acrel.go 10 KB

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  1. package acrel
  2. import (
  3. "MeterService/core/logger"
  4. "MeterService/dataStruct"
  5. "MeterService/service/rtuService"
  6. "reflect"
  7. "runtime"
  8. )
  9. var (
  10. adw300Meter = []dataStruct.ParsingDataConfig{
  11. {Origin: 0x0E, Amount: 56, Method: adw300A04C56},
  12. {Origin: 0x12E, Amount: 12, Method: adw300A12eC12},
  13. {Origin: 0x7A, Amount: 60, Method: adw300A7aC60},
  14. {Origin: 0xB6, Amount: 60, Method: adw300Ab6C60},
  15. {Origin: 0xF2, Amount: 60, Method: adw300Af2C60},
  16. {Origin: 0x15A, Amount: 13, Method: adw300A15aC13},
  17. }
  18. )
  19. func CollectADW300(w rtuService.RtuNetPgr, ref *dataStruct.MeterRef) (*dataStruct.CollectData, error) {
  20. colData := &dataStruct.CollectData{
  21. MeterRef: ref,
  22. }
  23. for _, v := range adw300Meter {
  24. if adu, err := w.GetHoldingRegs(v.Origin, v.Amount); err != nil {
  25. logger.Error("ADW300 采集失败[%s] ERROR:%v", runtime.FuncForPC(reflect.ValueOf(v.Method).Pointer()).Name(), err)
  26. return colData, err
  27. } else {
  28. logger.Debug("======》ADU:%v", adu)
  29. v.Method(adu, colData)
  30. }
  31. }
  32. return colData, nil
  33. }
  34. func adw300A04C56(adu []byte, s *dataStruct.CollectData) {
  35. var (
  36. index = 0
  37. m int16
  38. u int32
  39. )
  40. // 电压变比
  41. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  42. s.PT = int(m)
  43. // 电流变比
  44. index += 2
  45. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  46. s.CT = int(m)
  47. index += 2
  48. //N相温度
  49. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  50. s.TemperatureZ = float32(m) * float32(0.1)
  51. index += 2
  52. index += 6
  53. //A相电压
  54. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  55. s.Ua = float32(m) * float32(0.1) * float32(s.PT)
  56. index += 2
  57. //B相电压
  58. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  59. s.Ub = float32(m) * float32(0.1) * float32(s.PT)
  60. index += 2
  61. //C相电压
  62. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  63. s.Uc = float32(m) * float32(0.1) * float32(s.PT)
  64. index += 2
  65. //AB线电压
  66. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  67. s.Uab = float32(m) * float32(0.1) * float32(s.PT)
  68. index += 2
  69. //BC线电压
  70. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  71. s.Ubc = float32(m) * float32(0.1) * float32(s.PT)
  72. index += 2
  73. //CA相电压
  74. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  75. s.Uca = float32(m) * float32(0.1) * float32(s.PT)
  76. index += 2
  77. //A相电流
  78. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  79. s.Ia = float32(m) * float32(0.01) * float32(s.CT)
  80. index += 2
  81. //B相电流
  82. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  83. s.Ib = float32(m) * float32(0.01) * float32(s.CT)
  84. index += 2
  85. //C相电流
  86. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  87. s.Ic = float32(m) * float32(0.01) * float32(s.CT)
  88. index += 2
  89. //三相电流矢量和
  90. index += 2
  91. //A相有功功率
  92. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  93. s.Pa = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  94. index += 4
  95. //B相有功功率
  96. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  97. s.Pb = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  98. index += 4
  99. //C相有功功率
  100. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  101. s.Pc = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  102. index += 4
  103. //总有功功率
  104. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  105. s.P = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  106. index += 4
  107. //A相无功功率
  108. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  109. s.Qa = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  110. index += 4
  111. //B相无功功率
  112. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  113. s.Qb = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  114. index += 4
  115. //C相无功功率
  116. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  117. s.Qc = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  118. index += 4
  119. //总无功功率
  120. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  121. s.Q = float32(u) * float32(0.001) * float32(s.CT) * float32(s.PT)
  122. index += 4
  123. //A相视在功率
  124. index += 4
  125. //B相视在功率
  126. index += 4
  127. //C相视在功率
  128. index += 4
  129. //总视在功率
  130. index += 4
  131. //A相功率因数
  132. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  133. s.Pfa = float32(m) * float32(0.001)
  134. index += 2
  135. //B相功率因数
  136. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  137. s.Pfb = float32(m) * float32(0.001)
  138. index += 2
  139. //C相功率因数
  140. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  141. s.Pfc = float32(m) * float32(0.001)
  142. index += 2
  143. //总功率因数
  144. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  145. s.Pf = float32(m) * float32(0.001)
  146. index += 2
  147. //DI
  148. index += 2
  149. //频率
  150. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  151. s.Freq = float32(m) * float32(0.01)
  152. index += 2
  153. //组合有功总电能
  154. index += 4
  155. //正向有功电能
  156. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  157. s.Tps = float32(u) * float32(0.01) * float32(s.CT) * float32(s.PT)
  158. index += 4
  159. //反向有功电能
  160. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  161. s.Fps = float32(u) * float32(0.01) * float32(s.CT) * float32(s.PT)
  162. index += 4
  163. //正向无功电能
  164. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  165. s.Tqs = float32(u) * float32(0.01) * float32(s.CT) * float32(s.PT)
  166. index += 4
  167. //反向无功电能
  168. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  169. s.Fqs = float32(u) * float32(0.01) * float32(s.CT) * float32(s.PT)
  170. //index += 4
  171. s.CalcDiff()
  172. }
  173. // 基波、谐波
  174. func adw300A12eC12(adu []byte, s *dataStruct.CollectData) {
  175. var (
  176. index = 0
  177. m int16
  178. )
  179. //A相基波电压
  180. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  181. s.BaseUa = float32(m) * float32(0.1) * float32(s.PT)
  182. index += 2
  183. //B相基波电压
  184. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  185. s.BaseUb = float32(m) * float32(0.1) * float32(s.PT)
  186. index += 2
  187. //C相基波电压
  188. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  189. s.BaseUc = float32(m) * float32(0.1) * float32(s.PT)
  190. index += 2
  191. //A相谐波电压
  192. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  193. s.HarUa = float32(m) * float32(0.1) * float32(s.PT)
  194. index += 2
  195. //B相谐波电压
  196. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  197. s.HarUb = float32(m) * float32(0.1) * float32(s.PT)
  198. index += 2
  199. //C相谐波电压
  200. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  201. s.HarUc = float32(m) * float32(0.1) * float32(s.PT)
  202. index += 2
  203. //A相基波电流
  204. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  205. s.BaseIa = float32(m) * float32(0.01) * float32(s.CT)
  206. index += 2
  207. //B相基波电流
  208. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  209. s.BaseIb = float32(m) * float32(0.01) * float32(s.CT)
  210. index += 2
  211. //C相基波电流
  212. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  213. s.BaseIc = float32(m) * float32(0.01) * float32(s.CT)
  214. index += 2
  215. //A相谐波电流
  216. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  217. s.HarIa = float32(m) * float32(0.1) * float32(s.CT)
  218. index += 2
  219. //B相谐波电流
  220. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  221. s.HarIb = float32(m) * float32(0.1) * float32(s.CT)
  222. index += 2
  223. //C相谐波电流
  224. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  225. s.HarIc = float32(m) * float32(0.1) * float32(s.CT)
  226. }
  227. // 0x7A,60
  228. // A相电压分次谐波(2-31次)
  229. // B相电压分次谐波(2-31次)
  230. func adw300A7aC60(adu []byte, s *dataStruct.CollectData) {
  231. var (
  232. index = 2
  233. m int16
  234. )
  235. //A相电压分次谐波(2-31次)
  236. for i := 0; i < 15; i++ {
  237. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  238. s.Hua[i] = float32(m) * float32(0.01)
  239. index += 4
  240. }
  241. //B相电压分次谐波(2-31次)
  242. index = 2*30 + 2
  243. for i := 0; i < 15; i++ {
  244. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  245. s.Hub[i] = float32(m) * float32(0.01)
  246. index += 4
  247. }
  248. }
  249. // 0xB6,60
  250. // C相电压分次谐波(2-31次)
  251. // A相电流分次谐波(2-31次)
  252. func adw300Ab6C60(adu []byte, s *dataStruct.CollectData) {
  253. var (
  254. index = 2
  255. m int16
  256. )
  257. //C相电压分次谐波(2-31次)
  258. for i := 0; i < 15; i++ {
  259. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  260. s.Huc[i] = float32(m) * float32(0.01)
  261. index += 4
  262. }
  263. //A相电流分次谐波(2-31次)
  264. index = 2*30 + 2
  265. for i := 0; i < 15; i++ {
  266. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  267. s.Hia[i] = float32(m) * float32(0.01)
  268. index += 4
  269. }
  270. }
  271. // 0xF2,60
  272. // B相电流分次谐波(2-31次)
  273. // C相电流分次谐波(2-31次)
  274. func adw300Af2C60(adu []byte, s *dataStruct.CollectData) {
  275. var (
  276. index = 2
  277. m int16
  278. )
  279. //index = 2
  280. for i := 0; i < 15; i++ {
  281. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  282. s.Hub[i] = float32(m) * float32(0.01)
  283. index += 4
  284. }
  285. //C相电流分次谐波(2-31次)
  286. index = 2*30 + 2
  287. for i := 0; i < 15; i++ {
  288. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  289. s.Hic[i] = float32(m) * float32(0.01)
  290. index += 4
  291. }
  292. }
  293. func adw300A15aC13(adu []byte, data *dataStruct.CollectData) {
  294. var (
  295. index = 0
  296. m int16
  297. u int32
  298. )
  299. //当前正向有功需量
  300. u = int32(uint32(adu[index])<<24 | uint32(adu[index+1])<<16 | uint32(adu[index+2])<<8 | uint32(adu[index+3]))
  301. data.Dp = float32(u) * float32(0.001) * float32(data.CT) * float32(data.PT)
  302. //当前反向有功需量
  303. index += 4
  304. //当前正向无功需量
  305. index += 4
  306. //当前反向无功需量
  307. index += 4
  308. //电压不平衡度
  309. index += 4
  310. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  311. data.UUnbalance = float32(m) * float32(0.01)
  312. //电流不平衡度
  313. index += 2
  314. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  315. data.IUnbalance = float32(m) * float32(0.01)
  316. //A相温度
  317. index += 2
  318. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  319. data.TemperatureA = float32(m) * float32(0.1)
  320. //B相温度
  321. index += 2
  322. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  323. data.TemperatureB = float32(m) * float32(0.1)
  324. //C相温度
  325. index += 2
  326. m = int16(uint16(adu[index])<<8 | uint16(adu[index+1]))
  327. data.TemperatureC = float32(m) * float32(0.1)
  328. }