main.c 94 KB

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  1. /* USER CODE BEGIN Header */
  2. /**
  3. ******************************************************************************
  4. * @file : main.c
  5. * @brief : Main program body
  6. ******************************************************************************
  7. * @attention
  8. *
  9. * <h2><center>&copy; Copyright (c) 2021 STMicroelectronics.
  10. * All rights reserved.</center></h2>
  11. *
  12. * This software component is licensed by ST under Ultimate Liberty license
  13. * SLA0044, the "License"; You may not use this file except in compliance with
  14. * the License. You may obtain a copy of the License at:
  15. * www.st.com/SLA0044
  16. *
  17. ******************************************************************************
  18. */
  19. /* USER CODE END Header */
  20. /* Includes ------------------------------------------------------------------*/
  21. #include "main.h"
  22. #include "cmsis_os.h"
  23. #include "FreeRTOS.h"
  24. #include "task.h"
  25. #include "timers.h"
  26. #include "event_groups.h"
  27. /* Private includes ----------------------------------------------------------*/
  28. /* USER CODE BEGIN Includes */
  29. #include "string.h"
  30. #include "stdio.h"
  31. #include "usart.h"
  32. #include "config.h"
  33. #include "rkg.h"
  34. #include "cang.h"
  35. #include "kzq.h"
  36. #include "level.h"
  37. #include "tem.h"
  38. #include "angle.h"
  39. #include "xyf.h"
  40. #include "hdf.h"
  41. #include "bgy.h"
  42. #include "yqhs.h"
  43. #include "iap.h"
  44. /* USER CODE END Includes */
  45. #if 1
  46. #define IR_ROM1 0x08000000
  47. #else
  48. #define IR_ROM1 0x08020000
  49. #endif
  50. /* Private typedef -----------------------------------------------------------*/
  51. /* USER CODE BEGIN PTD */
  52. #define ADDR_Is_In_ElecFence 0x05D0 // 1488 车是否在电子围栏内
  53. uint8_t REST = 0;
  54. uint32_t usage_Tsk12=0;
  55. //============================================================
  56. sT2C_RemoteCaliDat T2C_RemoteCaliDat001 =
  57. {
  58. 0x3901,
  59. 0x9551000,
  60. 0x0003,
  61. ADDR_Is_In_ElecFence,//0x0000,
  62. 0x0001, //操作的数据个数
  63. 0x55aa55aa, //保留字4字节
  64. {1,2,3,4,5,6,7,8,9,10,11,12,13,14,15,16,17,18,19,20,21,22,23,24,\
  65. 25,26,27,28,29,30,31,32,33,34,35,36,37,38,39,40,41,42,43,44},
  66. 0x7788,//保留字2字节
  67. 0x99aa //校验2字节
  68. };
  69. sT2C_RemoteCaliDat *pT2C_RemoteCaliData = &T2C_RemoteCaliDat001;
  70. /* USER CODE END PTD */
  71. /* Private define ------------------------------------------------------------*/
  72. /* USER CODE BEGIN PD */
  73. #define RT_ERRORCNT 60 //串口收发数据错误上限
  74. /* USER CODE END PD */
  75. /* Private macro -------------------------------------------------------------*/
  76. /* USER CODE BEGIN PM */
  77. uint8_t CMD_KZQ[256] =
  78. {0x39,0x01,0x95,0x50,0x00,0x01,0x00,0x03,
  79. 0x00,0x00,0x00,0x00,0x95,0x05,0xaa,0xaa,
  80. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  81. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  82. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  83. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  84. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  85. 0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,
  86. };
  87. //卸油阀指令
  88. uint8_t CMD_XYF[8] = {0x11,0x03,0x00,0x00,0x00,0x01,0x00,0x00};
  89. uint8_t Data_Head[2] = {0x0D,0x0A};
  90. //海底阀指令
  91. uint8_t CMD_HDF[16] =
  92. {0x21,0x03,0x2a,0,0,0,0,0,0xaa,0xbb,0xcc,0xdd,0xee,0xdd,0xcc,0xbb};
  93. //人孔盖指令31 03 00 02 00 02
  94. uint8_t CMD_RKG[8] = {0x31,0x03,0x00,0x02,0x00,0x02,0x00,0x00};
  95. uint8_t CMD_RKG_CBM[12] = {0x0D,0x0A,0x31,0x03,0x00,0x02,0x00,0x02,0x00,0x00,0x0D,0x0A};
  96. uint8_t CMD_RKG_XG[12] = {0x41,0x03,0x00,0x02,0x00,0x02,0x00,0x00};
  97. //油气回收
  98. uint8_t CMD_YQHS[8] = {0xE4,0x03,0x00,0x00,0x00,0x01,0x00,0x00};
  99. //倾角传感器读取协议 01 03 00 02 00 02 CRC
  100. uint8_t CMD_Angle_XY[] = {0x71,0x03,0x00,0x3d,0x00,0x03,0x00,0x00};
  101. //卸尽传感器读取协议
  102. uint8_t CMD_Biguayou[] = {0x81,0x03,0x00,0x00,0x00,0x01,0x9B,0xCA};
  103. //uint8_t CMD_Angle_X[] = {0xE0,0x03,0x00,0x02,0x00,0x02,0x00,0x00};
  104. //uint8_t CMD_Angle_Y[] = {0xE1,0x03,0x00,0x02,0x00,0x02,0x00,0x00};
  105. uint8_t CMD_LDYW[8]={0x51,0x04,0x0a,0x0f,0x00,0x02};//设备地址,功能码,地址4字节 反回:设备地址,功能码,数据长度,数据4字节
  106. uint8_t CMD_GetTempAndYewei[8]={0x51, 0x04, 00, 00, 00, 0x10, 0x03 ,0xae};//读取编号为04地址的温度传感器数据
  107. //61-6f 03 00 04 00 01 C6 8A----读取华天传感器的第1个温度点,地址为x10;最接近电子仓的温度点
  108. uint8_t CMD_GetTempHuaTian[8]={0x61, 0x03, 00, 04, 00, 01,0,0};//读取华天传感器的第一个温度点
  109. //磁编码传感器读取协议 。
  110. /* USER CODE END PM */
  111. /* Private variables ---------------------------------------------------------*/
  112. CRC_HandleTypeDef hcrc;
  113. DAC_HandleTypeDef hdac;
  114. DMA_HandleTypeDef hdma_dac_ch2;
  115. TIM_HandleTypeDef htim1;
  116. TIM_HandleTypeDef htim4;
  117. UART_HandleTypeDef huart5;
  118. UART_HandleTypeDef huart1;
  119. UART_HandleTypeDef huart2;
  120. UART_HandleTypeDef huart3;
  121. DMA_HandleTypeDef hdma_usart1_rx;
  122. DMA_HandleTypeDef hdma_usart1_tx;
  123. DMA_HandleTypeDef hdma_usart2_rx;
  124. DMA_HandleTypeDef hdma_usart3_rx;
  125. uint8_t bufMain[128];
  126. /* Definitions for defaultTask */
  127. osThreadId_t defaultTaskHandle;
  128. const osThreadAttr_t defaultTask_attributes = {
  129. .name = "defaultTask",
  130. .stack_size = 128 * 4,
  131. .priority = (osPriority_t) osPriorityNormal,
  132. };
  133. /* Definitions for myTask02 */
  134. osThreadId_t myTask02Handle;
  135. const osThreadAttr_t myTask02_attributes = {
  136. .name = "myTask02",
  137. .stack_size = 256 * 4,
  138. .priority = (osPriority_t) osPriorityLow,
  139. };
  140. /* Definitions for myTask03 */
  141. osThreadId_t myTask03Handle;
  142. const osThreadAttr_t myTask03_attributes = {
  143. .name = "myTask03",
  144. .stack_size = 256 * 4,
  145. .priority = (osPriority_t) osPriorityLow,
  146. };
  147. /* Definitions for myTask04 */
  148. osThreadId_t myTask04Handle;
  149. const osThreadAttr_t myTask04_attributes = {
  150. .name = "myTask04",
  151. .stack_size = 256 * 4,
  152. .priority = (osPriority_t) osPriorityLow,
  153. };
  154. /* Definitions for myTask05 */
  155. osThreadId_t myTask05Handle;
  156. const osThreadAttr_t myTask05_attributes = {
  157. .name = "myTask05",
  158. .stack_size = 128 * 4,
  159. .priority = (osPriority_t) osPriorityLow,
  160. };
  161. /* Definitions for myTask06 */
  162. osThreadId_t myTask06Handle;
  163. const osThreadAttr_t myTask06_attributes = {
  164. .name = "myTask06",
  165. .stack_size = 128 * 4,
  166. .priority = (osPriority_t) osPriorityLow,
  167. };
  168. /* Definitions for myTask07 */
  169. osThreadId_t myTask07Handle;
  170. const osThreadAttr_t myTask07_attributes = {
  171. .name = "myTask07",
  172. .stack_size = 128 * 4,
  173. .priority = (osPriority_t) osPriorityLow,
  174. };
  175. /* Definitions for myTask08 */
  176. osThreadId_t myTask08Handle;
  177. const osThreadAttr_t myTask08_attributes = {
  178. .name = "myTask08",
  179. .stack_size = 128 * 4,
  180. .priority = (osPriority_t) osPriorityLow,
  181. };
  182. /* Definitions for myTask09 */
  183. osThreadId_t myTask09Handle;
  184. const osThreadAttr_t myTask09_attributes = {
  185. .name = "myTask09",
  186. .stack_size = 128 * 4,
  187. .priority = (osPriority_t) osPriorityLow,
  188. };
  189. /* Definitions for myTask10 */
  190. osThreadId_t myTask10Handle;
  191. const osThreadAttr_t myTask10_attributes = {
  192. .name = "myTask10",
  193. .stack_size = 128 * 4,
  194. .priority = (osPriority_t) osPriorityLow,
  195. };
  196. /* Definitions for myTask11 */
  197. osThreadId_t myTask11Handle;
  198. const osThreadAttr_t myTask11_attributes = {
  199. .name = "myTask11",
  200. .stack_size = 128 * 4,
  201. .priority = (osPriority_t) osPriorityLow,
  202. };
  203. /* Definitions for myTask12 */
  204. osThreadId_t myTask12Handle;
  205. const osThreadAttr_t myTask12_attributes = {
  206. .name = "myTask12",
  207. .stack_size = 128 * 4,
  208. .priority = (osPriority_t) (osPriorityLow-6),
  209. };
  210. /* Definitions for myQueue01 */
  211. osMessageQueueId_t myQueue01Handle;
  212. const osMessageQueueAttr_t myQueue01_attributes = {
  213. .name = "myQueue01"
  214. };
  215. /* Definitions for myQueue02 */
  216. osMessageQueueId_t myQueue02Handle;
  217. const osMessageQueueAttr_t myQueue02_attributes = {
  218. .name = "myQueue02"
  219. };
  220. /* Definitions for myQueue03 */
  221. osMessageQueueId_t myQueue03Handle;
  222. const osMessageQueueAttr_t myQueue03_attributes = {
  223. .name = "myQueue03"
  224. };
  225. /* Definitions for myQueue04 */
  226. osMessageQueueId_t myQueue04Handle;
  227. const osMessageQueueAttr_t myQueue04_attributes = {
  228. .name = "myQueue04"
  229. };
  230. /* Definitions for myQueue05 */
  231. osMessageQueueId_t myQueue05Handle;
  232. const osMessageQueueAttr_t myQueue05_attributes = {
  233. .name = "myQueue05"
  234. };
  235. /* Definitions for myQueue06 */
  236. osMessageQueueId_t myQueue06Handle;
  237. const osMessageQueueAttr_t myQueue06_attributes = {
  238. .name = "myQueue06"
  239. };
  240. /* Definitions for myTimer01 */
  241. osTimerId_t myTimer01Handle;
  242. const osTimerAttr_t myTimer01_attributes = {
  243. .name = "myTimer01"
  244. };
  245. /* Definitions for myTimer02 */
  246. osTimerId_t myTimer02Handle;
  247. const osTimerAttr_t myTimer02_attributes = {
  248. .name = "myTimer02"
  249. };
  250. /* Definitions for myTimer03 */
  251. osTimerId_t myTimer03Handle;
  252. const osTimerAttr_t myTimer03_attributes = {
  253. .name = "myTimer03"
  254. };
  255. /* Definitions for myTimer04 */
  256. osTimerId_t myTimer04Handle;
  257. const osTimerAttr_t myTimer04_attributes = {
  258. .name = "myTimer04"
  259. };
  260. /* Definitions for myTimer05 */
  261. osTimerId_t myTimer05Handle;
  262. const osTimerAttr_t myTimer05_attributes = {
  263. .name = "myTimer05"
  264. };
  265. /* Definitions for myTimer06 */
  266. osTimerId_t myTimer06Handle;
  267. const osTimerAttr_t myTimer06_attributes = {
  268. .name = "myTimer06"
  269. };
  270. /* Definitions for myTimer07 */
  271. osTimerId_t myTimer07Handle;
  272. const osTimerAttr_t myTimer07_attributes = {
  273. .name = "myTimer07"
  274. };
  275. /* Definitions for myTimer08 */
  276. osTimerId_t myTimer08Handle;
  277. const osTimerAttr_t myTimer08_attributes = {
  278. .name = "myTimer08"
  279. };
  280. /* Definitions for myTimer09 */
  281. osTimerId_t myTimer09Handle;
  282. const osTimerAttr_t myTimer09_attributes = {
  283. .name = "myTimer09"
  284. };
  285. /* Definitions for myTimer10 */
  286. osTimerId_t myTimer10Handle;
  287. const osTimerAttr_t myTimer10_attributes = {
  288. .name = "myTimer10"
  289. };
  290. /* Definitions for myMutex01 */
  291. osMutexId_t myMutex01Handle;
  292. const osMutexAttr_t myMutex01_attributes = {
  293. .name = "myMutex01"
  294. };
  295. /* Definitions for myMutex02 */
  296. osMutexId_t myMutex02Handle;
  297. const osMutexAttr_t myMutex02_attributes = {
  298. .name = "myMutex02"
  299. };
  300. /* Definitions for myMutex03 */
  301. osMutexId_t myMutex03Handle;
  302. const osMutexAttr_t myMutex03_attributes = {
  303. .name = "myMutex03"
  304. };
  305. /* Definitions for myMutex04 */
  306. osMutexId_t myMutex04Handle;
  307. const osMutexAttr_t myMutex04_attributes = {
  308. .name = "myMutex04"
  309. };
  310. /* Definitions for myMutex05 */
  311. osMutexId_t myMutex05Handle;
  312. const osMutexAttr_t myMutex05_attributes = {
  313. .name = "myMutex05"
  314. };
  315. /* Definitions for myMutex06 */
  316. osMutexId_t myMutex06Handle;
  317. const osMutexAttr_t myMutex06_attributes = {
  318. .name = "myMutex06"
  319. };
  320. /* Definitions for myMutex07 */
  321. osMutexId_t myMutex07Handle;
  322. const osMutexAttr_t myMutex07_attributes = {
  323. .name = "myMutex07"
  324. };
  325. /* Definitions for myMutex08 */
  326. osMutexId_t myMutex08Handle;
  327. const osMutexAttr_t myMutex08_attributes = {
  328. .name = "myMutex08"
  329. };
  330. /* Definitions for myRecursiveMutex01 */
  331. osMutexId_t myRecursiveMutex01Handle;
  332. const osMutexAttr_t myRecursiveMutex01_attributes = {
  333. .name = "myRecursiveMutex01",
  334. .attr_bits = osMutexRecursive,
  335. };
  336. /* Definitions for myRecursiveMutex02 */
  337. osMutexId_t myRecursiveMutex02Handle;
  338. const osMutexAttr_t myRecursiveMutex02_attributes = {
  339. .name = "myRecursiveMutex02",
  340. .attr_bits = osMutexRecursive,
  341. };
  342. /* Definitions for myRecursiveMutex03 */
  343. osMutexId_t myRecursiveMutex03Handle;
  344. const osMutexAttr_t myRecursiveMutex03_attributes = {
  345. .name = "myRecursiveMutex03",
  346. .attr_bits = osMutexRecursive,
  347. };
  348. /* Definitions for myRecursiveMutex04 */
  349. osMutexId_t myRecursiveMutex04Handle;
  350. const osMutexAttr_t myRecursiveMutex04_attributes = {
  351. .name = "myRecursiveMutex04",
  352. .attr_bits = osMutexRecursive,
  353. };
  354. /* Definitions for myBinarySem01 */
  355. osSemaphoreId_t myBinarySem01Handle;
  356. const osSemaphoreAttr_t myBinarySem01_attributes = {
  357. .name = "myBinarySem01"
  358. };
  359. /* Definitions for myBinarySem02 */
  360. osSemaphoreId_t myBinarySem02Handle;
  361. const osSemaphoreAttr_t myBinarySem02_attributes = {
  362. .name = "myBinarySem02"
  363. };
  364. /* Definitions for myBinarySem03 */
  365. osSemaphoreId_t myBinarySem03Handle;
  366. const osSemaphoreAttr_t myBinarySem03_attributes = {
  367. .name = "myBinarySem03"
  368. };
  369. /* Definitions for myBinarySem04 */
  370. osSemaphoreId_t myBinarySem04Handle;
  371. const osSemaphoreAttr_t myBinarySem04_attributes = {
  372. .name = "myBinarySem04"
  373. };
  374. /* Definitions for myBinarySem05 */
  375. osSemaphoreId_t myBinarySem05Handle;
  376. const osSemaphoreAttr_t myBinarySem05_attributes = {
  377. .name = "myBinarySem05"
  378. };
  379. /* Definitions for myBinarySem06 */
  380. osSemaphoreId_t myBinarySem06Handle;
  381. const osSemaphoreAttr_t myBinarySem06_attributes = {
  382. .name = "myBinarySem06"
  383. };
  384. /* Definitions for myBinarySem07 */
  385. osSemaphoreId_t myBinarySem07Handle;
  386. const osSemaphoreAttr_t myBinarySem07_attributes = {
  387. .name = "myBinarySem07"
  388. };
  389. /* Definitions for myBinarySem08 */
  390. osSemaphoreId_t myBinarySem08Handle;
  391. const osSemaphoreAttr_t myBinarySem08_attributes = {
  392. .name = "myBinarySem08"
  393. };
  394. /* Definitions for myCountingSem01 */
  395. osSemaphoreId_t myCountingSem01Handle;
  396. const osSemaphoreAttr_t myCountingSem01_attributes = {
  397. .name = "myCountingSem01"
  398. };
  399. /* Definitions for myCountingSem02 */
  400. osSemaphoreId_t myCountingSem02Handle;
  401. const osSemaphoreAttr_t myCountingSem02_attributes = {
  402. .name = "myCountingSem02"
  403. };
  404. /* Definitions for myCountingSem03 */
  405. osSemaphoreId_t myCountingSem03Handle;
  406. const osSemaphoreAttr_t myCountingSem03_attributes = {
  407. .name = "myCountingSem03"
  408. };
  409. /* Definitions for myCountingSem04 */
  410. osSemaphoreId_t myCountingSem04Handle;
  411. const osSemaphoreAttr_t myCountingSem04_attributes = {
  412. .name = "myCountingSem04"
  413. };
  414. /* Definitions for myEvent01 */
  415. osEventFlagsId_t myEvent01Handle;
  416. const osEventFlagsAttr_t myEvent01_attributes = {
  417. .name = "myEvent01"
  418. };
  419. /* Definitions for myEvent02 */
  420. osEventFlagsId_t myEvent02Handle;
  421. const osEventFlagsAttr_t myEvent02_attributes = {
  422. .name = "myEvent02"
  423. };
  424. /* Definitions for myEvent03 */
  425. osEventFlagsId_t myEvent03Handle;
  426. const osEventFlagsAttr_t myEvent03_attributes = {
  427. .name = "myEvent03"
  428. };
  429. /* Definitions for myEvent04 */
  430. osEventFlagsId_t myEvent04Handle;
  431. const osEventFlagsAttr_t myEvent04_attributes = {
  432. .name = "myEvent04"
  433. };
  434. /* Definitions for myEvent05 */
  435. osEventFlagsId_t myEvent05Handle;
  436. const osEventFlagsAttr_t myEvent05_attributes = {
  437. .name = "myEvent05"
  438. };
  439. /* Definitions for myEvent06 */
  440. osEventFlagsId_t myEvent06Handle;
  441. const osEventFlagsAttr_t myEvent06_attributes = {
  442. .name = "myEvent06"
  443. };
  444. /* Definitions for myEvent07 */
  445. osEventFlagsId_t myEvent07Handle;
  446. const osEventFlagsAttr_t myEvent07_attributes = {
  447. .name = "myEvent07"
  448. };
  449. /* Definitions for myEvent08 */
  450. osEventFlagsId_t myEvent08Handle;
  451. const osEventFlagsAttr_t myEvent08_attributes = {
  452. .name = "myEvent08"
  453. };
  454. /* USER CODE BEGIN PV */
  455. /* USER CODE END PV */
  456. /* Private function prototypes -----------------------------------------------*/
  457. void SystemClock_Config(void);
  458. static void MX_GPIO_Init(void);
  459. static void MX_DMA_Init(void);
  460. static void MX_USART1_UART_Init(void);
  461. static void MX_UART5_Init(void);
  462. static void MX_USART2_UART_Init(void);
  463. static void MX_USART3_UART_Init(void);
  464. static void MX_CRC_Init(void);
  465. static void MX_DAC_Init(void);
  466. static void MX_TIM1_Init(void);
  467. static void MX_TIM4_Init(void);
  468. void StartDefaultTask(void *argument);
  469. void StartTask02(void *argument);
  470. void StartTask03(void *argument);
  471. void StartTask04(void *argument);
  472. void StartTask05(void *argument);
  473. void StartTask06(void *argument);
  474. void StartTask07(void *argument);
  475. void StartTask08(void *argument);
  476. void StartTask09(void *argument);
  477. void StartTask10(void *argument);
  478. void StartTask11(void *argument);
  479. void StartTask12(void *argument);
  480. void Callback01(void *argument);
  481. void Callback02(void *argument);
  482. void Callback03(void *argument);
  483. void Callback04(void *argument);
  484. void Callback05(void *argument);
  485. void Callback06(void *argument);
  486. void Callback07(void *argument);
  487. void Callback08(void *argument);
  488. void Callback09(void *argument);
  489. void Callback010(void *argument);
  490. void Cang_Init(void);
  491. static void MX_NVIC_Init(void);
  492. // for debug,将信息输出到指定的uart总线上
  493. static void DumpMsg(uint8_t *msg)
  494. {
  495. HAL_GPIO_WritePin(GPIOA,con03_uart2_kongzhiqi_Pin,GPIO_PIN_RESET);
  496. delay_sys_us(80);
  497. HAL_UART_Transmit_IT(&huart2,msg,strlen(msg));
  498. while (huart2.gState == HAL_UART_STATE_BUSY_TX)
  499. {
  500. osDelay(1);
  501. }
  502. delay_sys_us(80);
  503. HAL_GPIO_WritePin(GPIOA,con03_uart2_kongzhiqi_Pin,GPIO_PIN_SET);
  504. }
  505. #include <stdarg.h>
  506. void printx(const char *log,...)
  507. {
  508. osMutexAcquire(myMutex01Handle, portMAX_DELAY);
  509. va_list ap;
  510. va_start(ap,log);
  511. vsnprintf(bufMain,sizeof(bufMain),log,ap);
  512. va_end(ap);
  513. DumpMsg(bufMain);
  514. osMutexRelease(myMutex01Handle);
  515. }
  516. /* USER CODE BEGIN PFP */
  517. void Flash_ReadBytes(uint16_t* sorBuf,uint32_t FlashAddr,uint16_t len)
  518. {
  519. uint16_t* p = sorBuf;
  520. uint8_t i = 0,j = 0;
  521. uint32_t addr = FlashAddr;
  522. while(len--)
  523. {
  524. i = *(uint32_t*)addr++;
  525. j = *(uint32_t*)addr++;
  526. *p++ = j<<8|i;
  527. }
  528. }
  529. uint16_t Flashbuf[2048]__attribute__ ((at(0X20001000)));// {0};
  530. //uint8_t UART_RX_BUF[1024] __attribute__ ((at(0X20001000)));
  531. void Flash_WriteBytes(uint16_t* sorBuf,uint32_t FlashAddr,uint16_t len)
  532. {
  533. uint32_t Offset_ADDR = 0,Page_StartAddr = 0,i = 0;
  534. Offset_ADDR = FlashAddr%0x800;
  535. Page_StartAddr = FlashAddr - Offset_ADDR;
  536. //设置PageError
  537. uint32_t PageError = 0;
  538. FLASH_EraseInitTypeDef f;
  539. f.TypeErase = FLASH_TYPEERASE_PAGES;
  540. __nop();
  541. f.PageAddress =Page_StartAddr;
  542. f.NbPages = 1;
  543. Flash_ReadBytes(Flashbuf,Page_StartAddr,0x400);
  544. for(i = 0;i<len;i++)
  545. Flashbuf[Offset_ADDR/2+i] = sorBuf[i];
  546. //1、解锁FLASH
  547. HAL_FLASH_Unlock();
  548. __nop();
  549. //2、擦除FLASH
  550. //初始化FLASH_EraseInitTypeDef
  551. //调用擦除函数
  552. HAL_FLASHEx_Erase(&f, &PageError);
  553. __nop();
  554. //3、对FLASH烧写
  555. for(uint16_t i = 0;i< 0x400 ;i++)
  556. {
  557. HAL_FLASH_Program(FLASH_TYPEPROGRAM_HALFWORD , Page_StartAddr + (i * 2), Flashbuf[i]);
  558. }
  559. //4、锁住FLASH
  560. HAL_FLASH_Lock();
  561. }
  562. typedef union{
  563. float Ldcal_zero_temp; //青鸟贵和磁致伸缩液位温度一体传感器
  564. uint8_t arr[4];
  565. }Hex_to_float1;
  566. Hex_to_float1 hex_to_float1;
  567. void Cang_Init(void)
  568. {
  569. Cang_Inf* pcang = &cang_inf;
  570. RKG_Inf* prkg = rkg_inf;
  571. XYF_Inf* pxyf = xyf_inf;
  572. HDF_Inf* phdf = hdf_inf;
  573. Angle_Inf* pangle = &angle_inf;
  574. Level_Inf* plevel = level_inf;
  575. TEM_Inf* ptem = tem_inf;
  576. uint16_t Flash_buff[64] = {0};
  577. uint16_t i = 0;
  578. Flash_ReadBytes(Flash_buff,ADDR_CANG_NUM,6);
  579. if(Flash_buff[0] == 0xffff)
  580. {
  581. Flash_WriteBytes(Volume_1cang,ADD_CANG1_TABLE,200);
  582. Flash_WriteBytes(Volume_2cang,ADD_CANG2_TABLE,200);
  583. Flash_WriteBytes(Volume_3cang,ADD_CANG3_TABLE,200);
  584. Flash_WriteBytes(Volume_4cang,ADD_CANG4_TABLE,200);
  585. pcang->Cang_Num = 3; //默认三仓
  586. }
  587. else
  588. pcang->Cang_Num = Flash_buff[0];
  589. if(Flash_buff[1] == 0xffff)
  590. {
  591. i = 0;
  592. while(i < pcang->Cang_Num)
  593. {
  594. pcang->RKG_Num[i] = 1; //默认每仓1人孔大盖
  595. pcang->RKG_DG = 1; //默认有大盖
  596. i++;
  597. }
  598. }
  599. else
  600. {
  601. i = 0;
  602. while(i <pcang->Cang_Num)
  603. {
  604. pcang->RKG_Num[i] = Flash_buff[1]; //默认每仓1人孔盖
  605. pcang->RKG_DG = Flash_buff[1];
  606. i++;
  607. }
  608. }
  609. if(Flash_buff[2] == 0xffff)
  610. pcang->RKG_XG = 0; //默认无人孔小盖
  611. else
  612. pcang->RKG_XG = Flash_buff[2];
  613. if(Flash_buff[3] == 0xffff)
  614. {
  615. i = 0;
  616. while(i <pcang->Cang_Num)
  617. {
  618. pcang->XYF_INSTALL = 1; // 默认有卸油阀SLM
  619. pcang->XYF_Num[i] = 1; //默认每仓1卸油阀
  620. i++;
  621. }
  622. }
  623. else
  624. {
  625. i = 0;
  626. while(i <pcang->Cang_Num)
  627. {
  628. pcang->XYF_INSTALL = 1; // 默认有卸油阀SLM
  629. pcang->XYF_Num[i] = Flash_buff[3]; i++;
  630. }
  631. }
  632. if(Flash_buff[4] == 0xffff)
  633. {
  634. i = 0;
  635. while(i <pcang->Cang_Num)
  636. {
  637. pcang->HDF_INSTALL = 1;
  638. pcang->HDF_Num[i] = 1; //默认每仓1海底阀
  639. i++;
  640. }
  641. }
  642. else
  643. {
  644. i = 0;
  645. while(i <pcang->Cang_Num)
  646. {
  647. pcang->HDF_INSTALL = 1;//slm
  648. pcang->HDF_Num[i] = Flash_buff[4];
  649. i++;
  650. }
  651. }
  652. Flash_ReadBytes(Flash_buff,ADDR_RKGSENSOR_TYPE,1);
  653. if(Flash_buff[0] == 0xffff)
  654. pcang->RKG_Type = 1; //默认人孔盖角度传感器 1磁电编码传感器
  655. else
  656. pcang->RKG_Type = Flash_buff[0];
  657. Flash_ReadBytes(Flash_buff,ADDR_XYFSENSOR_TYPE,1);
  658. if(Flash_buff[0] == 0xffff)
  659. pcang->XYF_Type = 0; //默认卸油阀霍尔二合一
  660. else
  661. pcang->XYF_Type = Flash_buff[0];
  662. Flash_ReadBytes(Flash_buff,ADDR_HDFSENSOR_TYPE,1);
  663. if(Flash_buff[0] == 0xffff)
  664. pcang->HDF_Type = 1; //默认底阀监测器 1智能底阀
  665. else
  666. pcang->HDF_Type = Flash_buff[0];
  667. Flash_ReadBytes(Flash_buff,ADDR_RKG_NUM,8); //检测是否对阀门种类及数量进行配置
  668. for(i = 0;i < 8;i++)
  669. {
  670. if((Flash_buff[i] < 8))
  671. pcang->RKG_Num[i] = Flash_buff[i];
  672. else
  673. pcang->RKG_Num[i] = 1; //默认每仓1人孔阀
  674. }
  675. Flash_ReadBytes(Flash_buff,ADDR_XYF_NUM,8);
  676. for(i = 0;i < 8;i++)
  677. {
  678. if((Flash_buff[i] < 8))
  679. pcang->XYF_Num[i] = Flash_buff[i];
  680. else
  681. pcang->XYF_Num[i] = 1; //默认每仓1卸油阀 slm
  682. }
  683. Flash_ReadBytes(Flash_buff,ADDR_HDF_NUM,8);
  684. for(i = 0;i < 8;i++)
  685. {
  686. if((Flash_buff[i] < 8))
  687. pcang->HDF_Num[i] = Flash_buff[i];
  688. else
  689. pcang->HDF_Num[i] = 1; //默认每仓1海底阀 slm
  690. }
  691. Flash_ReadBytes(Flash_buff,ADDR_YQHS_TYPE,1);
  692. if(Flash_buff[0] == 0xffff)
  693. pcang->YQHS = 0; //默认无油气回收 slm
  694. else
  695. pcang->YQHS = Flash_buff[0];
  696. Flash_ReadBytes(Flash_buff,ADDR_LEVEL_TYPE,1);
  697. if(Flash_buff[0] == 0xffff)
  698. pcang->Level = 2; //默认磁致伸缩液位传感器 slm
  699. else
  700. pcang->Level = Flash_buff[0];
  701. Flash_ReadBytes(Flash_buff,ADDR_SENSOR_BUS_MAX_RETRY,1);
  702. if(Flash_buff[0] == 0xffff)
  703. pcang->sensorBusMaxReTry = 3;
  704. else
  705. pcang->sensorBusMaxReTry = Flash_buff[0];
  706. if(pcang->sensorBusMaxReTry > 1000) pcang->sensorBusMaxReTry = 1000; // 设置硬上限
  707. Flash_ReadBytes(Flash_buff,CANG1_LEVEL_CAL,8);
  708. if(Flash_buff[0] == 0xffff)
  709. {
  710. for(i=0;i<pcang->Cang_Num;++i)
  711. {
  712. plevel[i+1].Level_Cal_zero = 0;
  713. }
  714. }
  715. else
  716. {
  717. for (i = 0; i < pcang->Cang_Num; ++i)
  718. {
  719. hex_to_float1.arr[3] = (uint8_t)(Flash_buff[0+2*i] >> 8);
  720. hex_to_float1.arr[2] = (uint8_t)(Flash_buff[0+2*i] & 0xFF); // Flash_buff[3];
  721. hex_to_float1.arr[1] = (uint8_t)(Flash_buff[1+2*i] >> 8);
  722. hex_to_float1.arr[0] = (uint8_t)(Flash_buff[1+2*i] & 0xFF);
  723. plevel[i + 1].Level_Cal_zero = hex_to_float1.Ldcal_zero_temp;
  724. }
  725. }
  726. Flash_ReadBytes(Flash_buff,ADDR_TEM_TYPE,1);
  727. if(Flash_buff[0] == 0xffff)
  728. pcang->Temperture = 1; //默认无温度传感器
  729. else
  730. pcang->Temperture = Flash_buff[0];
  731. Flash_ReadBytes(Flash_buff,ADDR_ANGLE_TYPE,1);
  732. if(Flash_buff[0] == 0xffff)
  733. pcang->Angle = 1; //默认无姿态传感器
  734. else
  735. pcang->Angle = Flash_buff[0];
  736. Flash_ReadBytes(Flash_buff,ADDR_SDATEJUDGE_NUM,1);
  737. if(Flash_buff[0] == 0xffff)
  738. {
  739. for (i = 0; i < 8; i++)
  740. {
  741. prkg[i].RKG_StateKeepNum = 5; //默认人孔盖角度传感器
  742. pxyf[i].XYF_StateKeepNum = 5;
  743. }
  744. phdf->HDF_StateKeepNum = 5;
  745. pangle->Angle_StateKeepNum = 5;
  746. plevel->Level_StateKeepNum = 5;
  747. ptem->TEM_StateKeepNum = 5;
  748. }
  749. else
  750. {
  751. for (i = 0; i < 8; i++)
  752. {
  753. prkg[i].RKG_StateKeepNum = Flash_buff[0];
  754. pxyf[i].XYF_StateKeepNum = Flash_buff[0];
  755. }
  756. pxyf->XYF_StateKeepNum = Flash_buff[0];
  757. phdf->HDF_StateKeepNum = Flash_buff[0];
  758. __NOP();
  759. pangle->Angle_StateKeepNum = Flash_buff[0];
  760. plevel->Level_StateKeepNum = Flash_buff[0];
  761. ptem->TEM_StateKeepNum = Flash_buff[0];
  762. }
  763. }
  764. /* USER CODE END PFP */
  765. /* Private user code ---------------------------------------------------------*/
  766. /* USER CODE BEGIN 0 */
  767. /* USER CODE END 0 */
  768. /**4
  769. * @brief The application entry point.
  770. * @retval int
  771. */
  772. int main(void)
  773. {
  774. /* USER CODE BEGIN 1 */
  775. GPIO_InitTypeDef GPIO_InitStruct = {0};
  776. int spr000;
  777. /* USER CODE END 1 */
  778. #if IR_ROM1 == 0x08000000
  779. Start_BootLoader();
  780. #else
  781. SCB->VTOR = 0x08020000;
  782. __set_PRIMASK(0);
  783. #endif
  784. /* MCU Configuration--------------------------------------------------------*/
  785. /* Reset of all peripherals, Initializes the Flash interface and the Systick. */
  786. HAL_Init();
  787. /* USER CODE BEGIN Init */
  788. Cang_Init(); //应用程序初始化函数
  789. RKG_Init();
  790. XYF_Init();
  791. BGY_Init();
  792. /* USER CODE END Init */
  793. /* Configure the system clock */
  794. SystemClock_Config();
  795. /* USER CODE BEGIN SysInit */
  796. /* USER CODE END SysInit */
  797. /* Initialize all configured peripherals */
  798. MX_GPIO_Init();
  799. MX_DMA_Init();
  800. MX_USART1_UART_Init();
  801. MX_UART5_Init();
  802. MX_USART2_UART_Init();
  803. MX_USART3_UART_Init();
  804. MX_CRC_Init();
  805. MX_DAC_Init();
  806. MX_TIM1_Init();
  807. MX_TIM4_Init();
  808. /* Initialize interrupts */
  809. MX_NVIC_Init();
  810. /* USER CODE BEGIN 2 */
  811. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//切换为接收模式
  812. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);//切换为接收模式
  813. HAL_GPIO_WritePin(con03_uart2_kongzhiqi_GPIO_Port,con03_uart2_kongzhiqi_Pin,GPIO_PIN_SET);//切换为接收模式
  814. //看门狗重新根据宏定义初始化
  815. GPIO_InitStruct.Pin = WDI_sp706_kanmemgou_Pin;
  816. if(WatchDogOn)//打开看门狗sp706
  817. //if(1)//打开看门狗sp706
  818. {
  819. //
  820. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  821. }
  822. else
  823. {
  824. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  825. }
  826. GPIO_InitStruct.Pull = GPIO_NOPULL;
  827. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  828. HAL_GPIO_Init(WDI_sp706_kanmemgou_GPIO_Port, &GPIO_InitStruct);
  829. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//切换为发送模式CON=0;//
  830. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//切换为接收模式
  831. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);//切换为接收模式
  832. HAL_GPIO_WritePin(con03_uart2_kongzhiqi_GPIO_Port,con03_uart2_kongzhiqi_Pin,GPIO_PIN_RESET);//切换为接收模式
  833. HAL_Delay(2);
  834. memset(bufMain,0,128);
  835. spr000=sprintf((char*)bufMain,"sysytem reset...%5d, watchDogOn=%d, version:%d",5,WatchDogOn,Version_Soft[7]);
  836. //HAL_UART_Transmit(&huart1,bufMain,32,300);
  837. HAL_UART_Transmit(&huart2,bufMain,spr000,300);
  838. //HAL_UART_Transmit(&huart3,bufMain,32,300);
  839. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//切换为接收模式
  840. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);//切换为接收模式
  841. HAL_GPIO_WritePin(con03_uart2_kongzhiqi_GPIO_Port,con03_uart2_kongzhiqi_Pin,GPIO_PIN_SET);//切换为接收模式
  842. /* USER CODE END 2 */
  843. /* Init scheduler */
  844. osKernelInitialize();
  845. /* Create the mutex(es) */
  846. /* creation of myMutex01 */
  847. myMutex01Handle = osMutexNew(&myMutex01_attributes);
  848. /* creation of myMutex02 */
  849. myMutex02Handle = osMutexNew(&myMutex02_attributes);
  850. /* creation of myMutex03 */
  851. myMutex03Handle = osMutexNew(&myMutex03_attributes);
  852. /* creation of myMutex04 */
  853. myMutex04Handle = osMutexNew(&myMutex04_attributes);
  854. /* creation of myMutex05 */
  855. myMutex05Handle = osMutexNew(&myMutex05_attributes);
  856. /* creation of myMutex06 */
  857. myMutex06Handle = osMutexNew(&myMutex06_attributes);
  858. /* creation of myMutex07 */
  859. myMutex07Handle = osMutexNew(&myMutex07_attributes);
  860. /* creation of myMutex08 */
  861. myMutex08Handle = osMutexNew(&myMutex08_attributes);
  862. /* Create the recursive mutex(es) */
  863. /* creation of myRecursiveMutex01 */
  864. myRecursiveMutex01Handle = osMutexNew(&myRecursiveMutex01_attributes);
  865. /* creation of myRecursiveMutex02 */
  866. myRecursiveMutex02Handle = osMutexNew(&myRecursiveMutex02_attributes);
  867. /* creation of myRecursiveMutex03 */
  868. myRecursiveMutex03Handle = osMutexNew(&myRecursiveMutex03_attributes);
  869. /* creation of myRecursiveMutex04 */
  870. myRecursiveMutex04Handle = osMutexNew(&myRecursiveMutex04_attributes);
  871. /* USER CODE BEGIN RTOS_MUTEX */
  872. /* add mutexes, ... */
  873. /* USER CODE END RTOS_MUTEX */
  874. /* Create the semaphores(s) */
  875. /* creation of myBinarySem01 */
  876. myBinarySem01Handle = osSemaphoreNew(1, 1, &myBinarySem01_attributes);
  877. /* creation of myBinarySem02 */
  878. myBinarySem02Handle = osSemaphoreNew(1, 1, &myBinarySem02_attributes);
  879. /* creation of myBinarySem03 */
  880. myBinarySem03Handle = osSemaphoreNew(1, 1, &myBinarySem03_attributes);
  881. /* creation of myBinarySem04 */
  882. myBinarySem04Handle = osSemaphoreNew(1, 1, &myBinarySem04_attributes);
  883. /* creation of myBinarySem05 */
  884. myBinarySem05Handle = osSemaphoreNew(1, 1, &myBinarySem05_attributes);
  885. /* creation of myBinarySem06 */
  886. myBinarySem06Handle = osSemaphoreNew(1, 1, &myBinarySem06_attributes);
  887. /* creation of myBinarySem07 */
  888. myBinarySem07Handle = osSemaphoreNew(1, 1, &myBinarySem07_attributes);
  889. /* creation of myBinarySem08 */
  890. myBinarySem08Handle = osSemaphoreNew(1, 1, &myBinarySem08_attributes);
  891. /* creation of myCountingSem01 */
  892. myCountingSem01Handle = osSemaphoreNew(2, 2, &myCountingSem01_attributes);
  893. /* creation of myCountingSem02 */
  894. myCountingSem02Handle = osSemaphoreNew(2, 2, &myCountingSem02_attributes);
  895. /* creation of myCountingSem03 */
  896. myCountingSem03Handle = osSemaphoreNew(2, 2, &myCountingSem03_attributes);
  897. /* creation of myCountingSem04 */
  898. myCountingSem04Handle = osSemaphoreNew(2, 2, &myCountingSem04_attributes);
  899. /* USER CODE BEGIN RTOS_SEMAPHORES */
  900. /* add semaphores, ... */
  901. /* USER CODE END RTOS_SEMAPHORES */
  902. /* Create the timer(s) */
  903. /* creation of myTimer01 */
  904. myTimer01Handle = osTimerNew(Callback01, osTimerPeriodic, NULL, &myTimer01_attributes);
  905. /* creation of myTimer02 */
  906. myTimer02Handle = osTimerNew(Callback02, osTimerPeriodic, NULL, &myTimer02_attributes);
  907. /* creation of myTimer03 */
  908. myTimer03Handle = osTimerNew(Callback03, osTimerPeriodic, NULL, &myTimer03_attributes);
  909. /* creation of myTimer04 */
  910. myTimer04Handle = osTimerNew(Callback04, osTimerPeriodic, NULL, &myTimer04_attributes);
  911. /* creation of myTimer05 */
  912. myTimer05Handle = osTimerNew(Callback05, osTimerPeriodic, NULL, &myTimer05_attributes);
  913. /* creation of myTimer06 */
  914. myTimer06Handle = osTimerNew(Callback06, osTimerPeriodic, NULL, &myTimer06_attributes);
  915. /* creation of myTimer07 */
  916. myTimer07Handle = osTimerNew(Callback07, osTimerPeriodic, NULL, &myTimer07_attributes);
  917. /* creation of myTimer08 */
  918. myTimer08Handle = osTimerNew(Callback08, osTimerPeriodic, NULL, &myTimer08_attributes);
  919. /* creation of myTimer09 */
  920. myTimer09Handle = osTimerNew(Callback09, osTimerPeriodic, NULL, &myTimer09_attributes);
  921. /* creation of myTimer10 */
  922. myTimer10Handle = osTimerNew(Callback010, osTimerPeriodic, NULL, &myTimer10_attributes);
  923. /* USER CODE BEGIN RTOS_TIMERS */
  924. /* start timers, add new ones, ... */
  925. /* USER CODE END RTOS_TIMERS */
  926. /* Create the queue(s) */
  927. /* creation of myQueue01 */
  928. myQueue01Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue01_attributes);
  929. /* creation of myQueue02 */
  930. myQueue02Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue02_attributes);
  931. /* creation of myQueue03 */
  932. myQueue03Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue03_attributes);
  933. /* creation of myQueue04 */
  934. myQueue04Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue04_attributes);
  935. /* creation of myQueue05 */
  936. myQueue05Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue05_attributes);
  937. /* creation of myQueue06 */
  938. myQueue06Handle = osMessageQueueNew (16, sizeof(uint16_t), &myQueue06_attributes);
  939. /* USER CODE BEGIN RTOS_QUEUES */
  940. /* add queues, ... */
  941. /* USER CODE END RTOS_QUEUES */
  942. /* Create the thread(s) */
  943. /* creation of defaultTask */
  944. defaultTaskHandle = osThreadNew(StartDefaultTask, NULL, &defaultTask_attributes);
  945. /* creation of myTask02 */
  946. myTask02Handle = osThreadNew(StartTask02, NULL, &myTask02_attributes);
  947. /* creation of myTask03 */
  948. myTask03Handle = osThreadNew(StartTask03, NULL, &myTask03_attributes);
  949. /* creation of myTask04 */
  950. myTask04Handle = osThreadNew(StartTask04, NULL, &myTask04_attributes);
  951. /* creation of myTask05 */
  952. myTask05Handle = osThreadNew(StartTask05, NULL, &myTask05_attributes);
  953. /* creation of myTask06 */
  954. myTask06Handle = osThreadNew(StartTask06, NULL, &myTask06_attributes);
  955. /* creation of myTask07 */
  956. myTask07Handle = osThreadNew(StartTask07, NULL, &myTask07_attributes);
  957. /* creation of myTask08 */
  958. myTask08Handle = osThreadNew(StartTask08, NULL, &myTask08_attributes);
  959. /* creation of myTask09 */
  960. myTask09Handle = osThreadNew(StartTask09, NULL, &myTask09_attributes);
  961. /* creation of myTask10 */
  962. myTask10Handle = osThreadNew(StartTask10, NULL, &myTask10_attributes);
  963. /* creation of myTask11 */
  964. myTask11Handle = osThreadNew(StartTask11, NULL, &myTask11_attributes);
  965. /* creation of myTask12 */
  966. myTask12Handle = osThreadNew(StartTask12, NULL, &myTask12_attributes);
  967. /* USER CODE BEGIN RTOS_THREADS */
  968. /* add threads, ... */
  969. /* USER CODE END RTOS_THREADS */
  970. /* creation of myEvent01 */
  971. myEvent01Handle = osEventFlagsNew(&myEvent01_attributes);
  972. /* creation of myEvent02 */
  973. myEvent02Handle = osEventFlagsNew(&myEvent02_attributes);
  974. /* creation of myEvent03 */
  975. myEvent03Handle = osEventFlagsNew(&myEvent03_attributes);
  976. /* creation of myEvent04 */
  977. myEvent04Handle = osEventFlagsNew(&myEvent04_attributes);
  978. /* creation of myEvent05 */
  979. myEvent05Handle = osEventFlagsNew(&myEvent05_attributes);
  980. /* creation of myEvent06 */
  981. myEvent06Handle = osEventFlagsNew(&myEvent06_attributes);
  982. /* creation of myEvent07 */
  983. myEvent07Handle = osEventFlagsNew(&myEvent07_attributes);
  984. /* creation of myEvent08 */
  985. myEvent08Handle = osEventFlagsNew(&myEvent08_attributes);
  986. /* USER CODE BEGIN RTOS_EVENTS */
  987. /* add events, ... */
  988. /* USER CODE END RTOS_EVENTS */
  989. /* Start scheduler */
  990. osKernelStart();
  991. /* We should never get here as control is now taken by the scheduler */
  992. /* Infinite loop */
  993. /* USER CODE BEGIN WHILE */
  994. while (1)
  995. {
  996. }
  997. /* USER CODE END WHILE */
  998. /* USER CODE BEGIN 3 */
  999. /* USER CODE END 3 */
  1000. }
  1001. /**
  1002. * @brief System Clock Configuration
  1003. * @retval None
  1004. */
  1005. void SystemClock_Config(void)
  1006. {
  1007. RCC_OscInitTypeDef RCC_OscInitStruct = {0};
  1008. RCC_ClkInitTypeDef RCC_ClkInitStruct = {0};
  1009. /** Initializes the RCC Oscillators according to the specified parameters
  1010. * in the RCC_OscInitTypeDef structure.
  1011. */
  1012. RCC_OscInitStruct.OscillatorType = RCC_OSCILLATORTYPE_HSE;
  1013. RCC_OscInitStruct.HSEState = RCC_HSE_ON;
  1014. RCC_OscInitStruct.HSEPredivValue = RCC_HSE_PREDIV_DIV1;
  1015. RCC_OscInitStruct.HSIState = RCC_HSI_ON;
  1016. RCC_OscInitStruct.PLL.PLLState = RCC_PLL_ON;
  1017. RCC_OscInitStruct.PLL.PLLSource = RCC_PLLSOURCE_HSE;
  1018. RCC_OscInitStruct.PLL.PLLMUL = RCC_PLL_MUL9;
  1019. if (HAL_RCC_OscConfig(&RCC_OscInitStruct) != HAL_OK)
  1020. {
  1021. Error_Handler();
  1022. }
  1023. /** Initializes the CPU, AHB and APB buses clocks
  1024. */
  1025. RCC_ClkInitStruct.ClockType = RCC_CLOCKTYPE_HCLK|RCC_CLOCKTYPE_SYSCLK
  1026. |RCC_CLOCKTYPE_PCLK1|RCC_CLOCKTYPE_PCLK2;
  1027. RCC_ClkInitStruct.SYSCLKSource = RCC_SYSCLKSOURCE_PLLCLK;
  1028. RCC_ClkInitStruct.AHBCLKDivider = RCC_SYSCLK_DIV1;
  1029. RCC_ClkInitStruct.APB1CLKDivider = RCC_HCLK_DIV2;
  1030. RCC_ClkInitStruct.APB2CLKDivider = RCC_HCLK_DIV1;
  1031. if (HAL_RCC_ClockConfig(&RCC_ClkInitStruct, FLASH_LATENCY_2) != HAL_OK)
  1032. {
  1033. Error_Handler();
  1034. }
  1035. }
  1036. /**
  1037. * @brief NVIC Configuration.
  1038. * @retval None
  1039. */
  1040. static void MX_NVIC_Init(void)
  1041. {
  1042. /* USART3_IRQn interrupt configuration */
  1043. HAL_NVIC_SetPriority(USART3_IRQn, 5, 0);
  1044. HAL_NVIC_EnableIRQ(USART3_IRQn);
  1045. /* USART1_IRQn interrupt configuration */
  1046. HAL_NVIC_SetPriority(USART1_IRQn, 5, 0);
  1047. HAL_NVIC_EnableIRQ(USART1_IRQn);
  1048. /* USART2_IRQn interrupt configuration */
  1049. HAL_NVIC_SetPriority(USART2_IRQn, 5, 0);
  1050. HAL_NVIC_EnableIRQ(USART2_IRQn);
  1051. /* TIM4_IRQn interrupt configuration */
  1052. HAL_NVIC_SetPriority(TIM4_IRQn, 5, 0);
  1053. HAL_NVIC_EnableIRQ(TIM4_IRQn);
  1054. /* TIM1_UP_IRQn interrupt configuration */
  1055. HAL_NVIC_SetPriority(TIM1_UP_IRQn, 5, 0);
  1056. HAL_NVIC_EnableIRQ(TIM1_UP_IRQn);
  1057. /* DMA1_Channel6_IRQn interrupt configuration */
  1058. HAL_NVIC_SetPriority(DMA1_Channel6_IRQn, 5, 0);
  1059. HAL_NVIC_EnableIRQ(DMA1_Channel6_IRQn);
  1060. /* DMA1_Channel5_IRQn interrupt configuration */
  1061. HAL_NVIC_SetPriority(DMA1_Channel5_IRQn, 5, 0);
  1062. HAL_NVIC_EnableIRQ(DMA1_Channel5_IRQn);
  1063. /* DMA1_Channel3_IRQn interrupt configuration */
  1064. HAL_NVIC_SetPriority(DMA1_Channel3_IRQn, 5, 0);
  1065. HAL_NVIC_EnableIRQ(DMA1_Channel3_IRQn);
  1066. }
  1067. /**
  1068. * @brief CRC Initialization Function
  1069. * @param None
  1070. * @retval None
  1071. */
  1072. static void MX_CRC_Init(void)
  1073. {
  1074. /* USER CODE BEGIN CRC_Init 0 */
  1075. /* USER CODE END CRC_Init 0 */
  1076. /* USER CODE BEGIN CRC_Init 1 */
  1077. /* USER CODE END CRC_Init 1 */
  1078. hcrc.Instance = CRC;
  1079. if (HAL_CRC_Init(&hcrc) != HAL_OK)
  1080. {
  1081. Error_Handler();
  1082. }
  1083. /* USER CODE BEGIN CRC_Init 2 */
  1084. /* USER CODE END CRC_Init 2 */
  1085. }
  1086. /**
  1087. * @brief DAC Initialization Function
  1088. * @param None
  1089. * @retval None
  1090. */
  1091. static void MX_DAC_Init(void)
  1092. {
  1093. /* USER CODE BEGIN DAC_Init 0 */
  1094. /* USER CODE END DAC_Init 0 */
  1095. DAC_ChannelConfTypeDef sConfig = {0};
  1096. /* USER CODE BEGIN DAC_Init 1 */
  1097. /* USER CODE END DAC_Init 1 */
  1098. /** DAC Initialization
  1099. */
  1100. hdac.Instance = DAC;
  1101. if (HAL_DAC_Init(&hdac) != HAL_OK)
  1102. {
  1103. Error_Handler();
  1104. }
  1105. /** DAC channel OUT2 config
  1106. */
  1107. sConfig.DAC_Trigger = DAC_TRIGGER_SOFTWARE;
  1108. sConfig.DAC_OutputBuffer = DAC_OUTPUTBUFFER_ENABLE;
  1109. if (HAL_DAC_ConfigChannel(&hdac, &sConfig, DAC_CHANNEL_2) != HAL_OK)
  1110. {
  1111. Error_Handler();
  1112. }
  1113. /* USER CODE BEGIN DAC_Init 2 */
  1114. /* USER CODE END DAC_Init 2 */
  1115. }
  1116. /**
  1117. * @brief TIM1 Initialization Function
  1118. * @param None
  1119. * @retval None
  1120. */
  1121. static void MX_TIM1_Init(void)
  1122. {
  1123. /* USER CODE BEGIN TIM1_Init 0 */
  1124. /* USER CODE END TIM1_Init 0 */
  1125. TIM_ClockConfigTypeDef sClockSourceConfig = {0};
  1126. TIM_MasterConfigTypeDef sMasterConfig = {0};
  1127. /* USER CODE BEGIN TIM1_Init 1 */
  1128. /* USER CODE END TIM1_Init 1 */
  1129. htim1.Instance = TIM1;
  1130. htim1.Init.Prescaler = 0;
  1131. htim1.Init.CounterMode = TIM_COUNTERMODE_UP;
  1132. htim1.Init.Period = 65535;
  1133. htim1.Init.ClockDivision = TIM_CLOCKDIVISION_DIV4;
  1134. htim1.Init.RepetitionCounter = 0;
  1135. htim1.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
  1136. if (HAL_TIM_Base_Init(&htim1) != HAL_OK)
  1137. {
  1138. Error_Handler();
  1139. }
  1140. sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
  1141. if (HAL_TIM_ConfigClockSource(&htim1, &sClockSourceConfig) != HAL_OK)
  1142. {
  1143. Error_Handler();
  1144. }
  1145. sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
  1146. sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
  1147. if (HAL_TIMEx_MasterConfigSynchronization(&htim1, &sMasterConfig) != HAL_OK)
  1148. {
  1149. Error_Handler();
  1150. }
  1151. /* USER CODE BEGIN TIM1_Init 2 */
  1152. /* USER CODE END TIM1_Init 2 */
  1153. }
  1154. /**
  1155. * @brief TIM4 Initialization Function
  1156. * @param None
  1157. * @retval None
  1158. */
  1159. static void MX_TIM4_Init(void)
  1160. {
  1161. /* USER CODE BEGIN TIM4_Init 0 */
  1162. /* USER CODE END TIM4_Init 0 */
  1163. TIM_ClockConfigTypeDef sClockSourceConfig = {0};
  1164. TIM_MasterConfigTypeDef sMasterConfig = {0};
  1165. /* USER CODE BEGIN TIM4_Init 1 */
  1166. /* USER CODE END TIM4_Init 1 */
  1167. htim4.Instance = TIM4;
  1168. htim4.Init.Prescaler = 0;
  1169. htim4.Init.CounterMode = TIM_COUNTERMODE_UP;
  1170. htim4.Init.Period = 65535;
  1171. htim4.Init.ClockDivision = TIM_CLOCKDIVISION_DIV1;
  1172. htim4.Init.AutoReloadPreload = TIM_AUTORELOAD_PRELOAD_DISABLE;
  1173. if (HAL_TIM_Base_Init(&htim4) != HAL_OK)
  1174. {
  1175. Error_Handler();
  1176. }
  1177. sClockSourceConfig.ClockSource = TIM_CLOCKSOURCE_INTERNAL;
  1178. if (HAL_TIM_ConfigClockSource(&htim4, &sClockSourceConfig) != HAL_OK)
  1179. {
  1180. Error_Handler();
  1181. }
  1182. sMasterConfig.MasterOutputTrigger = TIM_TRGO_RESET;
  1183. sMasterConfig.MasterSlaveMode = TIM_MASTERSLAVEMODE_DISABLE;
  1184. if (HAL_TIMEx_MasterConfigSynchronization(&htim4, &sMasterConfig) != HAL_OK)
  1185. {
  1186. Error_Handler();
  1187. }
  1188. /* USER CODE BEGIN TIM4_Init 2 */
  1189. /* USER CODE END TIM4_Init 2 */
  1190. }
  1191. /**
  1192. * @brief UART5 Initialization Function
  1193. * @param None
  1194. * @retval None
  1195. */
  1196. static void MX_UART5_Init(void)
  1197. {
  1198. /* USER CODE BEGIN UART5_Init 0 */
  1199. /* USER CODE END UART5_Init 0 */
  1200. /* USER CODE BEGIN UART5_Init 1 */
  1201. /* USER CODE END UART5_Init 1 */
  1202. huart5.Instance = UART5;
  1203. huart5.Init.BaudRate = 115200;
  1204. huart5.Init.WordLength = UART_WORDLENGTH_8B;
  1205. huart5.Init.StopBits = UART_STOPBITS_1;
  1206. huart5.Init.Parity = UART_PARITY_NONE;
  1207. huart5.Init.Mode = UART_MODE_TX_RX;
  1208. huart5.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  1209. huart5.Init.OverSampling = UART_OVERSAMPLING_16;
  1210. if (HAL_UART_Init(&huart5) != HAL_OK)
  1211. {
  1212. Error_Handler();
  1213. }
  1214. /* USER CODE BEGIN UART5_Init 2 */
  1215. /* USER CODE END UART5_Init 2 */
  1216. }
  1217. /**
  1218. * @brief USART1 Initialization Function
  1219. * @param None
  1220. * @retval None
  1221. */
  1222. static void MX_USART1_UART_Init(void)
  1223. {
  1224. /* USER CODE BEGIN USART1_Init 0 */
  1225. extern uint8_t USART1_RX_BUF[Uart1_BUF_SIZE];
  1226. /* USER CODE END USART1_Init 0 */
  1227. /* USER CODE BEGIN USART1_Init 1 */
  1228. /* USER CODE END USART1_Init 1 */
  1229. huart1.Instance = USART1;
  1230. huart1.Init.BaudRate = 9600;
  1231. huart1.Init.WordLength = UART_WORDLENGTH_8B;
  1232. huart1.Init.StopBits = UART_STOPBITS_1;
  1233. huart1.Init.Parity = UART_PARITY_NONE;
  1234. huart1.Init.Mode = UART_MODE_TX_RX;
  1235. huart1.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  1236. huart1.Init.OverSampling = UART_OVERSAMPLING_16;
  1237. if (HAL_UART_Init(&huart1) != HAL_OK)
  1238. {
  1239. Error_Handler();
  1240. }
  1241. /* USER CODE BEGIN USART1_Init 2 */
  1242. __HAL_UART_ENABLE_IT(&huart1, UART_IT_IDLE);
  1243. HAL_UART_Receive_DMA(&huart1,USART1_RX_BUF,Uart1_BUF_SIZE);
  1244. /* USER CODE END USART1_Init 2 */
  1245. }
  1246. /**
  1247. * @brief USART2 Initialization Function
  1248. * @param None
  1249. * @retval None
  1250. */
  1251. static void MX_USART2_UART_Init(void)
  1252. {
  1253. /* USER CODE BEGIN USART2_Init 0 */
  1254. /* USER CODE END USART2_Init 0 */
  1255. /* USER CODE BEGIN USART2_Init 1 */
  1256. /* USER CODE END USART2_Init 1 */
  1257. huart2.Instance = USART2;
  1258. huart2.Init.BaudRate = 38400;//19200
  1259. huart2.Init.WordLength = UART_WORDLENGTH_8B;
  1260. huart2.Init.StopBits = UART_STOPBITS_1;
  1261. huart2.Init.Parity = UART_PARITY_NONE;
  1262. huart2.Init.Mode = UART_MODE_TX_RX;
  1263. huart2.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  1264. huart2.Init.OverSampling = UART_OVERSAMPLING_16;
  1265. if (HAL_UART_Init(&huart2) != HAL_OK)
  1266. {
  1267. Error_Handler();
  1268. }
  1269. /* USER CODE BEGIN USART2_Init 2 */
  1270. __HAL_UART_ENABLE_IT(&huart2, UART_IT_IDLE);
  1271. HAL_UART_Receive_DMA(&huart2,USART2_RX_BUF,Uart2_BUF_SIZE);
  1272. /* USER CODE END USART2_Init 2 */
  1273. }
  1274. /**
  1275. * @brief USART3 Initialization Function
  1276. * @param None
  1277. * @retval None
  1278. */
  1279. static void MX_USART3_UART_Init(void)
  1280. {
  1281. /* USER CODE BEGIN USART3_Init 0 */
  1282. /* USER CODE END USART3_Init 0 */
  1283. /* USER CODE BEGIN USART3_Init 1 */
  1284. /* USER CODE END USART3_Init 1 */
  1285. huart3.Instance = USART3;
  1286. huart3.Init.BaudRate = 9600;
  1287. huart3.Init.WordLength = UART_WORDLENGTH_8B;
  1288. huart3.Init.StopBits = UART_STOPBITS_1;
  1289. huart3.Init.Parity = UART_PARITY_NONE;
  1290. huart3.Init.Mode = UART_MODE_TX_RX;
  1291. huart3.Init.HwFlowCtl = UART_HWCONTROL_NONE;
  1292. huart3.Init.OverSampling = UART_OVERSAMPLING_16;
  1293. if (HAL_UART_Init(&huart3) != HAL_OK)
  1294. {
  1295. Error_Handler();
  1296. }
  1297. /* USER CODE BEGIN USART3_Init 2 */
  1298. __HAL_UART_ENABLE_IT(&huart3, UART_IT_IDLE);
  1299. HAL_UART_Receive_DMA(&huart3,USART3_RX_BUF,Uart3_BUF_SIZE);
  1300. /* USER CODE END USART3_Init 2 */
  1301. }
  1302. /**
  1303. * Enable DMA controller clock
  1304. */
  1305. static void MX_DMA_Init(void)
  1306. {
  1307. /* DMA controller clock enable */
  1308. __HAL_RCC_DMA1_CLK_ENABLE();
  1309. __HAL_RCC_DMA2_CLK_ENABLE();
  1310. /* DMA interrupt init */
  1311. /* DMA1_Channel4_IRQn interrupt configuration */
  1312. HAL_NVIC_SetPriority(DMA1_Channel4_IRQn, 5, 0);
  1313. HAL_NVIC_EnableIRQ(DMA1_Channel4_IRQn);
  1314. /* DMA2_Channel4_5_IRQn interrupt configuration */
  1315. HAL_NVIC_SetPriority(DMA2_Channel4_5_IRQn, 5, 0);
  1316. HAL_NVIC_EnableIRQ(DMA2_Channel4_5_IRQn);
  1317. }
  1318. /**
  1319. * @brief GPIO Initialization Function
  1320. * @param None
  1321. * @retval None
  1322. */
  1323. static void MX_GPIO_Init(void)
  1324. {
  1325. GPIO_InitTypeDef GPIO_InitStruct = {0};
  1326. /* GPIO Ports Clock Enable */
  1327. __HAL_RCC_GPIOD_CLK_ENABLE();
  1328. __HAL_RCC_GPIOA_CLK_ENABLE();
  1329. __HAL_RCC_GPIOB_CLK_ENABLE();
  1330. __HAL_RCC_GPIOC_CLK_ENABLE();
  1331. /*Configure GPIO pin Output Level */
  1332. HAL_GPIO_WritePin(GPIOA, LED1_Pin|LED2_Pin|con03_uart2_kongzhiqi_Pin, GPIO_PIN_RESET);
  1333. /*Configure GPIO pin Output Level */
  1334. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin|Con01_uart1_rankonggai_Pin, GPIO_PIN_RESET);
  1335. /*Configure GPIO pin Output Level */
  1336. HAL_GPIO_WritePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin, GPIO_PIN_RESET);
  1337. /*Configure GPIO pins : LED1_Pin LED2_Pin con03_uart2_kongzhiqi_Pin */
  1338. GPIO_InitStruct.Pin = LED1_Pin|LED2_Pin|con03_uart2_kongzhiqi_Pin;
  1339. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1340. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1341. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1342. HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
  1343. /*Configure GPIO pins : con02_uart3_xieyoufa_Pin Con01_uart1_rankonggai_Pin */
  1344. GPIO_InitStruct.Pin = con02_uart3_xieyoufa_Pin|Con01_uart1_rankonggai_Pin;
  1345. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1346. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1347. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1348. HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  1349. /*Configure GPIO pins : IN01_Pin PB15 */
  1350. GPIO_InitStruct.Pin = GPIO_PIN_14|GPIO_PIN_15;
  1351. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  1352. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1353. HAL_GPIO_Init(GPIOB, &GPIO_InitStruct);
  1354. /*Configure GPIO pins : PC6 PC7 PC8 PC9 */
  1355. GPIO_InitStruct.Pin = GPIO_PIN_6|GPIO_PIN_7|GPIO_PIN_8|GPIO_PIN_9;
  1356. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  1357. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1358. HAL_GPIO_Init(GPIOC, &GPIO_InitStruct);
  1359. /*Configure GPIO pins : PA8 PA11 */
  1360. GPIO_InitStruct.Pin = GPIO_PIN_8|GPIO_PIN_11;
  1361. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  1362. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1363. HAL_GPIO_Init(GPIOA, &GPIO_InitStruct);
  1364. /*Configure GPIO pin : WDI_sp706_kanmemgou_Pin */
  1365. GPIO_InitStruct.Pin = WDI_sp706_kanmemgou_Pin;
  1366. if(WatchDogOn)//打开看门狗sp706
  1367. //if(1)//打开看门狗sp706
  1368. {
  1369. //
  1370. GPIO_InitStruct.Mode = GPIO_MODE_OUTPUT_PP;
  1371. }
  1372. else
  1373. {
  1374. GPIO_InitStruct.Mode = GPIO_MODE_INPUT;
  1375. }
  1376. GPIO_InitStruct.Pull = GPIO_NOPULL;
  1377. GPIO_InitStruct.Speed = GPIO_SPEED_FREQ_LOW;
  1378. HAL_GPIO_Init(WDI_sp706_kanmemgou_GPIO_Port, &GPIO_InitStruct);
  1379. }
  1380. /* USER CODE BEGIN 4 */
  1381. /**
  1382. * @funNm : delay_sys_us
  1383. * @brief : 延时nus
  1384. * @param : nus:要延时的us数. 0~204522252(最大值即2^32/fac_us@fac_us=168)
  1385. * @retval: void
  1386. */
  1387. void delay_sys_us(uint32_t Delay)//1个delay,大概1.5us
  1388. {
  1389. uint32_t cnt = Delay * 8;
  1390. uint32_t i = 0;
  1391. for(i = 0; i < cnt; i++)__NOP();
  1392. }
  1393. /* USER CODE END 4 */
  1394. /* USER CODE BEGIN Header_StartDefaultTask */
  1395. /**
  1396. * @brief Function implementing the defaultTask thread.
  1397. * @param argument: Not used
  1398. * @retval None
  1399. */
  1400. /* USER CODE END Header_StartDefaultTask */
  1401. void StartDefaultTask(void *argument)
  1402. {
  1403. /* USER CODE BEGIN 5 */
  1404. /* Infinite loop */
  1405. for(;;)
  1406. {
  1407. osDelay(1);
  1408. }
  1409. /* USER CODE END 5 */
  1410. }
  1411. /* USER CODE BEGIN Header_StartTask02 */
  1412. /**
  1413. * @brief Function implementing the myTask02 thread.
  1414. * @param argument: Not used
  1415. * @retval None
  1416. */
  1417. uint8_t Flash_Change = 0; //定义接收数组
  1418. uni_float tprture001,tprture002,tprture003,Yewei001,tprtureAver;
  1419. /* USER CODE END Header_StartTask02 */
  1420. /*
  1421. //发送卸油阀传感器命令轮询
  1422. //发送角度传感器命令轮询
  1423. //发送壁挂油传感器命令轮询
  1424. //发送智能海底阀传感器命令轮询
  1425. //发送油气回收传感器命令轮询
  1426. */
  1427. void StartTask02(void *argument) //卸油阀总线传感器命令轮询 UART3
  1428. {
  1429. /* USER CODE BEGIN StartTask02 */
  1430. uint8_t i001=0,i002 = 0;
  1431. uint16_t ModbusCRC = 0,xyfaddr_max = 0,hdfaddr_max; //xyfaddr_max:卸油阀最高地址,根据每仓卸油阀之和计算得出
  1432. static uint16_t i = 0,j = 0,receive_error = 0;
  1433. HDF_Inf* phdf = hdf_inf;
  1434. KZQ_Inf* pkzq = &kzq_inf;
  1435. XYF_Inf* pxyf = xyf_inf;
  1436. Cang_Inf* pcang = &cang_inf;
  1437. Angle_Inf* pangle = &angle_inf;
  1438. xyfaddr_max=0;
  1439. hdfaddr_max=0;
  1440. for(i = 0;i < pcang->Cang_Num;i++)
  1441. {
  1442. xyfaddr_max += pcang->XYF_Num[i];
  1443. hdfaddr_max += pcang->HDF_Num[i];
  1444. }
  1445. i = 0;
  1446. extern uint8_t USART2_RX_BUF002[Uart2_BUF_SIZE];
  1447. extern uint8_t USART1_RX_BUF002[Uart2_BUF_SIZE];
  1448. extern uint8_t USART3_RX_BUF002[Uart2_BUF_SIZE];
  1449. extern int data_lengthU2,data_lengthU1,data_lengthU3;
  1450. extern int flagU1Rx,flagU2Rx,flagU3Rx;
  1451. extern uint8_t USART3_RX_BUF002_print[Uart3_BUF_SIZE];
  1452. extern uint8_t XYF_TxBuf[70];
  1453. extern uint16_t Uart_len_TouChuan;
  1454. /* Infinite loop */
  1455. for(;;)
  1456. {
  1457. osDelay(10); //以ms为单位
  1458. //HAL_GPIO_TogglePin(GPIOA,GPIO_PIN_0);
  1459. HAL_GPIO_TogglePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin);
  1460. // continue;
  1461. if(Flash_Change) //如果有对Flash进行改动,则重新计算xyfaddr_max
  1462. {
  1463. xyfaddr_max = 0;
  1464. hdfaddr_max = 0;
  1465. for(i = 0;i < pcang->Cang_Num;i++)
  1466. {
  1467. xyfaddr_max += pcang->XYF_Num[i];
  1468. hdfaddr_max += pcang->HDF_Num[i];
  1469. }
  1470. Flash_Change = 0;
  1471. }
  1472. if(pkzq->USE_XYF == 0) //平台未控制卸油阀总线,正常轮询数据
  1473. {
  1474. if(i001==0) //发送卸油阀传感器命令轮询
  1475. {
  1476. if ((pcang->XYF_INSTALL != 0) && (pcang->XYF_Type != 2))
  1477. {
  1478. ModbusCRC = LIB_CRC_MODBUS(CMD_XYF, 6);
  1479. CMD_XYF[6] = ModbusCRC >> 8;
  1480. CMD_XYF[7] = ModbusCRC & 0xff;
  1481. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_RESET); //
  1482. delay_sys_us(80);
  1483. HAL_UART_Transmit_IT(&huart3, CMD_XYF, 8);
  1484. while (huart3.gState == HAL_UART_STATE_BUSY_TX)
  1485. {
  1486. osDelay(1);
  1487. }
  1488. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_SET); //
  1489. pxyf[CMD_XYF[0] - 0x10].RTData_Num++; //每个传感器发送帧累加
  1490. if (CMD_XYF[0] - 0x10 < xyfaddr_max)
  1491. CMD_XYF[0]++;
  1492. else
  1493. CMD_XYF[0] = 0x11;
  1494. }
  1495. else
  1496. {
  1497. i001 = 3;
  1498. }
  1499. }
  1500. if (i001 == 3) //发送姿态传感器轮询
  1501. {
  1502. if (pcang->Angle) //发送角度传感器命令轮询
  1503. {
  1504. ModbusCRC = LIB_CRC_MODBUS(CMD_Angle_XY, 6);
  1505. CMD_Angle_XY[6] = ModbusCRC >> 8;
  1506. CMD_Angle_XY[7] = ModbusCRC & 0xff;
  1507. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_RESET);
  1508. delay_sys_us(80);
  1509. HAL_UART_Transmit(&huart3, CMD_Angle_XY, 8, 100); //只支持单指令读角度取传感器数据
  1510. delay_sys_us(80);
  1511. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_SET);
  1512. if (pangle->RTData_NumX > RT_ERRORCNT)
  1513. {
  1514. pangle->RTData_NumX = RT_ERRORCNT;
  1515. pangle->Angle_ErrorCnt = RT_ERRORCNT;
  1516. }
  1517. else
  1518. pangle->RTData_NumX++;
  1519. }
  1520. else
  1521. {
  1522. i001 = 6;
  1523. }
  1524. }
  1525. if(i001==6) //发送壁挂油传感器命令轮询
  1526. {
  1527. if(pcang->BGY_INSTALL)
  1528. {
  1529. ModbusCRC = LIB_CRC_MODBUS(CMD_Biguayou,6);
  1530. CMD_Biguayou[6] = ModbusCRC>>8;
  1531. CMD_Biguayou[7] = ModbusCRC&0xff;
  1532. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);
  1533. delay_sys_us(80);
  1534. HAL_UART_Transmit(&huart3,CMD_Biguayou,8,100); //只支持单指令读角度取传感器数据
  1535. delay_sys_us(80);
  1536. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);
  1537. }
  1538. else
  1539. {
  1540. i001=9;
  1541. }
  1542. }
  1543. if (i001 == 9) //发送智能海底阀传感器命令轮询
  1544. {
  1545. if (pcang->HDF_INSTALL != 0 && pcang->HDF_Type)
  1546. {
  1547. ModbusCRC = LIB_CRC_MODBUS(CMD_HDF, 14);
  1548. CMD_HDF[14] = ModbusCRC >> 8;
  1549. CMD_HDF[15] = ModbusCRC & 0xff;
  1550. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_RESET);
  1551. delay_sys_us(80);
  1552. HAL_UART_Transmit(&huart3, CMD_HDF, 16, 100); //只支持单指令读角度取传感器数据
  1553. delay_sys_us(80);
  1554. HAL_GPIO_WritePin(GPIOB, con02_uart3_xieyoufa_Pin, GPIO_PIN_SET);
  1555. if (phdf[CMD_HDF[0] - 0x20].RTData_Num > 50) //收发数据错误次数RT_ERRORCNT
  1556. {
  1557. // phdf[CMD_HDF[0]-0x20].RTData_Num = RT_ERRORCNT;
  1558. // phdf[CMD_HDF[0]-0x20].HDF_ErrorCnt = RT_ERRORCNT;
  1559. }
  1560. else
  1561. phdf[CMD_HDF[0] - 0x20].RTData_Num++; //每个传感器发送帧累加
  1562. if (CMD_HDF[0] - 0x21 < hdfaddr_max)
  1563. CMD_HDF[0]++;
  1564. else
  1565. CMD_HDF[0] = 0x21;
  1566. }
  1567. else
  1568. {
  1569. i001 = 12;
  1570. }
  1571. }
  1572. if(i001==12) //发送油气回收传感器命令轮询
  1573. {
  1574. if(pcang->YQHS)
  1575. {
  1576. ModbusCRC = LIB_CRC_MODBUS(CMD_YQHS,6);
  1577. CMD_YQHS[6] = ModbusCRC>>8;
  1578. CMD_YQHS[7] = ModbusCRC&0xff;
  1579. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);
  1580. delay_sys_us(80);
  1581. HAL_UART_Transmit(&huart3,CMD_YQHS,8,100); //只支持单指令读角度取传感器数据
  1582. delay_sys_us(80);
  1583. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);
  1584. }
  1585. else
  1586. {
  1587. i001=0;
  1588. continue;
  1589. }
  1590. }
  1591. }
  1592. else //平台通过卸油阀总线直接操作传感器
  1593. {
  1594. if(i002 == 3)
  1595. {
  1596. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);//
  1597. delay_sys_us(80);
  1598. #if 0
  1599. if((XYF_TxBuf[0] == 0x0D)&&(XYF_TxBuf[0] == 0x0A))
  1600. HAL_UART_Transmit(&huart3,XYF_TxBuf,12,100);
  1601. else
  1602. HAL_UART_Transmit(&huart3,XYF_TxBuf,8,100);
  1603. delay_sys_us(80);
  1604. #else
  1605. HAL_UART_Transmit_IT(&huart3,XYF_TxBuf,Uart_len_TouChuan);
  1606. while (huart3.gState == HAL_UART_STATE_BUSY_TX)
  1607. {
  1608. osDelay(1);
  1609. }
  1610. #endif
  1611. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET); //
  1612. }
  1613. else if(i002 == 0x06)
  1614. {
  1615. #if 0
  1616. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);//
  1617. delay_sys_us(80);
  1618. HAL_UART_Transmit(&huart3,ALL_TxBuf,16,100);
  1619. delay_sys_us(80);
  1620. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);//
  1621. }
  1622. else if(i002 == 0x09)//slm 0x0c
  1623. {
  1624. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_RESET);//
  1625. delay_sys_us(80);
  1626. HAL_UART_Transmit(&huart3,ALL_TxBuf,Uart_len_TouChuan,100);
  1627. delay_sys_us(80);
  1628. HAL_GPIO_WritePin(GPIOB,con02_uart3_xieyoufa_Pin,GPIO_PIN_SET);//
  1629. #endif
  1630. pkzq->USE_XYF = 0;
  1631. i002 = 0;
  1632. }
  1633. i002++;
  1634. if((flagU3Rx==1) && (i002 > 3))
  1635. {
  1636. pkzq->USE_XYF = 0;
  1637. i002 = 0;
  1638. continue;
  1639. }
  1640. }
  1641. //来自UART3的命令 电路板上标志位卸油阀
  1642. if(flagU3Rx==1)
  1643. {
  1644. flagU3Rx=0;
  1645. #if 0
  1646. if(USART3_RX_BUF002[0]!=0x11)
  1647. {
  1648. pxyf[1].XYF_ErrorCnt++;
  1649. if(pxyf[1].XYF_ErrorCnt>35)
  1650. {
  1651. pxyf[1].XYF_Error = 1;
  1652. }
  1653. }
  1654. if(USART3_RX_BUF002[0]!=0x12)
  1655. {
  1656. pxyf[2].XYF_ErrorCnt++;
  1657. if(pxyf[2].XYF_ErrorCnt>35)
  1658. {
  1659. pxyf[2].XYF_Error = 1;
  1660. }
  1661. }
  1662. #endif
  1663. if(USART3_RX_BUF002[0] >= 0x10 && USART3_RX_BUF002[0] <= 0x1F) //卸油阀数据
  1664. {
  1665. ModbusCRC = USART3_RX_BUF002[5]<<8;
  1666. ModbusCRC |= USART3_RX_BUF002[6];
  1667. //pxyf[USART3_RX_BUF002[0]-0x10].RTData_Num = 1;
  1668. if(USART3_RX_BUF002[1]!=0x03&&USART3_RX_BUF002[1]!=0x06) //校验读写属性
  1669. {
  1670. receive_error = 1;
  1671. }
  1672. else if(USART3_RX_BUF002[2] != 0x02) //校验数据长度
  1673. {
  1674. receive_error = 1;
  1675. }
  1676. else if(ModbusCRC != LIB_CRC_MODBUS(USART3_RX_BUF002,5)) //校验CRC
  1677. {
  1678. receive_error = 1;
  1679. }
  1680. if(receive_error == 0)
  1681. {
  1682. pxyf[USART3_RX_BUF002[0]-0x10].XYF_ErrorCnt = 0;
  1683. pxyf[USART3_RX_BUF002[0]-0x10].XYF_Error = 0;
  1684. if(USART3_RX_BUF002[1] == 0x03) //读取数据返回
  1685. {
  1686. #if 0
  1687. if(USART3_RX_BUF002[3]>0x01)//阀门开关状态
  1688. {
  1689. pxyf[i].XYF_ErrorCnt++;
  1690. }
  1691. else if(i < XYF_BUF_DEP)
  1692. {
  1693. i++;
  1694. }
  1695. if(i == XYF_BUF_DEP)
  1696. {
  1697. i = 0;
  1698. }
  1699. #else
  1700. pxyf[USART3_RX_BUF002[0] - 0x10].XYF_Data1[0] = USART3_RX_BUF002[3];
  1701. pxyf[USART3_RX_BUF002[0] - 0x10].XYF_Data2[0] = USART3_RX_BUF002[4];
  1702. #endif
  1703. XYF_state(USART3_RX_BUF002[0] - 0x10);
  1704. }
  1705. else if(USART3_RX_BUF002[1] == 0x06) //写入数据返回 判断写入是否成功
  1706. {
  1707. //清除控制器占用标志
  1708. //整理卸油阀协议后添加
  1709. }
  1710. i001=3;
  1711. continue;
  1712. }
  1713. }
  1714. else if(USART3_RX_BUF002[0] >=0x70 && USART3_RX_BUF002[0] <= 0x7f) //姿态数据,目前最多支持3轴
  1715. {
  1716. ModbusCRC = USART3_RX_BUF002[7]<<8;
  1717. ModbusCRC |= USART3_RX_BUF002[8];
  1718. pangle->RTData_NumX = 1;
  1719. if(USART3_RX_BUF002[1]!=0x03&&USART3_RX_BUF002[1]!=0x06) //校验读写属性
  1720. {
  1721. receive_error = 1;
  1722. }
  1723. else if(USART3_RX_BUF002[2] >= 0x08) //校验数据长度
  1724. {
  1725. receive_error = 1;
  1726. }
  1727. else if(ModbusCRC != LIB_CRC_MODBUS(USART3_RX_BUF002,USART3_RX_BUF002[2]+3)) //校验CRC
  1728. {
  1729. //receive_error = 1;
  1730. }
  1731. if(receive_error == 0)
  1732. {
  1733. if(USART3_RX_BUF002[1] ==0x03)
  1734. {
  1735. if(j < ANGLE_BUF_DEP)
  1736. {
  1737. pangle->Angle_ErrorCnt = 0;
  1738. //if(USART3_RX_BUF002[2] == 0x02)
  1739. pangle->Angle_DataX[j] = USART3_RX_BUF002[3]<<8|USART3_RX_BUF002[4];
  1740. //if(USART3_RX_BUF002[2] > 0x02)
  1741. pangle->Angle_DataY[j] = USART3_RX_BUF002[5]<<8|USART3_RX_BUF002[6];
  1742. // if(USART3_RX_BUF002[2] > 0x04)
  1743. pangle->Angle_DataZ[j] = USART3_RX_BUF002[7]<<8|USART3_RX_BUF002[8];
  1744. j++;
  1745. }
  1746. if(j == ANGLE_BUF_DEP)
  1747. {
  1748. j = 0;
  1749. }
  1750. }
  1751. else
  1752. {
  1753. //整理卸油阀协议后添加
  1754. }
  1755. }
  1756. }
  1757. else if(USART3_RX_BUF002[0] >= 0x20 && USART3_RX_BUF002[0] <= 0x2F ) //智能海底阀数据
  1758. {
  1759. Get_ZN_hdf_data();
  1760. }
  1761. else if(USART3_RX_BUF002[0] == 0xe4) //油气回收数据
  1762. {
  1763. Get_Yqhuishou_data();
  1764. }
  1765. else if(USART3_RX_BUF002[0] >= 0x81 && USART3_RX_BUF002[0] <= 0x8F) //壁挂油数据
  1766. {
  1767. Get_Biguayou_data();
  1768. }
  1769. receive_error = 0;
  1770. }
  1771. else
  1772. {
  1773. if (i001 == 2)
  1774. {
  1775. if(CMD_XYF[0] == 0x11)
  1776. {
  1777. i = xyfaddr_max;
  1778. }
  1779. else
  1780. {
  1781. i = CMD_XYF[0] - 0x11;
  1782. }
  1783. pxyf[i].XYF_ErrorCnt++;
  1784. if (pxyf[i].XYF_ErrorCnt > pcang->sensorBusMaxReTry)
  1785. {
  1786. pxyf[i].XYF_ErrorCnt = pcang->sensorBusMaxReTry + 1;
  1787. pxyf[i].XYF_Error = 1;
  1788. }
  1789. }
  1790. }
  1791. if(i001<15)
  1792. i001++;
  1793. else
  1794. i001 = 0;
  1795. osDelay(40);
  1796. }
  1797. /* USER CODE END StartTask02 */
  1798. }
  1799. /* USER CODE BEGIN Header_StartTask03 */
  1800. /**
  1801. * @brief Function implementing the myTask03 thread.
  1802. * @param argument: Not used
  1803. * @retval None
  1804. */
  1805. /* USER CODE END Header_StartTask03 */
  1806. /*
  1807. //发送华天三点式温度传感器命令轮询
  1808. //发送人控大盖盖命令轮询
  1809. //雷达液位传感器命令
  1810. //发送小盖传感器轮询
  1811. //发送磁致伸缩液位计命令轮询
  1812. ?
  1813. */
  1814. #include "rkg.h"
  1815. void StartTask03(void *argument) //人孔盖总线传感器 UART1
  1816. {
  1817. /* USER CODE BEGIN StartTask03 */
  1818. /* Infinite loop */
  1819. /* USER CODE BEGIN StartTask02 */
  1820. static uint8_t i001=0,i002 = 0,i003 = 0,receive_error = 0;
  1821. uint16_t rkgaddr_max = 0,temaddr_max = 0,leveladdr_max = 0,RKG_angle = 0;
  1822. static uint16_t i = 0,rkdg_cnt = 0,rkxg_cnt = 0,level_cnt = 0,tem_cnt = 0,temp_dot_cnt=0,temp_dot_dex=0,ModbusCRC = 0,ModbusCRC1 = 0;
  1823. uint16_t rx_len,head = 0;
  1824. S_ANGLEDATA* psATsk3 = gs_AngleData;
  1825. KZQ_Inf* pkzq = &kzq_inf;
  1826. RKG_Inf* prkg = rkg_inf;
  1827. Cang_Inf* pcang = &cang_inf;
  1828. Level_Inf* plevel = level_inf;
  1829. TEM_Inf* ptem = tem_inf;
  1830. typedef union{
  1831. float QDGH_data_temp; //青鸟贵和磁致伸缩液位温度一体传感器
  1832. uint8_t arr[4];
  1833. }Hex_to_float;
  1834. static Hex_to_float hex_to_float;
  1835. leveladdr_max=0;
  1836. if(pcang->Temperture==2)
  1837. pcang->Temperture=3;
  1838. for(i = 0;i < pcang->Cang_Num;i++)
  1839. {
  1840. rkgaddr_max += pcang->RKG_Num[i]; //人孔盖最大地址
  1841. leveladdr_max++;
  1842. }
  1843. /*if(pcang->RKG_Type==0)
  1844. {
  1845. rkgaddr_max += 1;
  1846. }*/
  1847. //if(((pcang->Level)|0xff) == 0)
  1848. {
  1849. if(((pcang->Temperture)&0xff) == 0)
  1850. {
  1851. temaddr_max = leveladdr_max; //温度最大集成地址
  1852. }
  1853. else
  1854. {
  1855. temaddr_max = leveladdr_max*(pcang->Temperture&0xff); //温度最大离散地址
  1856. }
  1857. }
  1858. i = 0;
  1859. extern uint8_t USART1_RX_BUF002[Uart2_BUF_SIZE];
  1860. extern int data_lengthU1;
  1861. extern int flagU1Rx;
  1862. extern uint8_t USART1_RX_BUF002_print[Uart1_BUF_SIZE];
  1863. /* Infinite loop */
  1864. for(;;)
  1865. {
  1866. osDelay(10); //以ms为单位
  1867. //HAL_GPIO_TogglePin(GPIOA,GPIO_PIN_0); //已经移至task12 500ms闪烁 邵磊明修改
  1868. HAL_GPIO_TogglePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin);
  1869. if(Flash_Change)
  1870. {
  1871. rkgaddr_max = 0;
  1872. leveladdr_max=0;
  1873. if(pcang->Temperture==2)
  1874. pcang->Temperture=3;
  1875. for(i = 0;i < pcang->Cang_Num;i++)
  1876. {
  1877. rkgaddr_max += pcang->RKG_Num[i]; //人孔盖最大地址
  1878. leveladdr_max++;
  1879. }
  1880. /*if(pcang->RKG_Type==0)
  1881. {
  1882. rkgaddr_max += 1;
  1883. }*/
  1884. //if(((pcang->Level>)|0xff) == 0)
  1885. {
  1886. if(((pcang->Temperture)&0xff) == 0)
  1887. {
  1888. temaddr_max = leveladdr_max; //温度最大集成地址
  1889. }
  1890. else
  1891. {
  1892. temaddr_max = leveladdr_max*(pcang->Temperture&0xff); //温度最大离散地址
  1893. }
  1894. }
  1895. Flash_Change = 0;
  1896. }
  1897. if(pkzq->USE_RKG == 0) //平台未控制卸油阀总线,正常轮询数据
  1898. {
  1899. if(i001==0) //发送人控大盖盖命令轮询
  1900. {
  1901. if((pcang->RKG_DG != 0) && (pcang->RKG_Type!=2))
  1902. {
  1903. if(pcang->RKG_Type == 0)
  1904. {
  1905. if(CMD_RKG[0] == 0x1)
  1906. {
  1907. if(i003 >= rkgaddr_max)
  1908. i003 = 0;
  1909. ++i003;
  1910. CMD_RKG[0] = 1+i003*2;
  1911. prkg[i003].RTData_Num++;
  1912. }
  1913. else
  1914. {
  1915. CMD_RKG[0] = 0x1;
  1916. prkg[0].RTData_Num++;
  1917. }
  1918. }
  1919. else
  1920. {
  1921. prkg[CMD_RKG[0] - 0x30].RTData_Num++;
  1922. if(CMD_RKG[0] - 0x30 < rkgaddr_max)
  1923. {
  1924. ++i003;
  1925. CMD_RKG[0]=0x30+i003;
  1926. }
  1927. else
  1928. {
  1929. CMD_RKG[0] = 0x31;
  1930. i003 = 1;
  1931. }
  1932. }
  1933. ModbusCRC = LIB_CRC_MODBUS(CMD_RKG,6);
  1934. CMD_RKG[6] = ModbusCRC>>8;
  1935. CMD_RKG[7] = ModbusCRC&0xff;
  1936. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  1937. delay_sys_us(80);
  1938. //if(pcang->RKG_Type == 0x01)
  1939. // HAL_UART_Transmit(&huart1,Data_Head,2,10);
  1940. {
  1941. HAL_UART_Transmit_IT(&huart1,CMD_RKG,8);
  1942. while (huart1.gState == HAL_UART_STATE_BUSY_TX)
  1943. {
  1944. osDelay(1);
  1945. }
  1946. } //HAL_UART_Transmit(&huart1,CMD_RKG,8,100);
  1947. //if(pcang->RKG_Type == 0x01)
  1948. // HAL_UART_Transmit(&huart1,Data_Head,2,10);
  1949. //delay_sys_us(80);
  1950. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//
  1951. #if 0
  1952. if(prkg[CMD_RKG[0] - 0x30].RTData_Num > RT_ERRORCNT) //每个传感器每发送一帧 基准角度为0x30
  1953. {
  1954. prkg[CMD_RKG[0] - 0x30].RTData_Num = RT_ERRORCNT;
  1955. prkg[CMD_RKG[0] - 0x30].RKDG_ErrorCnt = RT_ERRORCNT;
  1956. }
  1957. else
  1958. #endif
  1959. }
  1960. else
  1961. i001 = 3;
  1962. }
  1963. if(i001==3) //发送小盖传感器轮询
  1964. {
  1965. if(pcang->RKG_XG == 0x01)
  1966. {
  1967. ModbusCRC = LIB_CRC_MODBUS(CMD_RKG_XG,6);
  1968. CMD_RKG_XG[6] = ModbusCRC>>8;
  1969. CMD_RKG_XG[7] = ModbusCRC&0xff;
  1970. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  1971. delay_sys_us(80);
  1972. if(pcang->RKG_Type == 0x01)
  1973. HAL_UART_Transmit(&huart1,Data_Head,2,10);
  1974. HAL_UART_Transmit(&huart1,CMD_RKG_XG,8,100);
  1975. if(pcang->RKG_Type == 0x01)
  1976. HAL_UART_Transmit(&huart1,Data_Head,2,10);
  1977. delay_sys_us(80);
  1978. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//
  1979. if(prkg[CMD_RKG_XG[0]-0x40].RTData_Num > RT_ERRORCNT)
  1980. {
  1981. prkg[CMD_RKG_XG[0]-0x40].RTData_Num = RT_ERRORCNT;
  1982. prkg[CMD_RKG_XG[0]-0x40].RKXG_ErrorCnt = RT_ERRORCNT;
  1983. }
  1984. else
  1985. prkg[CMD_RKG_XG[0]-0x40].RTData_Num++; //每个传感器发送帧累加
  1986. if(CMD_RKG_XG[0] - 0x41 < rkgaddr_max -1)
  1987. CMD_RKG_XG[0]++;
  1988. else
  1989. CMD_RKG_XG[0] = 0x41;
  1990. }
  1991. else
  1992. i001 = 6;
  1993. }
  1994. if(i001==6) //发送磁致伸缩液位计命令轮询 邵磊明增加
  1995. {
  1996. if(pcang->Level == 0) //没有液位传感器
  1997. {
  1998. i001=9;
  1999. }
  2000. else if(pcang->Level == 1) //磁致伸缩传感器轮询 邵磊明增加
  2001. {
  2002. ModbusCRC = LIB_CRC_MODBUS(CMD_GetTempAndYewei,6);
  2003. CMD_GetTempAndYewei[6] = ModbusCRC>>8;
  2004. CMD_GetTempAndYewei[7] = ModbusCRC&0xff;
  2005. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  2006. delay_sys_us(80);
  2007. //HAL_UART_Transmit(&huart1,CMD_GetTempAndYewei,8,100);
  2008. //delay_sys_us(80);
  2009. HAL_UART_Transmit_IT(&huart1,CMD_GetTempAndYewei,8);
  2010. while (huart1.gState == HAL_UART_STATE_BUSY_TX)
  2011. {
  2012. osDelay(1);
  2013. }
  2014. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//
  2015. /*if(plevel[CMD_GetTempAndYewei[0]-0x50].RTData_Num > RT_ERRORCNT)
  2016. {
  2017. plevel[CMD_GetTempAndYewei[0]-0x50].RTData_Num = RT_ERRORCNT;
  2018. plevel[CMD_GetTempAndYewei[0]-0x50].Level_ErrorCnt = RT_ERRORCNT;
  2019. }
  2020. else*/
  2021. plevel[CMD_GetTempAndYewei[0]-0x50].RTData_Num++; //每个传感器发送帧累加 基准角度为0x30
  2022. if(CMD_GetTempAndYewei[0]-0x50 < leveladdr_max)
  2023. CMD_GetTempAndYewei[0]++;
  2024. else
  2025. CMD_GetTempAndYewei[0] = 0x51;
  2026. }
  2027. else if(pcang->Level == 2) //雷达液位传感器命令轮询 20210818邵增加
  2028. {
  2029. ModbusCRC = LIB_CRC_MODBUS(CMD_LDYW,6);
  2030. CMD_LDYW[6] = ModbusCRC>>8;
  2031. CMD_LDYW[7] = ModbusCRC&0xff;
  2032. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  2033. delay_sys_us(80);
  2034. //HAL_UART_Transmit(&huart1,CMD_LDYW,8,100);
  2035. //delay_sys_us(80);
  2036. HAL_UART_Transmit_IT(&huart1, CMD_LDYW, 8);
  2037. while (huart1.gState == HAL_UART_STATE_BUSY_TX)
  2038. {
  2039. osDelay(1);
  2040. }
  2041. HAL_GPIO_WritePin(GPIOB, Con01_uart1_rankonggai_Pin, GPIO_PIN_SET); //
  2042. /*if (prkg[CMD_RKG[0] - 0x50].RTData_Num > RT_ERRORCNT) //每个传感器每发送一帧 基准角度为0x30
  2043. {
  2044. plevel[CMD_RKG[0] - 0x50].RTData_Num = RT_ERRORCNT;
  2045. plevel[CMD_RKG[0] - 0x50].Level_ErrorCnt = RT_ERRORCNT;
  2046. }
  2047. else*/
  2048. plevel[CMD_LDYW[0] - 0x50].RTData_Num++;
  2049. if (CMD_LDYW[0] - 0x50 < leveladdr_max)
  2050. CMD_LDYW[0]++;
  2051. else
  2052. CMD_LDYW[0] = 0x51;
  2053. }
  2054. else
  2055. i001=9;
  2056. }
  2057. if(i001==9) //发送华天三点式温度传感器命令轮询 邵磊明增加
  2058. {
  2059. if(pcang->Temperture != 0)
  2060. {
  2061. // taskENTER_CRITICAL();
  2062. ModbusCRC = LIB_CRC_MODBUS(CMD_GetTempHuaTian,6);
  2063. CMD_GetTempHuaTian[6] = ModbusCRC>>8;
  2064. CMD_GetTempHuaTian[7] = ModbusCRC&0xff;
  2065. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  2066. delay_sys_us(80);
  2067. HAL_UART_Transmit_IT(&huart1,CMD_GetTempHuaTian,8);
  2068. while (huart1.gState == HAL_UART_STATE_BUSY_TX)
  2069. {
  2070. osDelay(1);
  2071. }
  2072. //HAL_UART_Transmit(&huart1,CMD_GetTempHuaTian,8,100);
  2073. //delay_sys_us(80);
  2074. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//
  2075. // taskEXIT_CRITICAL();
  2076. #if 0
  2077. if(ptem[CMD_GetTempHuaTian[0] - 0x60].RTData_Num > RT_ERRORCNT) //每个传感器每发送一帧 基准角度为0x30
  2078. {
  2079. ptem[CMD_GetTempHuaTian[0] - 0x60].RTData_Num = RT_ERRORCNT;
  2080. ptem[CMD_GetTempHuaTian[0] - 0x60].TEM_ErrorCnt = RT_ERRORCNT;
  2081. }
  2082. else
  2083. #endif
  2084. {
  2085. ptem[CMD_GetTempHuaTian[0] - 0x60].RTData_Num++;
  2086. }
  2087. if(CMD_GetTempHuaTian[0] - 0x60 < temaddr_max)
  2088. CMD_GetTempHuaTian[0] = CMD_GetTempHuaTian[0]+1;
  2089. else
  2090. CMD_GetTempHuaTian[0] = 0x61;
  2091. }
  2092. else
  2093. {
  2094. i001=0x0;
  2095. continue;
  2096. }
  2097. }
  2098. }
  2099. else //平台通过卸油阀总线直接操作传感器
  2100. {
  2101. if(i002 == 3)
  2102. {
  2103. extern uint16_t Uart_len_TouChuan;
  2104. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_RESET);//
  2105. delay_sys_us(80);
  2106. #if 0
  2107. if((RKG_TxBuf[0] == 0x0D)&&(RKG_TxBuf[1] == 0x0A))
  2108. HAL_UART_Transmit(&huart1,RKG_TxBuf,12,100);
  2109. else
  2110. HAL_UART_Transmit(&huart1,RKG_TxBuf,8,100);
  2111. delay_sys_us(80);
  2112. #else
  2113. HAL_UART_Transmit_IT(&huart1,RKG_TxBuf,Uart_len_TouChuan);
  2114. while (huart1.gState == HAL_UART_STATE_BUSY_TX)
  2115. {
  2116. osDelay(1);
  2117. }
  2118. #endif
  2119. HAL_GPIO_WritePin(GPIOB,Con01_uart1_rankonggai_Pin,GPIO_PIN_SET);//
  2120. flagU1Rx=0;
  2121. }
  2122. i002++;
  2123. if(((flagU1Rx==1) && (i002 > 3)) || i002>10)
  2124. {
  2125. pkzq->USE_RKG = 0;
  2126. i002 = 0;
  2127. continue;
  2128. }
  2129. }
  2130. //来自UART1,即人孔盖总线的命令 电路板上标志位人孔盖
  2131. if(flagU1Rx==1)
  2132. {
  2133. flagU1Rx = 0;
  2134. receive_error = 0;
  2135. rx_len = USART1_RX_BUF002[2];
  2136. ModbusCRC = USART1_RX_BUF002[(3+rx_len)]<<8;
  2137. ModbusCRC |= USART1_RX_BUF002[(3+rx_len+1)];
  2138. if((USART1_RX_BUF002[head+0] >= 0x30 && USART1_RX_BUF002[head+0] <= 0x3F) || (USART1_RX_BUF002[head+0] >= 0x1 && USART1_RX_BUF002[head+0] <= 0x10)) //人孔大盖数据 地址0x30为基准传感器
  2139. {
  2140. if(USART1_RX_BUF002[head+1]!=0x03&&USART1_RX_BUF002[head+1]!=0x06) //校验读写属性
  2141. {
  2142. receive_error = 1;
  2143. }
  2144. else if(USART1_RX_BUF002[head+2] != 0x04) //校验数据长度
  2145. {
  2146. receive_error = 1;
  2147. }
  2148. else if(ModbusCRC != LIB_CRC_MODBUS(USART1_RX_BUF002,7)) //校验CRC
  2149. {
  2150. receive_error = 1;
  2151. }
  2152. // if((pcang->RKG_Type == 0)&&(USART1_RX_BUF002[head]>=0x30)&&(USART1_RX_BUF002[head] <=0x4F))
  2153. RKG_angle = (USART1_RX_BUF002[head+4]<<8)|USART1_RX_BUF002[head+3];
  2154. // else
  2155. // RKG_angle = (USART1_RX_BUF002[head+3]<<8)|USART1_RX_BUF002[head+4];
  2156. if((USART1_RX_BUF002[head+1] == 0x03)&&(receive_error == 0)) //读取数据返回
  2157. {//童赟 磁电编码 磁编码 人孔盖
  2158. if(USART1_RX_BUF002[head]==1)
  2159. {
  2160. prkg[0].RKDG_ErrorCnt = 0;
  2161. prkg[0].RKDG_Error=0;
  2162. }
  2163. else
  2164. {
  2165. prkg[i003].RKDG_ErrorCnt = 0;
  2166. prkg[i003].RKDG_Error=0;
  2167. }
  2168. if(USART1_RX_BUF002[head]==1)
  2169. {
  2170. AGL_AddNewData(RKG_angle,0);
  2171. }
  2172. else
  2173. {
  2174. AGL_AddNewData(RKG_angle,i003);
  2175. }
  2176. #if 0
  2177. //邵磊明修改 20211027 从rkg.c剪切到此处
  2178. if(psATsk3[i003].uiDG < 0 ||psATsk3[USART1_RX_BUF002[head]-0x30].uiDG >= 27000)//角度
  2179. {
  2180. prkg[USART1_RX_BUF002[head]-0x30].RKDG_ErrorCnt++;
  2181. }
  2182. #endif
  2183. // if( - psATsk3[USART1_RX_BUF002[head]-0x30].uiDG > prkg->RKG_Threshold || psATsk3[USART1_RX_BUF002[head]-0x30].uiDG > prkg->RKG_Threshold)
  2184. // prkg[USART1_RX_BUF002[head]-0x30].RKDG_StateCnt++;
  2185. // else
  2186. // prkg[USART1_RX_BUF002[head]-0x30].RKDG_StateCnt = 0;
  2187. if(pcang->RKG_Type == 0)
  2188. {
  2189. AGL_CalcDeltaAll(USART1_RX_BUF002[head],0);
  2190. }
  2191. #if 0 //倾角大盖计算
  2192. if(rkdg_cnt < RKG_BUF_DEP)
  2193. {
  2194. if(USART1_RX_BUF002[head] == 0x30)
  2195. {
  2196. prkg[USART1_RX_BUF002[head] - 0x30].RKG_JZData[rkdg_cnt] = RKG_angle;
  2197. }
  2198. else
  2199. {
  2200. prkg[USART1_RX_BUF002[head] - 0x30].RKG_DGData[rkdg_cnt] = RKG_angle;
  2201. rkdg_cnt++;
  2202. }
  2203. }
  2204. if(rkdg_cnt == RKG_BUF_DEP)
  2205. {
  2206. rkdg_cnt = 0;
  2207. }
  2208. #endif
  2209. //李伟修改 20211027 从rkg.c剪切到此处;开始
  2210. if (USART1_RX_BUF002[head] != 1)
  2211. {
  2212. if (psATsk3[i003].uiDG >= 0 || psATsk3[i003].uiDG <= 27000) //角度
  2213. {
  2214. if (-psATsk3[i003].uiDG > prkg->RKG_Threshold || psATsk3[i003].uiDG > prkg->RKG_Threshold)
  2215. prkg[i003].RKDG_StateCnt++;
  2216. else
  2217. prkg[i003].RKDG_StateCnt = 0;
  2218. if (prkg[i003].RKDG_StateCnt >= prkg[i003].RKG_StateKeepNum)
  2219. {
  2220. // RisingEdge++;
  2221. prkg[i003].RKDG_StateCnt = prkg[i003].RKG_StateKeepNum;
  2222. prkg[i003].RKDG_State = 1;
  2223. }
  2224. else
  2225. {
  2226. prkg[i003].RKDG_State = 0;
  2227. }
  2228. }
  2229. }
  2230. //李伟修改 20211027 从rkg.c剪切到此处;开始
  2231. i001 = 3;
  2232. continue;
  2233. }
  2234. }
  2235. else if(USART1_RX_BUF002[head+0] >= 0x40 && USART1_RX_BUF002[head+0] <= 0x4F) //人孔小盖数据 地址0x30为基准传感器
  2236. {
  2237. prkg[USART1_RX_BUF002[head] - 0x30].RKXG_ErrorCnt = 0;
  2238. prkg[USART1_RX_BUF002[head+0]-0x40].RTData_Num = 1;
  2239. if(USART1_RX_BUF002[head+1]!=0x03&&USART1_RX_BUF002[head+1]!=0x06) //校验读写属性
  2240. {
  2241. receive_error = 1;
  2242. }
  2243. else if(USART1_RX_BUF002[head+2] != 0x04) //校验数据长度
  2244. {
  2245. receive_error = 1;
  2246. }
  2247. else if(ModbusCRC != LIB_CRC_MODBUS(USART1_RX_BUF002,7)) //校验CRC
  2248. {
  2249. receive_error = 1;
  2250. }
  2251. if((USART1_RX_BUF002[head+1] == 0x03)&&(receive_error == 0)) //读取数据返回
  2252. {
  2253. AGL_AddNewData((USART1_RX_BUF002[head+3]<<8)|USART1_RX_BUF002[head+4],USART1_RX_BUF002[head]);
  2254. if(rkxg_cnt < RKG_BUF_DEP)
  2255. {
  2256. prkg[USART1_RX_BUF002[head] - 0x40].RKG_XGData[rkxg_cnt] = USART1_RX_BUF002[head+4]<<8;
  2257. prkg[USART1_RX_BUF002[head] - 0x40].RKG_XGData[rkxg_cnt] |= USART1_RX_BUF002[head+3];
  2258. rkxg_cnt++;
  2259. }
  2260. if(rkxg_cnt == RKG_BUF_DEP)
  2261. {
  2262. rkxg_cnt = 0;
  2263. }
  2264. }
  2265. else if((USART1_RX_BUF002[head+1] == 0x06)&&(receive_error == 0)) //写入数据返回
  2266. {
  2267. }
  2268. i001 = 6;
  2269. continue;
  2270. }
  2271. else if(USART1_RX_BUF002[0] >= 0x50 && USART1_RX_BUF002[0] <= 0x5F) //液位计数据 邵磊明增加
  2272. {
  2273. if(pcang->Level == 1) //磁致伸缩传感器接收数据 邵磊明增加
  2274. {
  2275. plevel[USART1_RX_BUF002[0]-0x50].RTData_Num = 1;//液位计信息数量
  2276. plevel[USART1_RX_BUF002[0]-0x50].Level_ErrorCnt = 0;
  2277. if(USART1_RX_BUF002[1]!=0x04) //校验功能码USART1_RX_BUF002[1]!=0x04&&..
  2278. {
  2279. receive_error = 1;
  2280. }
  2281. else if(USART1_RX_BUF002[2] != 0x20) //校验数据长度
  2282. {
  2283. receive_error = 1;
  2284. }
  2285. else if(ModbusCRC != LIB_CRC_MODBUS(USART1_RX_BUF002,35)) //校验CRC
  2286. {
  2287. receive_error = 1;
  2288. }
  2289. if((USART1_RX_BUF002[head+1] == 0x04)&&(receive_error == 0)) //读取返回雷达数据 slm
  2290. {
  2291. hex_to_float.arr[0] = USART1_RX_BUF002[5];
  2292. hex_to_float.arr[1] = USART1_RX_BUF002[6];
  2293. hex_to_float.arr[2] = USART1_RX_BUF002[3];
  2294. hex_to_float.arr[3] = USART1_RX_BUF002[4];
  2295. plevel[USART1_RX_BUF002[head]-0x50].Level_Data = hex_to_float.QDGH_data_temp;
  2296. hex_to_float.arr[0] = USART1_RX_BUF002[13];
  2297. hex_to_float.arr[1] = USART1_RX_BUF002[14];
  2298. hex_to_float.arr[2] = USART1_RX_BUF002[11];
  2299. hex_to_float.arr[3] = USART1_RX_BUF002[12];
  2300. plevel[USART1_RX_BUF002[head]-0x50].Avr_temp = hex_to_float.QDGH_data_temp;
  2301. hex_to_float.arr[0] = USART1_RX_BUF002[17];
  2302. hex_to_float.arr[1] = USART1_RX_BUF002[18];
  2303. hex_to_float.arr[2] = USART1_RX_BUF002[15];
  2304. hex_to_float.arr[3] = USART1_RX_BUF002[16];
  2305. plevel[USART1_RX_BUF002[head]-0x50].Avr_temp = hex_to_float.QDGH_data_temp;
  2306. hex_to_float.arr[0] = USART1_RX_BUF002[21];
  2307. hex_to_float.arr[1] = USART1_RX_BUF002[22];
  2308. hex_to_float.arr[2] = USART1_RX_BUF002[19];
  2309. hex_to_float.arr[3] = USART1_RX_BUF002[20];
  2310. plevel[USART1_RX_BUF002[head]-0x50].Bdot_temp = hex_to_float.QDGH_data_temp;
  2311. hex_to_float.arr[0] = USART1_RX_BUF002[25];
  2312. hex_to_float.arr[1] = USART1_RX_BUF002[26];
  2313. hex_to_float.arr[2] = USART1_RX_BUF002[23];
  2314. hex_to_float.arr[3] = USART1_RX_BUF002[24];
  2315. plevel[USART1_RX_BUF002[head]-0x50].Cdot_temp = hex_to_float.QDGH_data_temp;
  2316. }
  2317. else if((USART1_RX_BUF002[head+1] == 0x06)&&(receive_error == 0)) //写入数据返回
  2318. {
  2319. }
  2320. }
  2321. else if(pcang->Level == 2) //雷达液位传感器接收数据 邵磊明增加
  2322. {
  2323. plevel[USART1_RX_BUF002[0]-0x50].RTData_Num = 1;//液位计信息数量
  2324. plevel[USART1_RX_BUF002[0]-0x50].Level_ErrorCnt = 0;
  2325. if(USART1_RX_BUF002[1]!=0x04) //校验功能码USART1_RX_BUF002[1]!=0x04&&..
  2326. {
  2327. receive_error = 1;
  2328. }
  2329. else if(USART1_RX_BUF002[2] != 0x04) //校验数据长度
  2330. {
  2331. receive_error = 1;
  2332. }
  2333. else if(ModbusCRC != LIB_CRC_MODBUS(USART1_RX_BUF002,7)) //校验CRC
  2334. {
  2335. receive_error = 1;
  2336. }
  2337. pcang->CRC1 = LIB_CRC_MODBUS(USART1_RX_BUF002,7);
  2338. if((USART1_RX_BUF002[head+1] == 0x04)&&(receive_error == 0)) //读取返回雷达数据 slm
  2339. {//液位计数据 液位仪数据
  2340. hex_to_float.arr[0] = USART1_RX_BUF002[4];
  2341. hex_to_float.arr[1] = USART1_RX_BUF002[3];
  2342. hex_to_float.arr[2] = USART1_RX_BUF002[6];
  2343. hex_to_float.arr[3] = USART1_RX_BUF002[5];
  2344. plevel[USART1_RX_BUF002[head]-0x50].Level_Data = hex_to_float.QDGH_data_temp;
  2345. }
  2346. else if((USART1_RX_BUF002[head+1] == 0x06)&&(receive_error == 0)) //写入数据返回
  2347. {
  2348. }
  2349. }
  2350. i001 = 9;
  2351. continue;
  2352. }
  2353. else if(USART1_RX_BUF002[0] >=0x60 && USART1_RX_BUF002[0] <= 0x6f) //华天三点式温度传感器接收数据 邵磊明增加
  2354. {
  2355. ptem[CMD_GetTempHuaTian[0] - 0x60].RTData_Num = 1;//三点测温
  2356. ptem[CMD_GetTempHuaTian[0] - 0x60].TEM_ErrorCnt = 0;
  2357. if(USART1_RX_BUF002[1]!=0x03&&USART1_RX_BUF002[1]!=0x06) //校验读写属性
  2358. {
  2359. receive_error = 1;
  2360. }
  2361. else if(USART1_RX_BUF002[2] != 0x02) //校验数据长度
  2362. {
  2363. receive_error = 1;
  2364. }
  2365. else if(ModbusCRC != LIB_CRC_MODBUS(USART1_RX_BUF002,5)) //校验CRC
  2366. {
  2367. receive_error = 1;
  2368. }
  2369. else if((USART1_RX_BUF002[head+1] == 0x03)&&(receive_error == 0))
  2370. {
  2371. if(pcang->Temperture==1) //1点
  2372. {
  2373. ptem[USART1_RX_BUF002[head]-0x60].TEM_HData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2374. ptem[USART1_RX_BUF002[head]-0x60].TEM_MData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2375. ptem[USART1_RX_BUF002[head]-0x60].TEM_LData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2376. }
  2377. else if(pcang->Temperture==3) //1点
  2378. {
  2379. i = USART1_RX_BUF002[head]-0x61;
  2380. switch (i%3)
  2381. {
  2382. case 0:
  2383. ptem[(i/3)+1].TEM_HData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2384. break;
  2385. case 1:
  2386. ptem[(i/3)+1].TEM_MData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2387. break;
  2388. case 2:
  2389. ptem[(i/3)+1].TEM_LData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2390. break;
  2391. default:
  2392. break;
  2393. }
  2394. }
  2395. #if 0
  2396. switch(USART1_RX_BUF002[head])//pcang->Temperture&0xFF
  2397. {
  2398. case 0x61:
  2399. ptem[USART1_RX_BUF002[head]-0x60].TEM_HData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2400. break;
  2401. case 0x62:
  2402. ptem[USART1_RX_BUF002[head]-0x61].TEM_MData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2403. break;
  2404. case 0x63:
  2405. ptem[USART1_RX_BUF002[head]-0x62].TEM_LData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2406. break;
  2407. case 0x64:
  2408. ptem[USART1_RX_BUF002[head]-0x62].TEM_HData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2409. break;
  2410. case 0x65:
  2411. ptem[USART1_RX_BUF002[head]-0x63].TEM_MData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2412. break;
  2413. case 0x66:
  2414. ptem[USART1_RX_BUF002[head]-0x64].TEM_LData[1] = USART1_RX_BUF002[3]<<8|USART1_RX_BUF002[4];
  2415. break;
  2416. default:
  2417. break;
  2418. }
  2419. #endif
  2420. }
  2421. i001 = 0;
  2422. continue;
  2423. }
  2424. else if(0) //暂未使用
  2425. {
  2426. }
  2427. else if(0) //暂未使用
  2428. {
  2429. }
  2430. }
  2431. else
  2432. {
  2433. if (i001 == 2)
  2434. {
  2435. if(pcang->RKG_Type == 0)
  2436. {
  2437. if(CMD_RKG[0] == 0x1)
  2438. {
  2439. i = 0;
  2440. }
  2441. else
  2442. {
  2443. i = i003;
  2444. }
  2445. }
  2446. else
  2447. {
  2448. if(CMD_RKG[0] == 0x31)
  2449. {
  2450. i = rkgaddr_max;
  2451. }
  2452. else
  2453. {
  2454. i = CMD_RKG[0] - 0x31;
  2455. }
  2456. }
  2457. prkg[i].RKDG_ErrorCnt++;
  2458. if (prkg[i].RKDG_ErrorCnt > pcang->sensorBusMaxReTry)
  2459. {
  2460. prkg[i].RKDG_ErrorCnt = pcang->sensorBusMaxReTry + 1;
  2461. prkg[i].RKDG_Error = 1;
  2462. }
  2463. }
  2464. if (i001 == 8) //液位错误
  2465. {
  2466. if(pcang->Level == 1)
  2467. {
  2468. i = CMD_GetTempAndYewei[0];
  2469. }
  2470. else if(pcang->Level == 2)
  2471. {
  2472. i = CMD_LDYW[0];
  2473. }
  2474. if(pcang->Level)
  2475. {
  2476. if(i==0x51)
  2477. {
  2478. i = leveladdr_max;
  2479. }
  2480. else
  2481. {
  2482. i = i - 0x51;
  2483. }
  2484. plevel[i].Level_ErrorCnt++;
  2485. }
  2486. }
  2487. }
  2488. if(i001<0x0c)
  2489. i001++;
  2490. else
  2491. i001 = 0;
  2492. osDelay(40);
  2493. }
  2494. /* USER CODE END StartTask03 */
  2495. }
  2496. /* USER CODE BEGIN Header_StartTask04 */
  2497. /**
  2498. * @brief Function implementing the myTask04 thread.
  2499. * @param argument: Not used
  2500. * @retval None
  2501. */
  2502. #include "Data_deal.h"
  2503. uint8_t USART2_RX_BUF003[128];
  2504. uint8_t F_STATE[70] = {0};
  2505. uint8_t ptxCang01Temp[150];
  2506. uint32_t KZQ_RTerror = 0;
  2507. /* USER CODE END Header_StartTask04 */
  2508. void StartTask04(void *argument) //控制器数据处理 uart2
  2509. {
  2510. /* USER CODE BEGIN StartTask04 */
  2511. /* Infinite loop */
  2512. uint8_t* ptx = CMD_KZQ;
  2513. uint16_t ModbusCRC = 0,SetSuccess = 0,ModbusCRC1 = 0,SetSuccess1 = 0,SetSuccess2=0,SetSuccess3=0;
  2514. static uint16_t i = 0;
  2515. int i000;
  2516. uint8_t* send_ptr;
  2517. uint16_t send_len;
  2518. uint32_t tmpU32;
  2519. KZQ_Inf* pkzq = &kzq_inf;
  2520. extern uint8_t USART2_RX_BUF002[Uart2_BUF_SIZE];
  2521. extern int data_lengthU2;
  2522. extern int flagU2Rx;
  2523. extern uint8_t USART2_RX_BUF002_print[Uart2_BUF_SIZE];
  2524. /* Infinite loop */
  2525. for(;;)
  2526. {
  2527. osDelay(50); //以ms为单位
  2528. // HAL_GPIO_TogglePin(GPIOA,GPIO_PIN_0);
  2529. HAL_GPIO_TogglePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin);
  2530. if (flagU2Rx == 1)
  2531. {
  2532. flagU2Rx = 0;
  2533. if ((rx1_len > 300) || ((USART2_RX_BUF002[0] == 0xa5) && (USART2_RX_BUF002[1] == 0x5a)))
  2534. {
  2535. tmpU32 = (USART2_RX_BUF002[0] << 24) | (USART2_RX_BUF002[1] << 16) | (USART2_RX_BUF002[2] << 8) | (USART2_RX_BUF002[3]);
  2536. if (StartBytes_IAP == tmpU32)
  2537. {
  2538. Process_CMD_IAP_Update();
  2539. continue;
  2540. }
  2541. }
  2542. // KZQ_RTerror = 0;
  2543. // ASC转换为16进制,收到数据为:3901开头的数据总长度131字节
  2544. if ((USART2_RX_BUF002[0] == 0x3A) && (USART2_RX_BUF002[1] == 0x33) && (USART2_RX_BUF002[2] == 0x39) && (USART2_RX_BUF002[3] == 0x30)) //判断帧头
  2545. {
  2546. if (data_lengthU2 != 131)
  2547. {
  2548. ++KZQ_RTerror;
  2549. continue;
  2550. }
  2551. for (i000 = 0; i000 < (data_lengthU2 - 3) / 2; i000++)
  2552. {
  2553. T2C_RemoteCaliDat001.PayLoadData[i000] = MODBUS_ASCII_AsciiToHex(USART2_RX_BUF002 + 1 + 0 + i000 * 2);
  2554. USART2_RX_BUF003[i000] = MODBUS_ASCII_AsciiToHex(USART2_RX_BUF002 + 1 + 0 + i000 * 2);
  2555. }
  2556. //解析后的数据拷贝过来
  2557. memcpy(USART2_RX_BUF002, USART2_RX_BUF003, (data_lengthU2 - 3) / 2);
  2558. data_lengthU2 = (data_lengthU2 - 3) / 2;
  2559. }
  2560. if (data_lengthU2 < 5)
  2561. continue;
  2562. ModbusCRC = USART2_RX_BUF002[data_lengthU2 - 1] << 8;
  2563. ModbusCRC |= USART2_RX_BUF002[data_lengthU2 - 2];
  2564. ModbusCRC1 = LIB_CRC_MODBUS(USART2_RX_BUF002, data_lengthU2 - 2);
  2565. if ((USART2_RX_BUF002[0] != 0x39) && (USART2_RX_BUF002[1] <= 0x01) && (USART2_RX_BUF002[2] <= 0x95) && (USART2_RX_BUF002[3] <= 0x50)) //判断帧头
  2566. {
  2567. pkzq->KZQ_Error++;
  2568. KZQ_RTerror = 1;
  2569. }
  2570. else if (USART2_RX_BUF002[5] != 0x01) //校验地址
  2571. {
  2572. pkzq->KZQ_Error++;
  2573. KZQ_RTerror = 1;
  2574. }
  2575. else if ((USART2_RX_BUF002[7] != 0x03) && (USART2_RX_BUF002[7] != 0x06)) //校验数据长度
  2576. {
  2577. pkzq->KZQ_Error++;
  2578. KZQ_RTerror = 1;
  2579. }
  2580. /*else if(ModbusCRC != ModbusCRC1) //校验CRC
  2581. {
  2582. pkzq->KZQ_Error++;
  2583. KZQ_RTerror = 1;
  2584. }*/
  2585. else
  2586. {
  2587. pkzq->KZQ_Error = 0;
  2588. KZQ_RTerror = 0;
  2589. for (i = 0; i < 64; i++)
  2590. pkzq->data_buf[i] = USART2_RX_BUF002[i];
  2591. for(i = 0;i < 16;i++)
  2592. ptx[i] = USART2_RX_BUF002[i];
  2593. }
  2594. if(KZQ_RTerror == 0)
  2595. {
  2596. pkzq->sensor_reg = USART2_RX_BUF002[8];
  2597. pkzq->sensor_reg = pkzq->sensor_reg<<8;
  2598. pkzq->sensor_reg |= USART2_RX_BUF002[9];
  2599. switch(pkzq->sensor_reg)
  2600. {
  2601. case 0x10: RstCPU(); //复位
  2602. break;
  2603. case 0x11:
  2604. break;
  2605. case 0x12:
  2606. break;
  2607. case 0x13: Sen_CangState_old(F_STATE); //老协议 传输阀门状态
  2608. break;
  2609. case 0x20: SetSuccess = Read_CangState(ptx); //读取仓状态
  2610. break;
  2611. case 0x21:
  2612. break;
  2613. case 0x22:
  2614. break;
  2615. case 0x23:
  2616. break;
  2617. case 0x24:
  2618. break;
  2619. case 0x25:
  2620. break;
  2621. case 0x26:
  2622. break;
  2623. case 0x27: SetSuccess = Read_CangSensorData(ptx); //读取仓传感器
  2624. break;
  2625. case 0x28:
  2626. break;
  2627. case 0x29:
  2628. break;
  2629. case 0x40: SetSuccess = Angle_SetZero(ptx); //姿态传感器置零
  2630. for(i = 0;i < 64;i++)
  2631. ptx[i] = USART2_RX_BUF002[i];
  2632. break;
  2633. case 0x41:
  2634. break;
  2635. case 0x42:
  2636. break;
  2637. case 0x43:
  2638. break;
  2639. case 0x50: SetSuccess = XYF_SetOFF(ptx); //远程卸油阀标定关 slm
  2640. for(i = 0;i < 64;i++)
  2641. ptx[i] = USART2_RX_BUF002[i];
  2642. break;
  2643. case 0x51: SetSuccess = XYF_SetThreshold(ptx); //设置卸油阀传感器开关门限
  2644. break;
  2645. case 0x52: SetSuccess = RKG_SetZero(ptx); //人孔盖传感器置零
  2646. for(i = 0;i < 64;i++)
  2647. ptx[i] = USART2_RX_BUF002[i];
  2648. break;
  2649. case 0x53:
  2650. break;
  2651. case 0x54:
  2652. break;
  2653. case 0x55: SetSuccess = Read_Sensor(ptx); // 远程读取传感器数据 slm
  2654. break;
  2655. case 0x70:
  2656. break;
  2657. case 0x71: SetSuccess = BGY_SetThreshold(ptx); //设置壁挂油门限
  2658. break;
  2659. case 0x72: SetSuccess = RKG_SetThreshold(ptx); //设置人孔盖开关门限
  2660. break;
  2661. case 0x73: SetSuccess = Sensor_SetJudgefNum(ptx); //设置开关判断次数
  2662. break;
  2663. case 0x74: SetSuccess = CJQ_SetConfig(ptx); //设置采集器参数
  2664. Flash_Change = 1;
  2665. break;
  2666. case 0x75: SetSuccess = RKG_SetTypeNum(ptx); //设置人孔盖种类、数量
  2667. Flash_Change = 1;
  2668. break;
  2669. case 0x76: SetSuccess = XYF_SetTypeNum(ptx); //设置卸油阀种类、数量
  2670. Flash_Change = 1;
  2671. break;
  2672. case 0x77: SetSuccess = HDF_SetTypeNum(ptx); //设置海底阀种类、数量
  2673. Flash_Change = 1;
  2674. break;
  2675. case 0x78: SetSuccess = Level_SetType(ptx); //设置液位计种类
  2676. Flash_Change = 1;
  2677. break;
  2678. case 0x79: SetSuccess = Angle_SetType(ptx); //设置姿态传感器种类
  2679. Flash_Change = 1;
  2680. break;
  2681. case 0x7a: SetSuccess = Tem_SetType(ptx); //设置温度传感器种类
  2682. // Flash_Change = 1;
  2683. break;
  2684. case 0x7b: HDF_Set_CloseVal(ptx); //设置智能海底阀放大倍数
  2685. Flash_Change = 1;
  2686. break;
  2687. case 0x7c: HDF_Set_Threshold(ptx); //设置智能海底阀放大倍数
  2688. Flash_Change = 1;
  2689. break;
  2690. case 0x7d: HDF_Set_Gain(ptx); //设置智能海底阀放大倍数
  2691. Flash_Change = 1;
  2692. break;
  2693. case 0x7e: HDF_Reset(ptx); //设置智能海底阀放大倍数
  2694. Flash_Change = 1;
  2695. break;
  2696. case 0x80: SetSuccess = RW_SensorBusMaxRetry(ptx); //传感器总线重试最大值来获取异常
  2697. break;
  2698. case 0x017e: TOUCHUAN_UART_NUM(ptx); //设置智能海底阀放大倍数
  2699. Flash_Change = 1;
  2700. break;
  2701. case 0x0180: SetSuccess = GRB_SET_Table(ptx); //罐容表配置 邵磊明增加
  2702. Flash_Change = 1;
  2703. break;
  2704. case 0x0190: SetSuccess = Level_SetCalvalue(ptx); //设置液位计零点 邵磊明增加
  2705. Flash_Change = 1;
  2706. case 0x0121: //SetSuccess = Level_SetCalvalue(ptx); //设置液位计种类
  2707. // Flash_Change = 1;
  2708. break;
  2709. case 0x0122://SetSuccess = Level_SetCalvalue(ptx); //设置液位计种类
  2710. // Flash_Change = 1;
  2711. break;
  2712. case 0x0220:
  2713. SetSuccess=Read_SoftVersion(ptx);
  2714. break;
  2715. case 0x1121:
  2716. SetSuccess1 = Read_CangSensorData_1to4(ptx); //读仓1-4传感器
  2717. break;
  2718. case 0x1193:
  2719. SetSuccess2 = Read_CangSensorData_1(ptx); //读仓1传感器
  2720. break;
  2721. case 0x1194:
  2722. SetSuccess2 = Read_CangSensorData_2(ptx); //读仓2传感器
  2723. break;
  2724. case 0x1195:
  2725. SetSuccess2 = Read_CangSensorData_3(ptx); //读仓3传感器
  2726. break;
  2727. case 0x1196:
  2728. SetSuccess2 = Read_CangSensorData_4(ptx); //读仓4传感器
  2729. break;
  2730. case 0x1197:
  2731. SetSuccess2 = Read_CangSensorData_5(ptx); //读仓5传感器
  2732. break;
  2733. case 0x1198:
  2734. SetSuccess2 = Read_CangSensorData_6(ptx); //读仓6传感器
  2735. break;
  2736. case 0x1199:
  2737. SetSuccess2 = Read_CangSensorData_7(ptx); //读仓7传感器
  2738. break;
  2739. case 0x119a:
  2740. SetSuccess2 = Read_CangSensorData_8(ptx); //读仓8传感器
  2741. break;
  2742. case 0x119b:
  2743. SetSuccess3 = Read_ZhencheSensorData1(ptx); //读仓1-4传感器
  2744. break;
  2745. default:
  2746. break;
  2747. }
  2748. send_len=0;
  2749. if(pkzq->sensor_reg == 0x13)
  2750. {
  2751. send_ptr = F_STATE;
  2752. send_len = 62;
  2753. }
  2754. else if(SetSuccess2)
  2755. {
  2756. SetSuccess2=0;
  2757. send_ptr = ptx;
  2758. send_len = 148;
  2759. }
  2760. else if(SetSuccess3)
  2761. {
  2762. SetSuccess3=0;
  2763. send_ptr = ptx;
  2764. send_len = 96;
  2765. }
  2766. else if(SetSuccess1)
  2767. {
  2768. SetSuccess1=0;
  2769. ptx[232] = 0x00;
  2770. ptx[233] = 0x00;
  2771. send_ptr = ptx;
  2772. send_len = 234;
  2773. }
  2774. else if(SetSuccess)
  2775. {
  2776. ptx[60] = 0x00;
  2777. ptx[61] = 0x00;
  2778. send_ptr = ptx;
  2779. send_len = 62;
  2780. }
  2781. else
  2782. {
  2783. ptx[60] = 0xFF;
  2784. ptx[61] = 0xFF;
  2785. send_ptr = ptx;
  2786. send_len = 62;
  2787. }
  2788. SetSuccess = 0;
  2789. if(send_len)
  2790. {
  2791. ModbusCRC = LIB_CRC_MODBUS(send_ptr,send_len);
  2792. send_ptr[send_len] = ModbusCRC>>8;
  2793. send_ptr[send_len+1] = ModbusCRC&0xff;
  2794. HAL_GPIO_WritePin(GPIOA,con03_uart2_kongzhiqi_Pin,GPIO_PIN_RESET);//
  2795. delay_sys_us(80);
  2796. HAL_UART_Transmit_IT(&huart2,send_ptr,send_len+2);
  2797. while (huart2.gState == HAL_UART_STATE_BUSY_TX)
  2798. {
  2799. osDelay(1);
  2800. }
  2801. delay_sys_us(80);
  2802. HAL_GPIO_WritePin(GPIOA,con03_uart2_kongzhiqi_Pin,GPIO_PIN_SET);//
  2803. }
  2804. }
  2805. flagU2Rx = 0;
  2806. }
  2807. }
  2808. /* USER CODE END StartTask04 */
  2809. }
  2810. /* USER CODE BEGIN Header_StartTask05 */
  2811. /**
  2812. * @brief Function implementing the myTask05 thread.
  2813. * @param argument: Not used
  2814. * @retval None
  2815. */
  2816. /* USER CODE END Header_StartTask05 */
  2817. #include"level.h"
  2818. void StartTask05(void *argument)
  2819. {
  2820. /* USER CODE BEGIN StartTask05 */
  2821. /* Infinite loop */
  2822. Level_Inf *plevel = level_inf;
  2823. Cang_Inf *pcang = &cang_inf;
  2824. uint8_t i;
  2825. float v000;
  2826. uint16_t *VolArrayTsk05 = Volume_1cang;
  2827. const uint16_t *HArrayTsk05 = H_1cang;
  2828. for (;;)
  2829. {
  2830. HAL_GPIO_TogglePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin);
  2831. AGL_JudgeState();
  2832. for (i = 0; i < pcang->Cang_Num+1; i++)
  2833. {
  2834. // Value_Manage(i);
  2835. // for(uint8_t i = 0;i < 5;i++)
  2836. {
  2837. switch (i)
  2838. {
  2839. case 0:
  2840. VolArrayTsk05 = Volume_1cang;
  2841. HArrayTsk05 = H_1cang;
  2842. break;
  2843. case 1:
  2844. VolArrayTsk05 = Volume_1cang;
  2845. HArrayTsk05 = H_1cang;
  2846. break;
  2847. case 2:
  2848. VolArrayTsk05 = Volume_2cang;
  2849. HArrayTsk05 = H_2cang;
  2850. break;
  2851. case 3:
  2852. VolArrayTsk05 = Volume_3cang;
  2853. HArrayTsk05 = H_3cang;
  2854. break;
  2855. case 4:
  2856. VolArrayTsk05 = Volume_4cang;
  2857. HArrayTsk05 = H_4cang;
  2858. break;
  2859. default:
  2860. VolArrayTsk05 = Volume_4cang;
  2861. HArrayTsk05 = H_4cang;
  2862. break;
  2863. }
  2864. v000 = Calc_Vol(plevel[i].Level_Data, VolArrayTsk05, HArrayTsk05, i);
  2865. plevel[i].Volume_Data = v000;
  2866. DF_State(i);
  2867. // BGY_state(i);
  2868. osDelay(100);
  2869. }
  2870. }
  2871. }
  2872. /* USER CODE END StartTask05 */
  2873. }
  2874. /* USER CODE BEGIN Header_StartTask06 */
  2875. /**
  2876. * @brief Function implementing the myTask06 thread.
  2877. * @param argument: Not used
  2878. * @retval None
  2879. */
  2880. /* USER CODE END Header_StartTask06 */
  2881. void StartTask06(void *argument)
  2882. {
  2883. /* USER CODE BEGIN StartTask06 */
  2884. /* Infinite loop */
  2885. for(;;)
  2886. {
  2887. osDelay(1);
  2888. }
  2889. /* USER CODE END StartTask06 */
  2890. }
  2891. /* USER CODE BEGIN Header_StartTask07 */
  2892. /**
  2893. * @brief Function implementing the myTask07 thread.
  2894. * @param argument: Not used
  2895. * @retval None
  2896. */
  2897. /* USER CODE END Header_StartTask07 */
  2898. void StartTask07(void *argument)
  2899. {
  2900. /* USER CODE BEGIN StartTask07 */
  2901. /* Infinite loop */
  2902. for(;;)
  2903. {
  2904. osDelay(1);
  2905. }
  2906. /* USER CODE END StartTask07 */
  2907. }
  2908. /* USER CODE BEGIN Header_StartTask08 */
  2909. /**
  2910. * @brief Function implementing the myTask08 thread.
  2911. * @param argument: Not used
  2912. * @retval None
  2913. */
  2914. /* USER CODE END Header_StartTask08 */
  2915. void StartTask08(void *argument)
  2916. {
  2917. /* USER CODE BEGIN StartTask08 */
  2918. /* Infinite loop */
  2919. for(;;)
  2920. {
  2921. osDelay(1);
  2922. }
  2923. /* USER CODE END StartTask08 */
  2924. }
  2925. /* USER CODE BEGIN Header_StartTask09 */
  2926. /**
  2927. * @brief Function implementing the myTask09 thread.
  2928. * @param argument: Not used
  2929. * @retval None
  2930. */
  2931. /* USER CODE END Header_StartTask09 */
  2932. void StartTask09(void *argument)
  2933. {
  2934. /* USER CODE BEGIN StartTask09 */
  2935. /* Infinite loop */
  2936. for(;;)
  2937. {
  2938. osDelay(1);
  2939. }
  2940. /* USER CODE END StartTask09 */
  2941. }
  2942. /* USER CODE BEGIN Header_StartTask10 */
  2943. /**
  2944. * @brief Function implementing the myTask10 thread.
  2945. * @param argument: Not used
  2946. * @retval None
  2947. */
  2948. /* USER CODE END Header_StartTask10 */
  2949. void StartTask10(void *argument)
  2950. {
  2951. /* USER CODE BEGIN StartTask10 */
  2952. /* Infinite loop */
  2953. for(;;)
  2954. {
  2955. osDelay(1);
  2956. }
  2957. /* USER CODE END StartTask10 */
  2958. }
  2959. /* USER CODE BEGIN Header_StartTask11 */
  2960. /**
  2961. * @brief Function implementing the myTask11 thread.
  2962. * @param argument: Not used
  2963. * @retval None
  2964. */
  2965. /* USER CODE END Header_StartTask11 */
  2966. void StartTask11(void *argument)
  2967. {
  2968. /* USER CODE BEGIN StartTask11 */
  2969. /* Infinite loop */
  2970. for(;;)
  2971. {
  2972. osDelay(1);
  2973. }
  2974. /* USER CODE END StartTask11 */
  2975. }
  2976. /* USER CODE BEGIN Header_StartTask12 */
  2977. /**
  2978. * @brief Function implementing the myTask12 thread.
  2979. * @param argument: Not used
  2980. * @retval None
  2981. */
  2982. /* USER CODE END Header_StartTask12 */
  2983. void StartTask12(void *argument)
  2984. {
  2985. /* USER CODE BEGIN StartTask12 */
  2986. /* Infinite loop */
  2987. for(;;)
  2988. {
  2989. osDelay(500);
  2990. usage_Tsk12++;
  2991. HAL_GPIO_TogglePin(GPIOA,GPIO_PIN_0);
  2992. HAL_GPIO_TogglePin(WDI_sp706_kanmemgou_GPIO_Port, WDI_sp706_kanmemgou_Pin);
  2993. }
  2994. /* USER CODE END StartTask12 */
  2995. }
  2996. /* Callback01 function */
  2997. void Callback01(void *argument)
  2998. {
  2999. /* USER CODE BEGIN Callback01 */
  3000. /* USER CODE END Callback01 */
  3001. }
  3002. /* Callback02 function */
  3003. void Callback02(void *argument)
  3004. {
  3005. /* USER CODE BEGIN Callback02 */
  3006. /* USER CODE END Callback02 */
  3007. }
  3008. /* Callback03 function */
  3009. void Callback03(void *argument)
  3010. {
  3011. /* USER CODE BEGIN Callback03 */
  3012. /* USER CODE END Callback03 */
  3013. }
  3014. /* Callback04 function */
  3015. void Callback04(void *argument)
  3016. {
  3017. /* USER CODE BEGIN Callback04 */
  3018. /* USER CODE END Callback04 */
  3019. }
  3020. /* Callback05 function */
  3021. void Callback05(void *argument)
  3022. {
  3023. /* USER CODE BEGIN Callback05 */
  3024. /* USER CODE END Callback05 */
  3025. }
  3026. /* Callback06 function */
  3027. void Callback06(void *argument)
  3028. {
  3029. /* USER CODE BEGIN Callback06 */
  3030. /* USER CODE END Callback06 */
  3031. }
  3032. /* Callback07 function */
  3033. void Callback07(void *argument)
  3034. {
  3035. /* USER CODE BEGIN Callback07 */
  3036. /* USER CODE END Callback07 */
  3037. }
  3038. /* Callback08 function */
  3039. void Callback08(void *argument)
  3040. {
  3041. /* USER CODE BEGIN Callback08 */
  3042. /* USER CODE END Callback08 */
  3043. }
  3044. /* Callback09 function */
  3045. void Callback09(void *argument)
  3046. {
  3047. /* USER CODE BEGIN Callback09 */
  3048. /* USER CODE END Callback09 */
  3049. }
  3050. /* Callback010 function */
  3051. void Callback010(void *argument)
  3052. {
  3053. /* USER CODE BEGIN Callback010 */
  3054. /* USER CODE END Callback010 */
  3055. }
  3056. /**
  3057. * @brief Period elapsed callback in non blocking mode
  3058. * @note This function is called when TIM8 interrupt took place, inside
  3059. * HAL_TIM_IRQHandler(). It makes a direct call to HAL_IncTick() to increment
  3060. * a global variable "uwTick" used as application time base.
  3061. * @param htim : TIM handle
  3062. * @retval None
  3063. */
  3064. void HAL_TIM_PeriodElapsedCallback(TIM_HandleTypeDef *htim)
  3065. {
  3066. /* USER CODE BEGIN Callback 0 */
  3067. /* USER CODE END Callback 0 */
  3068. if (htim->Instance == TIM8) {
  3069. HAL_IncTick();
  3070. }
  3071. /* USER CODE BEGIN Callback 1 */
  3072. /* USER CODE END Callback 1 */
  3073. }
  3074. /**
  3075. * @brief This function is executed in case of error occurrence.
  3076. * @retval None
  3077. */
  3078. void Error_Handler(void)
  3079. {
  3080. /* USER CODE BEGIN Error_Handler_Debug */
  3081. /* User can add his own implementation to report the HAL error return state */
  3082. __disable_irq();
  3083. while (1)
  3084. {
  3085. }
  3086. /* USER CODE END Error_Handler_Debug */
  3087. }
  3088. #ifdef USE_FULL_ASSERT
  3089. /**
  3090. * @brief Reports the name of the source file and the source line number
  3091. * where the assert_param error has occurred.
  3092. * @param file: pointer to the source file name
  3093. * @param line: assert_param error line source number
  3094. * @retval None
  3095. */
  3096. void assert_failed(uint8_t *file, uint32_t line)
  3097. {
  3098. /* USER CODE BEGIN 6 */
  3099. /* User can add his own implementation to report the file name and line number,
  3100. ex: printf("Wrong parameters value: file %s on line %d\r\n", file, line) */
  3101. /* USER CODE END 6 */
  3102. }
  3103. #endif /* USE_FULL_ASSERT */
  3104. /************************ (C) COPYRIGHT STMicroelectronics *****END OF FILE****/