rtc_tempsensor.c 5.7 KB

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  1. // Copyright 2016-2018 Espressif Systems (Shanghai) PTE LTD
  2. //
  3. // Licensed under the Apache License, Version 2.0 (the "License");
  4. // you may not use this file except in compliance with the License.
  5. // You may obtain a copy of the License at
  6. //
  7. // http://www.apache.org/licenses/LICENSE-2.0
  8. //
  9. // Unless required by applicable law or agreed to in writing, software
  10. // distributed under the License is distributed on an "AS IS" BASIS,
  11. // WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  12. // See the License for the specific language governing permissions and
  13. // limitations under the License.
  14. #include <esp_types.h>
  15. #include <stdlib.h>
  16. #include <ctype.h>
  17. #include "freertos/FreeRTOS.h"
  18. #include "freertos/semphr.h"
  19. #include "esp_log.h"
  20. #include "soc/rtc_cntl_reg.h"
  21. #include "soc/rtc_io_reg.h"
  22. #include "soc/rtc_io_struct.h"
  23. #include "soc/sens_reg.h"
  24. #include "soc/sens_struct.h"
  25. #include "driver/temp_sensor.h"
  26. #include "esp32s2/rom/ets_sys.h"
  27. static const char *TAG = "tsens";
  28. #define TSENS_CHECK(res, ret_val) ({ \
  29. if (!(res)) { \
  30. ESP_LOGE(TAG, "%s:%d (%s)", __FILE__, __LINE__, __FUNCTION__); \
  31. return (ret_val); \
  32. } \
  33. })
  34. #define TSENS_XPD_WAIT_DEFAULT 0xFF /* Set wait cycle time(8MHz) from power up to reset enable. */
  35. #define TSENS_ADC_FACTOR (0.4386)
  36. #define TSENS_DAC_FACTOR (27.88)
  37. #define TSENS_SYS_OFFSET (20.52)
  38. #include "i2c_rtc_clk.h"
  39. #define ANA_CONFIG2_REG 0x6000E048
  40. #define ANA_CONFIG2_M (BIT(18))
  41. #define I2C_ADC 0X69
  42. #define I2C_ADC_HOSTID 1
  43. #define I2C_SARADC_TSENS_DAC 6
  44. #define I2C_SARADC_TSENS_DAC_MSB 3
  45. #define I2C_SARADC_TSENS_DAC_LSB 0
  46. typedef struct {
  47. int index;
  48. int offset;
  49. int set_val;
  50. int range_min;
  51. int range_max;
  52. int error_max;
  53. } tsens_dac_offset_t;
  54. static const tsens_dac_offset_t dac_offset[TSENS_DAC_MAX] = {
  55. /* DAC Offset reg_val min max error */
  56. {TSENS_DAC_L0, -2, 5, 50, 125, 3},
  57. {TSENS_DAC_L1, -1, 7, 20, 100, 2},
  58. {TSENS_DAC_L2, 0, 15, -10, 80, 1},
  59. {TSENS_DAC_L3, 1, 11, -30, 50, 2},
  60. {TSENS_DAC_L4, 2, 10, -40, 20, 3},
  61. };
  62. static SemaphoreHandle_t rtc_tsens_mux = NULL;
  63. esp_err_t temp_sensor_set_config(temp_sensor_config_t tsens)
  64. {
  65. CLEAR_PERI_REG_MASK(RTC_CNTL_ANA_CONF_REG, RTC_CNTL_SAR_I2C_FORCE_PD_M);
  66. SET_PERI_REG_MASK(RTC_CNTL_ANA_CONF_REG, RTC_CNTL_SAR_I2C_FORCE_PU_M);
  67. CLEAR_PERI_REG_MASK(ANA_CONFIG_REG, BIT(18));
  68. SET_PERI_REG_MASK(ANA_CONFIG2_REG, BIT(16));
  69. I2C_WRITEREG_MASK_RTC(I2C_ADC, I2C_SARADC_TSENS_DAC, dac_offset[tsens.dac_offset].set_val);
  70. SENS.sar_tctrl.tsens_clk_div = tsens.clk_div;
  71. SENS.sar_tctrl.tsens_power_up_force = 1;
  72. SENS.sar_tctrl2.tsens_xpd_wait = TSENS_XPD_WAIT_DEFAULT;
  73. SENS.sar_tctrl2.tsens_xpd_force = 1;
  74. SENS.sar_tctrl2.tsens_reset = 1;// Reset the temp sensor.
  75. SENS.sar_tctrl2.tsens_reset = 0;// Clear the reset status.
  76. ESP_LOGI(TAG, "Config temperature range [%d°C ~ %d°C], error < %d°C",
  77. dac_offset[tsens.dac_offset].range_min,
  78. dac_offset[tsens.dac_offset].range_max,
  79. dac_offset[tsens.dac_offset].error_max);
  80. return ESP_OK;
  81. }
  82. esp_err_t temp_sensor_get_config(temp_sensor_config_t *tsens)
  83. {
  84. TSENS_CHECK(tsens != NULL, ESP_ERR_INVALID_ARG);
  85. CLEAR_PERI_REG_MASK(RTC_CNTL_ANA_CONF_REG, RTC_CNTL_SAR_I2C_FORCE_PD_M);
  86. SET_PERI_REG_MASK(RTC_CNTL_ANA_CONF_REG, RTC_CNTL_SAR_I2C_FORCE_PU_M);
  87. CLEAR_PERI_REG_MASK(ANA_CONFIG_REG, BIT(18));
  88. SET_PERI_REG_MASK(ANA_CONFIG2_REG, BIT(16));
  89. tsens->dac_offset = I2C_READREG_MASK_RTC(I2C_ADC, I2C_SARADC_TSENS_DAC);
  90. for (int i = TSENS_DAC_L0; i < TSENS_DAC_MAX; i++) {
  91. if (tsens->dac_offset == dac_offset[i].set_val) {
  92. tsens->dac_offset = dac_offset[i].index;
  93. break;
  94. }
  95. }
  96. tsens->clk_div = SENS.sar_tctrl.tsens_clk_div;
  97. return ESP_OK;
  98. }
  99. esp_err_t temp_sensor_start(void)
  100. {
  101. if (rtc_tsens_mux == NULL) {
  102. rtc_tsens_mux = xSemaphoreCreateMutex();
  103. }
  104. TSENS_CHECK(rtc_tsens_mux != NULL, ESP_ERR_NO_MEM);
  105. SENS.sar_tctrl.tsens_dump_out = 0;
  106. SENS.sar_tctrl2.tsens_clkgate_en = 1;
  107. SENS.sar_tctrl.tsens_power_up = 1;
  108. return ESP_OK;
  109. }
  110. esp_err_t temp_sensor_stop(void)
  111. {
  112. SENS.sar_tctrl.tsens_power_up = 0;
  113. SENS.sar_tctrl2.tsens_clkgate_en = 0;
  114. if (rtc_tsens_mux != NULL) {
  115. vSemaphoreDelete(rtc_tsens_mux);
  116. rtc_tsens_mux = NULL;
  117. }
  118. return ESP_OK;
  119. }
  120. esp_err_t temp_sensor_read_raw(uint32_t *tsens_out)
  121. {
  122. TSENS_CHECK(tsens_out != NULL, ESP_ERR_INVALID_ARG);
  123. TSENS_CHECK(rtc_tsens_mux != NULL, ESP_ERR_INVALID_STATE);
  124. xSemaphoreTake(rtc_tsens_mux, portMAX_DELAY);
  125. SENS.sar_tctrl.tsens_dump_out = 1;
  126. while (!SENS.sar_tctrl.tsens_ready);
  127. *tsens_out = SENS.sar_tctrl.tsens_out;
  128. SENS.sar_tctrl.tsens_dump_out = 0;
  129. xSemaphoreGive(rtc_tsens_mux);
  130. return ESP_OK;
  131. }
  132. esp_err_t temp_sensor_read_celsius(float *celsius)
  133. {
  134. TSENS_CHECK(celsius != NULL, ESP_ERR_INVALID_ARG);
  135. temp_sensor_config_t tsens;
  136. uint32_t tsens_out = 0;
  137. esp_err_t ret = temp_sensor_get_config(&tsens);
  138. if (ret == ESP_OK) {
  139. ret = temp_sensor_read_raw(&tsens_out);
  140. TSENS_CHECK(ret == ESP_OK, ret);
  141. const tsens_dac_offset_t *dac = &dac_offset[tsens.dac_offset];
  142. *celsius = (TSENS_ADC_FACTOR * (float)tsens_out - TSENS_DAC_FACTOR * dac->offset - TSENS_SYS_OFFSET);
  143. if (*celsius < dac->range_min || *celsius > dac->range_max) {
  144. ESP_LOGW(TAG, "Exceeding the temperature range!");
  145. ret = ESP_ERR_INVALID_STATE;
  146. }
  147. }
  148. return ret;
  149. }