You can not select more than 25 topics Topics must start with a letter or number, can include dashes ('-') and can be up to 35 characters long.

217 lines
9.3 KiB

1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
1 year ago
  1. #include "hardware.hpp"
  2. #include "adc.h"
  3. #include "tim.h"
  4. #include "zsdk/zcanreceiver/zcanreceiver.hpp"
  5. #define TAG "HARD"
  6. using namespace iflytop;
  7. /***********************************************************************************************************************
  8. * EXT *
  9. ***********************************************************************************************************************/
  10. static osThreadId H2O2CaptureThreadId;
  11. static osThreadId AdcCaptureThreadId;
  12. /***********************************************************************************************************************
  13. * FUNC *
  14. ***********************************************************************************************************************/
  15. static void c_onAdcCaptureThread(void const* argument) { Hardware::ins().onAdcCaptureThread(); }
  16. static void c_onH2O2CaptureThread(void const* argument) { Hardware::ins().onH2O2CaptureThread(); }
  17. void Hardware::init() {
  18. /***********************************************************************************************************************
  19. * *
  20. ***********************************************************************************************************************/
  21. m_Heater_ctrlGpio.initAsOutput(HEATER_CTRL_GPIO, kxs_gpio_nopull, true, false);
  22. m_Heater_safeCtrlGpio.initAsOutput(HEATER_SAFE_CTRL_GPIO, kxs_gpio_nopull, true, false);
  23. m_Heater_electricCurrentAdc.initialize(&hadc1, HEATER_ELECTRIC_CURRENT_ADC_CH);
  24. m_Heater_temperatureAdc.initialize(&hadc1, HEATER_TEMPERATURE_ADC_CH);
  25. /***********************************************************************************************************************
  26. * *
  27. ***********************************************************************************************************************/
  28. m_Blowser_ctrlGpio.initAsOutput(BLOWER_CTRL_GPIO, kxs_gpio_nopull, true, false);
  29. m_Blowser_safeCtrlGpio.initAsOutput(BLOWER_SAFE_CTRL_GPIO, kxs_gpio_nopull, true, false);
  30. m_Blowser_electricCurrentAdc.initialize(&hadc1, BLOWER_ELECTRIC_CURRENT_ADC_CH);
  31. /***********************************************************************************************************************
  32. * *
  33. ***********************************************************************************************************************/
  34. m_AirCompressor_ctrlGpio.initAsOutput(AIRCOMPRESSOR_CTRL_GPIO, kxs_gpio_nopull, true, false);
  35. m_AirCompressor_safeCtrlGpio.initAsOutput(AIRCOMPRESSOR_SAFE_CTRL_GPIO, kxs_gpio_nopull, true, false);
  36. m_AirCompressor_electricCurrentAdc.initialize(&hadc1, AIRCOMPRESSOR_ELECTRIC_CURRENT_ADC_CH);
  37. /***********************************************************************************************************************
  38. * H2O2传感器 *
  39. ***********************************************************************************************************************/
  40. /**
  41. * @brief HMP110
  42. */
  43. osDelay(2000); // 等待传感器上电
  44. #ifdef H2O2_SENSOR_TYPE_HMP110
  45. ZASSERT(huart2.Init.BaudRate == 19200);
  46. m_H2o2Sensor_ModbusBlockHost.initialize(&huart2);
  47. m_H2o2Sensor_H2O2Adc.initialize(&hadc1, ADC_CHANNEL_0); // PA0
  48. m_H2o2Sensor_HMP110.init(&m_H2o2Sensor_ModbusBlockHost);
  49. if (m_H2o2Sensor_HMP110.ping(1)) {
  50. m_h2o2sensor_detectId = 1;
  51. }
  52. if (m_H2o2Sensor_HMP110.ping(240)) {
  53. m_h2o2sensor_detectId = 240;
  54. }
  55. m_H2o2Sensor_HMP110.setid(m_h2o2sensor_detectId);
  56. ZLOGI(TAG, "H2O2 HMP110 Sensor detect id: %d", m_h2o2sensor_detectId);
  57. #endif
  58. #ifdef H2O2_SENSOR_TYPE_HPP272
  59. ZASSERT(huart3.Init.BaudRate == 19200);
  60. ZASSERT(huart3.Init.StopBits == UART_STOPBITS_2);
  61. m_H2o2Sensor_ModbusBlockHost.initialize(&huart3);
  62. m_H2o2Sensor_HPP272.init(&m_H2o2Sensor_ModbusBlockHost);
  63. if (m_H2o2Sensor_HPP272.ping(1)) {
  64. m_h2o2sensor_detectId = 1;
  65. }
  66. if (m_H2o2Sensor_HPP272.ping(240)) {
  67. m_h2o2sensor_detectId = 240;
  68. }
  69. m_H2o2Sensor_HPP272.setid(m_h2o2sensor_detectId);
  70. ZLOGI(TAG, "H2O2 HPP272 Sensor detect id: %d", m_h2o2sensor_detectId);
  71. #endif
  72. osThreadDef(AdcCaptureThread, c_onAdcCaptureThread, osPriorityNormal, 0, 1024);
  73. AdcCaptureThreadId = osThreadCreate(osThread(AdcCaptureThread), NULL);
  74. osThreadDef(H2O2CaptureThread, c_onH2O2CaptureThread, osPriorityNormal, 0, 1024);
  75. H2O2CaptureThreadId = osThreadCreate(osThread(H2O2CaptureThread), NULL);
  76. }
  77. /***********************************************************************************************************************
  78. * H2O2 *
  79. ***********************************************************************************************************************/
  80. bool Hardware::h2o2_sensor_is_online() {
  81. #ifdef H2O2_SENSOR_TYPE_HMP110
  82. if (m_h2o2sensor_detectId <= 0) return false;
  83. int32_t ecode = m_H2o2Sensor_HMP110.read_cache_errorcode();
  84. if (ecode == -1) return false;
  85. #endif
  86. #ifdef H2O2_SENSOR_TYPE_HPP272
  87. if (m_h2o2sensor_detectId <= 0) return false;
  88. int32_t ecode = m_H2o2Sensor_HPP272.read_cache_errorcode();
  89. if (ecode == -1) return false;
  90. #endif
  91. return true;
  92. }
  93. int32_t Hardware::h2o2_sensor_read_calibration_date(int32_t* year, int32_t* month, int32_t* day) { //
  94. return 0;
  95. }
  96. int32_t Hardware::h2o2_sensor_read_sub_ic_errorcode() { //
  97. #ifdef H2O2_SENSOR_TYPE_HPP272
  98. return m_H2o2Sensor_HPP272.read_cache_errorcode();
  99. #endif
  100. #ifdef H2O2_SENSOR_TYPE_HMP110
  101. return m_H2o2Sensor_HMP110.read_cache_errorcode();
  102. #endif
  103. }
  104. int32_t Hardware::h2o2_sensor_read_sub_ic_reg(int32_t add, uint16_t* val, size_t len) { //
  105. #ifdef H2O2_SENSOR_TYPE_HPP272
  106. return m_H2o2Sensor_HPP272.read_reg(add, val, len);
  107. #endif
  108. #ifdef H2O2_SENSOR_TYPE_HMP110
  109. return m_H2o2Sensor_HMP110.read_reg(add, val, len);
  110. #endif
  111. }
  112. int32_t Hardware::h2o2_sensor_data(report_h2o2_data_t* readdata) {
  113. #ifdef H2O2_SENSOR_TYPE_HMP110
  114. int32_t ecode = m_H2o2Sensor_HMP110.read_cache_errorcode();
  115. int32_t h2o2adcVal = m_H2o2Sensor_H2O2Adc.getCacheVal();
  116. HMP110::hmp110_sensordata_t sensordata;
  117. m_H2o2Sensor_HMP110.read_cache_sensor_data(&sensordata);
  118. // float mv = adcv / 4095.0 * 3.3 * 1000;
  119. // float ma = mv / 150.0;
  120. // float ppm = (ma - 4) / (20 - 4) * 2000;
  121. int32_t h2o2ma = (h2o2adcVal / 4095.0 * 3.3 * 1000) / 150.0;
  122. int32_t h2o2ppm = (h2o2ma - 4) / (20 - 4) * 2000;
  123. readdata->subid = 0;
  124. readdata->sensor_error = ecode != 0;
  125. readdata->h2o2 = h2o2ppm;
  126. readdata->humid = sensordata.rh;
  127. readdata->temp = sensordata.temp;
  128. readdata->saturation = 0;
  129. ZLOGI(TAG, "ppm:%d, rh:%d, temp:%d, df_ptemp:%d, ah:%d, mr:%d, wbt:%d, eh:%d", //
  130. h2o2ppm, //
  131. sensordata.rh, //
  132. sensordata.temp, //
  133. sensordata.df_ptemp, //
  134. sensordata.ah, //
  135. sensordata.mr, //
  136. sensordata.wet_bulb_temp, //
  137. sensordata.enthalpy);
  138. return 0;
  139. #endif
  140. #ifdef H2O2_SENSOR_TYPE_HPP272
  141. int32_t ecode = m_H2o2Sensor_HPP272.read_cache_errorcode();
  142. HPP272::hpp272_data_t sensordata;
  143. m_H2o2Sensor_HPP272.read_cache_sensor_data(&sensordata);
  144. readdata->subid = 0;
  145. readdata->sensor_error = ecode != 0;
  146. readdata->h2o2 = sensordata.hydrogen_peroxide_volume / 10.0;
  147. readdata->humid = sensordata.relative_humidity / 10.0;
  148. readdata->temp = sensordata.temperature1 / 10.0;
  149. readdata->saturation = sensordata.h2o_h2o2_rs / 10.0;
  150. ZLOGI(TAG, "h2o2 %d, humid %d, temp %d, sat %d",
  151. sensordata.hydrogen_peroxide_volume / 10, //
  152. sensordata.relative_humidity / 10, //
  153. sensordata.temperature1 / 10, //
  154. sensordata.h2o_h2o2_rs / 10);
  155. return 0;
  156. #endif
  157. }
  158. void Hardware::onAdcCaptureThread() {
  159. while (1) {
  160. osDelay(30);
  161. m_Heater_electricCurrentAdc.updateAdcValToCache();
  162. m_Heater_temperatureAdc.updateAdcValToCache();
  163. m_Blowser_electricCurrentAdc.updateAdcValToCache();
  164. m_AirCompressor_electricCurrentAdc.updateAdcValToCache();
  165. }
  166. }
  167. void Hardware::onH2O2CaptureThread() {
  168. while (1) {
  169. osDelay(1000);
  170. #ifdef H2O2_SENSOR_TYPE_HMP110
  171. if (m_h2o2sensor_detectId > 0) {
  172. m_H2o2Sensor_H2O2Adc.updateAdcValToCache();
  173. m_H2o2Sensor_HMP110.updateSensorDataAndErrorcode();
  174. }
  175. #endif
  176. #ifdef H2O2_SENSOR_TYPE_HPP272
  177. if (m_h2o2sensor_detectId > 0) {
  178. m_H2o2Sensor_HPP272.updateSensorDataAndErrorcode();
  179. }
  180. #endif
  181. }
  182. }