tdc_ms1030.c 13 KB

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  1. #include "board.h"
  2. #include "tdc_tof.h"
  3. #define ANZ_FIRE 12u//fire发送脉冲数
  4. #define DIV_FIRE 3u //内部时钟产生脉冲的分频
  5. #define DIV_CLKHS 0u //高速时钟分频
  6. #define START_CLKHS 0u //高速启动后测量前晶振启动间隔时间,120us
  7. #define NEG_START 0u //start通道边缘
  8. #define NEG_STOP 0u //stop通道边缘
  9. #define HITIN 9u //stop预期脉冲数
  10. #define SEL_TIMO_MB 3u //测量范围溢出时间暂未确定数值
  11. #define SEL_TSTO2 3u //32khz //和MS1030不同
  12. #define SEL_TSTO1 0u //暂时不用这个引脚,配置为高速时钟输入模式
  13. #define DFLT_WREG0 ((ANZ_FIRE<<25) | \
  14. ( DIV_FIRE<<19) | \
  15. ( DIV_CLKHS<<17) | \
  16. ( START_CLKHS<<14) | \
  17. ( NEG_START<<13) | \
  18. ( NEG_STOP<<12) | \
  19. ( HITIN<< 8) | \
  20. ( SEL_TIMO_MB<< 4) | \
  21. ( SEL_TSTO2<< 2) | \
  22. ( SEL_TSTO1<< 0))
  23. #define EN_INT_TO 0 //TIMOUT中断触发位
  24. #define EN_INT_HIT 0 //END HITS中断触发位
  25. #define EN_INT_ALU 0 //alu中断触发位
  26. #define RFEDGE 0 //stop通道边沿敏感性
  27. #define UP_DELVAL1 0 //当EN_FIST_WAVE=1时,为第一波屏蔽窗口 BIT12~27 暂未设置
  28. #define OFFSET 0 //当en_hc=1时, 62~-64mV 暂未设置
  29. #define DFLT_WREG1 (( EN_INT_TO<<31) | \
  30. ( EN_INT_HIT<<30) | \
  31. ( EN_INT_ALU<<29) | \
  32. ( RFEDGE<<28) | \
  33. ( UP_DELVAL1<<12) | \
  34. ( OFFSET<< 0))
  35. #define EN_FIRST_WAVE 0u //BIT31, 为1时后面的定义有效
  36. #define EDGE_FW 0u //第一波边缘敏感性
  37. #define DELREL1 6u //第1个stop接收第几个回波周期
  38. #define DELREL2 8u //第2个stop接收第几个回波周期
  39. #define DELREL3 10u //第3个stop接收第几个回波周期
  40. #define DELREL4 12u //第4个stop接收第几个回波周期
  41. #define DELREL5 14u //第5个stop接收第几个回波周期
  42. #define DFLT_WREG2 ((EDGE_FW<<30) | \
  43. (DELREL1<<24) | \
  44. (DELREL2<<18) | \
  45. (DELREL3<<12) | \
  46. (DELREL4<< 6) | \
  47. (DELREL5<< 0))
  48. #define DELREL6 16u //第3个stop接收第几个回波周期
  49. #define DELREL7 18u //第4个stop接收第几个回波周期
  50. #define DELREL8 20u //第5个stop接收第几个回波周期
  51. #define DIS_PW 1u //关闭脉冲宽度测量功能,0=开启
  52. #define WAVE_OFFS 0u //第一波比较器偏置电压:EN_HC = 0 -64mV~63mV,10mv
  53. #define DFLT_WREG3 ((DELREL6<<26) | \
  54. (DELREL7<<20) | \
  55. (DELREL8<<14) | \
  56. (DIS_PW<<13) | \
  57. (WAVE_OFFS<<6))
  58. #define CONF_FIRE 2 //脉冲触发器的输出设置,暂时设置为0 bit29~31
  59. #define PHASE_FIREUP 0 //FIREUP反向设置
  60. #define PHASE_FIREDOWN 0 //FIREDOWN反向设置
  61. #define SEL_START_FIRE 1 //FIRE脉冲用作触发TDCSTART
  62. #define EN_ANALOG 0 //模拟测量控制开关
  63. #define HZ60 0 //顺流测量和逆流测量的时间单位
  64. #define TCYCLE 1 //温度测量循环时间
  65. #define ANZ_FAKE 1 //温度测量热身次数,0:两次热身,1:7次热身
  66. #define SEL_ECLK_TMP 1 //选择温度测量内部参考时钟
  67. #define TW2 4 //120us充电时间,与1030不同
  68. #define EN_PEAK 0 //峰值检波使能关闭,1030不同
  69. #define EN_DISCHARGE 0 //检波放电使能关闭,1030不同
  70. #define CYCLE_TOF 0 //顺流逆流自动检测模式下,顺流逆流测量间隔时间,初步确定为3=20ms 1030不同
  71. #define EN_ERR_VAL 1 //溢出时alu将全f写到结果寄存器
  72. #define EN_DC 0 //stop端口充电模式 这里设置为直流 1030不同
  73. #define FIRE0_DEF 1 //fire通道默认状态,fire通道默认电平
  74. #define DOUBLE_RES 0 //双精度模式
  75. #define QUAD_RES 0 //4精度模式
  76. #define DFLT_WREG4 (( CONF_FIRE<<29) | \
  77. ( PHASE_FIREUP<<28) | \
  78. ( PHASE_FIREDOWN<<27) | \
  79. ( SEL_START_FIRE<<26) | \
  80. ( EN_ANALOG<<25) | \
  81. ( HZ60<<24) | \
  82. ( TCYCLE<<23) | \
  83. ( ANZ_FAKE<<22) | \
  84. ( SEL_ECLK_TMP<<21) | \
  85. ( TW2<<17) | \
  86. ( EN_PEAK<<16) | \
  87. ( EN_DISCHARGE<<15) | \
  88. ( CYCLE_TOF<<11) | \
  89. ( EN_ERR_VAL<<10) | \
  90. ( EN_DC<<9) | \
  91. ( FIRE0_DEF<<8) | \
  92. ( DOUBLE_RES<<7) | \
  93. ( QUAD_RES<<6))
  94. #define CYCLE_AUTOTOF (250<<20) //自动测量循环时间 500ms
  95. #define ANZ_AUTOTOF (1<<16) //循环次数 一直开启
  96. #define AUTOTOF_MODE (0<<15) //顺逆顺逆
  97. #define PHASE_FIRENUM (3<<6) //插入相位位置
  98. #define ANZ_PHASE (8) //插入周期数
  99. #define DFLT_WREG5 0
  100. #define DOWN_DELVAL1 (200<<12) //逆流屏蔽窗口
  101. #define SEL_SRC_CLK (0<<7) //选择高速时钟输入源
  102. #define EN_HC (0<<6) //比较器调节步长
  103. #define CURR32K (0<<5) //32K晶振功耗设置
  104. #define DIS_Vref (1<<4) //基准电压输出控制
  105. #define ADJ_LDO_ROUGH (0<<3) //内部LDO输出粗调
  106. #define ADJ_LDO_FINE (4<<0) //内部LDO输出细调
  107. #define DFLT_WREG6 (DOWN_DELVAL1|SEL_SRC_CLK|EN_HC|CURR32K|DIS_Vref|ADJ_LDO_ROUGH|ADJ_LDO_FINE)
  108. uint16_t tof_state = TOF_ST_INIT;
  109. uint32_t tof_flag;
  110. //uint16_t CntSync = 0;
  111. void tdc_tof_init(void)
  112. {
  113. //MUX ADDA : PA08; ADDB : PC09
  114. mux_init();
  115. // MS1030 RSTN : PD02
  116. GpioInit(PD02_AF0, GPIO_DIG_OUT_WEAK_PUSH_NONEUP_NONEDOWN);
  117. GpioClrPins(GpioPortD, GpioBitMsk2); // reset active low
  118. us_delay(10); // 10us > tPH(30ns)
  119. GpioSetPins(GpioPortD, GpioBitMsk2); // reset release
  120. us_delay(10); // 10us > tRFS(30ns)
  121. tdc_spi_init(); // peripheral init
  122. PeriClk_MutEnable(PeriClk_Spi1);
  123. DMA_ReqClkOn();
  124. // TDC POR
  125. tdc_spi_wr_code(0x50);
  126. us_delay(1000); // 1000us > specification(500us)
  127. // tdc_spi_wr_d32(0x80, 0x1818088c); // 修正:SEL_TIMO_MB = 8(合法)
  128. // tdc_spi_wr_d32(0x81, 0x00000000);
  129. // tdc_spi_wr_d32(0x82, 0x00000000);
  130. // tdc_spi_wr_d32(0x83, 0x00000000);
  131. // tdc_spi_wr_d32(0x84, 0x46280540);
  132. // tdc_spi_wr_d32(0x85, 0x00000000);
  133. // tdc_spi_wr_d32(0x86, 0x0000001c);
  134. // 修正后的配置
  135. // tdc_spi_wr_code(0x70);
  136. // uint16_t aa=0;
  137. // aa=tdc_spi_rd_d16(0xd0);
  138. tdc_spi_wr_d32(0x80, DFLT_WREG0);
  139. uint32_t read_a0=tdc_spi_rd_d32(0xA0);
  140. read_a0=read_a0&0xFFu;
  141. #if 1
  142. tof_flag = TOF_FLAG_UNALGND_CHOP;
  143. if (read_a0!=(DFLT_WREG0&0xFFu)){
  144. tof_flag |= TOF_FLAG_TDC_FAULT;
  145. } else {
  146. // write_reg0
  147. tdc_spi_wr_d32(0x80, DFLT_WREG0);
  148. // write_reg1
  149. tdc_spi_wr_d32(0x81, DFLT_WREG1);
  150. // write_reg2
  151. tdc_spi_wr_d32(0x82, DFLT_WREG2);
  152. // write_reg3
  153. tdc_spi_wr_d32(0x83, DFLT_WREG3);
  154. // write_reg4
  155. tdc_spi_wr_d32(0x84, DFLT_WREG4);
  156. // write_reg5
  157. tdc_spi_wr_d32(0x85, DFLT_WREG5);
  158. // write_reg6
  159. tdc_spi_wr_d32(0x86, DFLT_WREG6);
  160. tdc_spi_wr_d32(0x87,0x20000000);//!!!!!!!!do not delete!!!!!!!!!
  161. tdc_spi_wr_code(0x70);
  162. tdc_spi_wr_code(0x06);
  163. // // not 'INTN' but 'us_delay' to avoid dead loop when INTN fault
  164. us_delay(2000); // > 480 + 600 + 16 + 70
  165. tdc_read_cal(0x0u);
  166. // tof_flag ^= TOF_FLAG_UNALGND_CHOP;
  167. // // start a single ToF to align MS1030 internal calibration order(1 CAL every 24 ToF)
  168. // // must be sure that CAL not in the middle of UP Tof and DOWN Tof
  169. // tdc_start_tof(TDC_CFG_DO_WREG | TDC_CFG_FIRE_UP);
  170. //
  171. // // not 'INTN' but 'us_delay' to avoid dead loop when INTN fault
  172. // us_delay(2000); // > 480 + 600 + 16 + 70
  173. //
  174. // tdc_read_tof(TDC_CFG_FIRE_UP); // read data and clear interrupt
  175. }
  176. #endif
  177. DMA_ReqClkOff();
  178. PeriClk_MutDisable(PeriClk_Spi1);
  179. // MS1030 INTN : PD03 falling edge trigger
  180. GpioInit(PD03_AF0, GPIO_DIG_IN_PULLUP_NONEDOWN);
  181. GpioEventInit(PD03_AF0, GPIO_EVENT_FALL);
  182. // enable interrupt at NVIC side
  183. IRQMutEnable(PORTD_F_IRQn, NVIC_PRIO_1);
  184. }
  185. void tdc_start_tof(uint32_t cfg)
  186. {
  187. //rt_enter_critical();
  188. uint32_t u32tmp;
  189. if (cfg & TDC_CFG_DO_CKENA){
  190. PeriClk_MutEnable(PeriClk_Spi1);
  191. DMA_ReqClkOn();
  192. }
  193. if (cfg & TDC_CFG_DO_WREG){
  194. // write_reg3
  195. u32tmp = DFLT_WREG3 |
  196. // ( 0u<<13) | // measure FW pulse width, 0:on; 1:off
  197. (TdcFwOfst<<6); // FW wave_offs, 0:0mv; 1~63:2~126mV; 64~127:-128~-2mV;
  198. // if (tof_state&TOF_ST_VOID){
  199. // u32tmp |= (1u<<13); // disable FW pulse width to save power
  200. // }
  201. tdc_spi_wr_d32(0x83, u32tmp);
  202. }
  203. // Initial TDC status regs
  204. tdc_spi_wr_code(0x70);
  205. // start single-direction measure
  206. tdc_spi_wr_code(0x03);
  207. if (cfg & TDC_CFG_DO_CKDIS){
  208. DMA_ReqClkOff();
  209. PeriClk_MutDisable(PeriClk_Spi1);
  210. }
  211. //rt_exit_critical();
  212. }
  213. uint16_t TdcStatus;
  214. uint16_t TdcUPwFw;
  215. uint16_t TdcUPwHw;
  216. uint32_t TdcUToF[9];
  217. uint16_t TdcDPwFw;
  218. uint16_t TdcDPwHw;
  219. uint32_t TdcDToF[9];
  220. uint32_t TdcCal;
  221. //float TdcScale = 250.0f/65536;
  222. float TdcScale = 0.00381147861f;
  223. uint32_t TdcPT[4];
  224. float TdcResist = 5000; // OhmX10
  225. //modified by yuewei 20260520
  226. //float WaterPrmt[2] = {25.0f, 1496.6f};
  227. float WaterPrmt[2] = {25.0f, 1497.1484f};
  228. void tdc_read_tof(uint32_t cfg)
  229. {
  230. // uint16_t i;
  231. if (cfg & TDC_CFG_DO_CKENA){
  232. PeriClk_MutEnable(PeriClk_Spi1);
  233. DMA_ReqClkOn();
  234. }
  235. TdcStatus = tdc_spi_rd_d16(0xd0); // 读取状态寄存器
  236. if ((TdcStatus&0x0300)==0x0000u){
  237. tof_flag ^= TOF_FLAG_UNALGND_CHOP;
  238. }
  239. if ((TdcStatus&0x03F0)!=0x0090u){
  240. tof_flag |= TOF_FLAG_BLANK_PIPE;
  241. // tdc_spi_wr_code(0x70);
  242. }
  243. else
  244. {
  245. TdcUPwFw = tdc_spi_rd_d16(0xd3); // First wave pulse width
  246. TdcUPwHw = tdc_spi_rd_d16(0xd4); // 1st Hit wave pulse width
  247. // TOF_UP_HITs
  248. TdcUToF[0] = tdc_spi_rd_d32(0xb8)*(1.0f/8); // average of all
  249. // TOF_DOWN_HITs
  250. TdcDToF[0] = tdc_spi_rd_d32(0xc8)*(1.0f/8); // average of all
  251. // for(i=0; i<8; i++){
  252. // TdcDToF[i+1] = tdc_spi_rd_d32(0xb0 + i);
  253. // };
  254. }
  255. if (cfg & TDC_CFG_DO_CKDIS){
  256. DMA_ReqClkOff();
  257. PeriClk_MutDisable(PeriClk_Spi1);
  258. }
  259. }
  260. void tdc_start_cal(uint32_t cfg)
  261. {
  262. //rt_enter_critical();
  263. if (cfg & TDC_CFG_DO_CKENA){
  264. PeriClk_MutEnable(PeriClk_Spi1);
  265. DMA_ReqClkOn();
  266. }
  267. // 8*T_32k = 244.140625us
  268. if (cfg & TDC_CFG_DO_WREG){
  269. // write_reg0
  270. tdc_spi_wr_d32(0x80, DFLT_WREG0 |
  271. ( 2u<< 4) // SEL_TIMO_MB, 0:64us; 1:128us; 2:256us; ~ 6:4096us;
  272. );
  273. // write_reg3
  274. tdc_spi_wr_d32(0x83, DFLT_WREG3 |
  275. ( 1u<<13) // measure FW pulse width, 0:on; 1:off
  276. );
  277. }
  278. tdc_spi_wr_code(0x70);
  279. tdc_spi_wr_code(0x06);
  280. if (cfg & TDC_CFG_DO_CKDIS){
  281. DMA_ReqClkOff();
  282. PeriClk_MutDisable(PeriClk_Spi1);
  283. }
  284. //rt_exit_critical();
  285. }
  286. void tdc_read_cal(uint32_t cfg)
  287. {
  288. //rt_enter_critical();
  289. if (cfg & TDC_CFG_DO_CKENA){
  290. PeriClk_MutEnable(PeriClk_Spi1);
  291. DMA_ReqClkOn();
  292. }
  293. TdcStatus = tdc_spi_rd_d16(0xd0); // status
  294. if ((TdcStatus&0x0300)==0x0000u){
  295. tof_flag ^= TOF_FLAG_UNALGND_CHOP;
  296. TdcCal = tdc_spi_rd_d32(0xd5);
  297. // TdcScale = 244140.625f/TdcCal;
  298. TdcScale += (244140.625f/TdcCal - TdcScale)*(1.0f/2);
  299. //LOG("----------TdcScale=%.6f\n",TdcScale);
  300. } else {
  301. tdc_spi_wr_code(0x70);
  302. }
  303. if (cfg & TDC_CFG_DO_CKDIS){
  304. DMA_ReqClkOff();
  305. PeriClk_MutDisable(PeriClk_Spi1);
  306. }
  307. //rt_exit_critical();
  308. }
  309. void tdc_start_temp(uint32_t cfg)
  310. {
  311. //rt_enter_critical();
  312. if (cfg & TDC_CFG_DO_CKENA){
  313. PeriClk_MutEnable(PeriClk_Spi1);
  314. DMA_ReqClkOn();
  315. }
  316. if (cfg & TDC_CFG_DO_WREG){
  317. tdc_spi_wr_d32(0x80, DFLT_WREG0 |
  318. ( 3u<< 6) // SEL_TIMO_MB, 0:64us; 1:128us; 2:256us; 3:512us; ~ 6:4096us;
  319. );
  320. // write_reg1
  321. tdc_spi_wr_d32(0x81, DFLT_WREG1 |
  322. ( 0u<< 12) // DELVAL1=0us, format:16.5, time unit:Tref;
  323. );
  324. // write_reg3
  325. tdc_spi_wr_d32(0x83, DFLT_WREG3 |
  326. ( 1u<<13) // measure FW pulse width, 0:on; 1:off
  327. );
  328. }
  329. tdc_spi_wr_code(0x70);
  330. tdc_spi_wr_code(0x04);
  331. if (cfg & TDC_CFG_DO_CKDIS){
  332. DMA_ReqClkOff();
  333. PeriClk_MutDisable(PeriClk_Spi1);
  334. }
  335. //rt_exit_critical();
  336. }
  337. void tdc_read_temp(uint32_t cfg)
  338. {
  339. if (cfg & TDC_CFG_DO_CKENA){
  340. PeriClk_MutEnable(PeriClk_Spi1);
  341. DMA_ReqClkOn();
  342. }
  343. TdcStatus = tdc_spi_rd_d16(0xd0); // status
  344. TdcPT[0] = tdc_spi_rd_d32(0xd1); // REF 5K +/- 5
  345. TdcPT[1] = tdc_spi_rd_d32(0xd2); // U7
  346. if(TdcPT[0]==0xffffffff || TdcPT[1]==0xffffffff || TdcPT[0] ==0x00000000 || TdcPT[0]==0x00000000)
  347. {
  348. }
  349. else
  350. {
  351. TdcResist = 2500.0f*TdcPT[1]/TdcPT[0]; // ohmX10
  352. Ohm2Dgr2USSpd(TdcResist, WaterPrmt); // [0]:Temperature; [1]:ultrasonic speed @Temp
  353. }
  354. if (cfg & TDC_CFG_DO_CKDIS){
  355. DMA_ReqClkOff();
  356. PeriClk_MutDisable(PeriClk_Spi1);
  357. }
  358. }