,RecString,_SWITCH_T_AC_SENSOR_INFO1);
  159. QThread::msleep(QUERYSTAMP);
  160. }
  161. void SerialInfo::on_Parse_PDUStatus(const QString &Sendstr,const QString &Recstr,uint16_t infoType)
  162. {
  163. if(Recstr=="") return;
  164. if(_SWITCH_T_AC_TYPE_CHN_INFO==infoType)
  165. {
  166. QVector<quint16> pRecVector=parseModbusResponse(Recstr,1);
  167. if(pRecVector.size()<1) return;
  168. m_TotalCHTemp = pRecVector[0] & 0xFF; // Low byte
  169. m_PDUType = (pRecVector[0] >> 8) & 0xFF; // High byte
  170. }
  171. else if(_SWITCH_T_AC_IN_L1_INFO==infoType)
  172. {
  173. QVector<quint16> pRecVector=parseModbusResponse(Recstr,8);
  174. if(pRecVector.size()<8) return;
  175. m_PDUAllInfo.AllVoltage_L1 = ((pRecVector[1] << 16) + pRecVector[0] )/1000.0f; // Low byte
  176. m_PDUAllInfo.AllCurrent_L1 = ((pRecVector[3] << 16) + pRecVector[2] )/1000.0f; // Low byte
  177. m_PDUAllInfo.AllPower_L1 = ((pRecVector[5] << 16) + pRecVector[4] )/1000.0f; // Low byte
  178. m_PDUAllInfo.AllConsumption_L1 = ((pRecVector[7] << 16)+ pRecVector[6])/1000.0f; // Low byte
  179. }
  180. else if(_SWITCH_T_AC_IN_L2_INFO==infoType)
  181. {
  182. QVector<quint16> pRecVector=parseModbusResponse(Recstr,8);
  183. if(pRecVector.size()<8) return;
  184. m_PDUAllInfo.AllVoltage_L2 = ((pRecVector[1] << 16) + pRecVector[0] )/1000.0f; // Low byte
  185. m_PDUAllInfo.AllCurrent_L2 = ((pRecVector[3] << 16) + pRecVector[2] )/1000.0f; // Low byte
  186. m_PDUAllInfo.AllPower_L2 = ((pRecVector[5] << 16) + pRecVector[4] )/1000.0f; // Low byte
  187. m_PDUAllInfo.AllConsumption_L2 = ((pRecVector[7] << 16)+ pRecVector[6])/1000.0f; // Low byte
  188. }
  189. else if(_SWITCH_T_AC_IN_L3_INFO==infoType)
  190. {
  191. QVector<quint16> pRecVector=parseModbusResponse(Recstr,8);
  192. if(pRecVector.size()<8) return;
  193. m_PDUAllInfo.AllVoltage_L3 = ((pRecVector[1] << 16) + pRecVector[0] )/1000.0f; // Low byte
  194. m_PDUAllInfo.AllCurrent_L3 = ((pRecVector[3] << 16) + pRecVector[2] )/1000.0f; // Low byte
  195. m_PDUAllInfo.AllPower_L3 = ((pRecVector[5] << 16) + pRecVector[4] )/1000.0f; // Low byte
  196. m_PDUAllInfo.AllConsumption_L3 = ((pRecVector[7] << 16)+ pRecVector[6])/1000.0f; // Low byte
  197. }
  198. else if(_SWITCH_T_AC_CH_STATUS==infoType)
  199. {
  200. QVector<quint16> pRecVector=parseModbusResponse(Recstr,14);
  201. if(pRecVector.size()<14) return;
  202. for(int i=0;i<14;i++)
  203. {
  204. m_PDUCHInfo[i].CHStatus=pRecVector[i] & 0xFFFF; // Low byte
  205. }
  206. }
  207. else if(_SWITCH_T_AC_SENSOR_INFO==infoType)
  208. {
  209. QVector<quint16> pRecVector=parseModbusResponse(Recstr,16);
  210. if(pRecVector.size()<16) return;
  211. m_PDUAllInfo.Sensor_Temperature = ((pRecVector[1] << 16) + pRecVector[0] )/1000.0f;
  212. m_PDUAllInfo.Sensor_Humidity = ((pRecVector[3] << 16) + pRecVector[2] )/1000.0f;
  213. m_PDUAllInfo.Sensor_CO2 = ((pRecVector[5] << 16) + pRecVector[4] )/1000.0f;
  214. m_PDUAllInfo.Sensor_INTemperature = ((pRecVector[9] << 16)+ pRecVector[8])/1000.0f;
  215. m_PDUAllInfo.Sensor_OUTTemperature = ((pRecVector[13] << 16)+ pRecVector[12])/1000.0f;
  216. }
  217. else if(_SWITCH_T_AC_SENSOR_INFO1==infoType)
  218. {
  219. QVector<quint16> pRecVector=parseModbusResponse(Recstr,4);
  220. if(pRecVector.size()<4) return;
  221. m_PDUAllInfo.Sensor_WaterImmersion = pRecVector[0] & 0xFFFF; // Low byte
  222. }
  223. else
  224. {
  225. for(int i=0;i<m_TotalCHTemp;i++)
  226. {
  227. if((_SWITCH_T_AC_CH_PHASE_INFO+30*i)==infoType)
  228. {
  229. QVector<quint16> pRecVector=parseModbusResponse(Recstr,30);
  230. if(pRecVector.size()<30) return;
  231. // bool L1flag=pRecVector[8] & 0xFFFF; // Low byte
  232. //bool L2flag=pRecVector[18] & 0xFFFF; // Low byte
  233. //bool L3flag=pRecVector[28] & 0xFFFF; // Low byte
  234. float VL1=((pRecVector[1] << 16) + pRecVector[0] )/1000.0f;
  235. float IL1=((pRecVector[3] << 16) + pRecVector[2] )/1000.0f;
  236. float PL1=((pRecVector[5] << 16) + pRecVector[4] )/1000.0f;
  237. float CL1=((pRecVector[7] << 16) + pRecVector[6] )/1000.0f;
  238. float VL2=((pRecVector[11] << 16) + pRecVector[10] )/1000.0f;
  239. float IL2=((pRecVector[13] << 16) + pRecVector[12] )/1000.0f;
  240. float PL2=((pRecVector[15] << 16) + pRecVector[14] )/1000.0f;
  241. float CL2=((pRecVector[17] << 16) + pRecVector[16] )/1000.0f;
  242. float VL3=((pRecVector[21] << 16) + pRecVector[20] )/1000.0f;
  243. float IL3=((pRecVector[23] << 16) + pRecVector[22] )/1000.0f;
  244. float PL3=((pRecVector[25] << 16) + pRecVector[24] )/1000.0f;
  245. float CL3=((pRecVector[27] << 16) + pRecVector[26] )/1000.0f;
  246. if(VL1>=VL2 && VL1>=VL3)
  247. {
  248. m_PDUCHInfo[i].CHVoltage=VL1;
  249. m_PDUCHInfo[i].CHCurrent=IL1;
  250. m_PDUCHInfo[i].CHPower=PL1;
  251. m_PDUCHInfo[i].CHConsumption=CL1;
  252. }
  253. if(VL2>=VL1 && VL2>=VL3)
  254. {
  255. m_PDUCHInfo[i].CHVoltage=VL2;
  256. m_PDUCHInfo[i].CHCurrent=IL2;
  257. m_PDUCHInfo[i].CHPower=PL2;
  258. m_PDUCHInfo[i].CHConsumption=CL2;
  259. }
  260. if(VL3>=VL1 && VL3>=VL2)
  261. {
  262. m_PDUCHInfo[i].CHVoltage=VL3;
  263. m_PDUCHInfo[i].CHCurrent=IL3;
  264. m_PDUCHInfo[i].CHPower=PL3;
  265. m_PDUCHInfo[i].CHConsumption=CL3;
  266. }
  267. break;
  268. }
  269. }
  270. }
  271. if(m_printflag) emit addPDUInfo(Sendstr, Recstr);
  272. }
  273. /*发送数据*/
  274. QString SerialInfo::on_SendInfo(char* OrderArray,int sendsize)
  275. {
  276. if(!m_openflag) return "";
  277. QString hexString="";
  278. // 创建一个JNI环境并调用Java静态方法
  279. QAndroidJniEnvironment env;
  280. jbyteArray byteArray = env->NewByteArray(sendsize);
  281. env->SetByteArrayRegion(byteArray, 0, sendsize, reinterpret_cast<const jbyte*>(OrderArray));
  282. QAndroidJniObject sendbacktring = QAndroidJniObject::callStaticObjectMethod(
  283. "usb/USBListActivity",
  284. "writeData",
  285. "([B)Ljava/lang/String;", // 方法签名:接收字节数组并返回字符串
  286. byteArray // 参数
  287. );
  288. QString recsendinfo=sendbacktring.toString();
  289. // 发送字节计数并显示
  290. if(recsendinfo!="")
  291. {
  292. QByteArray byteArray = recsendinfo.toLatin1(); // 将 QString 转换为 QByteArray,使用 UTF-8 编码
  293. for (unsigned char byte : byteArray) {
  294. // 使用 printf 格式化输出或 qDebug() 输出每个字节的十六进制表示
  295. hexString += QString("%1 ").arg(static_cast<unsigned char>(byte), 2, 16, QChar('0'));
  296. }
  297. }
  298. return hexString;
  299. }
  300. QString SerialInfo::on_Rec_PDUStatus()
  301. {
  302. if(!m_openflag) return "";
  303. // 如接收成功,会返回接收的字符串,失败返回空字符串
  304. QString Allrecinfo="";
  305. for (int i=0;i<10;i++)
  306. {
  307. QAndroidJniObject recbacktring = QAndroidJniObject::callStaticObjectMethod(
  308. "usb/USBListActivity",
  309. "readData",
  310. "()Ljava/lang/String;");
  311. QString recinfo=recbacktring.toString();
  312. // 发送字节计数并显示
  313. if(recinfo!="")
  314. {
  315. QString hexString;
  316. QByteArray byteArray = recinfo.toLatin1(); // 将 QString 转换为 QByteArray,使用 UTF-8 编码
  317. for (char byte : byteArray) {
  318. // 使用 printf 格式化输出或 qDebug() 输出每个字节的十六进制表示
  319. hexString += QString("%1 ").arg(static_cast<unsigned char>(byte), 2, 16, QChar('0'));
  320. }
  321. Allrecinfo+=hexString;
  322. }
  323. else
  324. {
  325. break;
  326. }
  327. }
  328. return Allrecinfo;
  329. }
  330. uint16_t SerialInfo::crc16_ccitt(char* data, size_t length) {
  331. uint16_t crc = 0xFFFF;
  332. uint16_t i, j;
  333. for (i = 0; i < length; i++) {
  334. crc ^= data[i];
  335. for (j = 0; j < 8; j++) {
  336. if (crc & 0x0001) {
  337. crc >>= 1;
  338. crc ^= 0xA001;
  339. } else {
  340. crc >>= 1;
  341. }
  342. }
  343. }
  344. // data[7] = crc & 0xFF; // Low byte
  345. //data[6] = (crc >> 8) & 0xFF; // High byte
  346. return crc; // No final XOR value for CRC16-CCITT (XMODEM)
  347. }
  348. QVector<quint16> SerialInfo::parseModbusResponse(const QString &hexString, int registerCount) {
  349. QVector<quint16> registers;
  350. QString TempHexString=hexString;
  351. // Remove spaces from the input string for easier parsing
  352. QString cleanHexString = TempHexString.remove(QRegularExpression("\\s"));
  353. // Verify the length of the cleaned string matches what we expect
  354. if (cleanHexString.length() != (registerCount * 4 + 5 * 2)) { // +5*2 for the modubus 03 code head 3 byte +tail 2 byte = 5 byte
  355. qWarning() << "Invalid response length.";
  356. return registers; // Return empty vector on error
  357. }
  358. // Skip the first byte which is the byte count in a Modbus TCP response
  359. QTextStream stream(&cleanHexString);
  360. stream.skipWhiteSpace();
  361. stream.seek(6); // Skip the head byte count
  362. for (int i = 0; i < registerCount; ++i) {
  363. QString byteStr = stream.read(4); // Each register is represented by 4 hex chars (2 bytes)
  364. if (byteStr.length() != 4) {
  365. qWarning() << "Unexpected end of data at register" << i;
  366. break;
  367. }
  368. // Convert the 4 hex chars into a quint16 value
  369. bool ok1, ok2;
  370. quint8 byte1 = byteStr.left(2).toInt(&ok1, 16); // 前两位转换为整数
  371. quint8 byte2 = byteStr.right(2).toInt(&ok2, 16); // 后两位转换为整数
  372. quint16 regValue = (byte1 << 8) | byte2;
  373. registers.append(regValue);
  374. }
  375. return registers;
  376. }