power_manager.h 5.9 KB

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  1. #pragma once
  2. #include <vector>
  3. #include <functional>
  4. #include <esp_timer.h>
  5. #include <driver/gpio.h>
  6. #include <esp_adc/adc_oneshot.h>
  7. class PowerManager {
  8. private:
  9. std::function<void(bool)> on_charging_status_changed_;
  10. std::function<void(bool)> on_low_battery_status_changed_;
  11. gpio_num_t charging_pin_ = GPIO_NUM_NC;
  12. std::vector<uint16_t> adc_values_;
  13. uint32_t battery_level_ = 0;
  14. bool is_charging_ = false;
  15. bool is_low_battery_ = false;
  16. int ticks_ = 0;
  17. const int kBatteryAdcInterval = 60;
  18. const int kBatteryAdcDataCount = 3;
  19. const int kLowBatteryLevel = 20;
  20. adc_oneshot_unit_handle_t adc_handle_;
  21. void CheckBatteryStatus() {
  22. // Get charging status
  23. bool new_charging_status = gpio_get_level(charging_pin_) == 0;
  24. if (new_charging_status != is_charging_) {
  25. is_charging_ = new_charging_status;
  26. if (on_charging_status_changed_) {
  27. on_charging_status_changed_(is_charging_);
  28. }
  29. ReadBatteryAdcData();
  30. return;
  31. }
  32. // 如果电池电量数据不足,则读取电池电量数据
  33. if (adc_values_.size() < kBatteryAdcDataCount) {
  34. ReadBatteryAdcData();
  35. return;
  36. }
  37. // 如果电池电量数据充足,则每 kBatteryAdcInterval 个 tick 读取一次电池电量数据
  38. ticks_++;
  39. if (ticks_ % kBatteryAdcInterval == 0) {
  40. ReadBatteryAdcData();
  41. }
  42. }
  43. void ReadBatteryAdcData() {
  44. int adc_value;
  45. uint32_t temp_val = 0;
  46. gpio_set_level(CHG_CTRL_PIN, 0);
  47. vTaskDelay(pdMS_TO_TICKS(100));
  48. for(int t = 0; t < 10; t ++) {
  49. ESP_ERROR_CHECK(adc_oneshot_read(adc_handle_, ADC_CHANNEL_0, &adc_value));
  50. temp_val += adc_value;
  51. }
  52. gpio_set_level(CHG_CTRL_PIN, 1);
  53. vTaskDelay(pdMS_TO_TICKS(100));
  54. adc_value = temp_val / 10;
  55. // 将 ADC 值添加到队列中
  56. adc_values_.push_back(adc_value);
  57. if (adc_values_.size() > kBatteryAdcDataCount) {
  58. adc_values_.erase(adc_values_.begin());
  59. }
  60. uint32_t average_adc = 0;
  61. for (auto value : adc_values_) {
  62. average_adc += value;
  63. }
  64. average_adc /= adc_values_.size();
  65. // 定义电池电量区间
  66. const struct {
  67. uint16_t adc;
  68. uint8_t level;
  69. } levels[] = {
  70. {2951, 0}, /* 3.80V */
  71. {3019, 20},
  72. {3037, 40},
  73. {3091, 60}, /* 3.88 */
  74. {3124, 80},
  75. {3231, 100}
  76. };
  77. // 低于最低值时
  78. if (average_adc < levels[0].adc) {
  79. battery_level_ = 0;
  80. }
  81. // 高于最高值时
  82. else if (average_adc >= levels[5].adc) {
  83. battery_level_ = 100;
  84. } else {
  85. // 线性插值计算中间值
  86. for (int i = 0; i < 5; i++) {
  87. if (average_adc >= levels[i].adc && average_adc < levels[i+1].adc) {
  88. float ratio = static_cast<float>(average_adc - levels[i].adc) / (levels[i+1].adc - levels[i].adc);
  89. battery_level_ = levels[i].level + ratio * (levels[i+1].level - levels[i].level);
  90. break;
  91. }
  92. }
  93. }
  94. // Check low battery status
  95. if (adc_values_.size() >= kBatteryAdcDataCount) {
  96. bool new_low_battery_status = battery_level_ <= kLowBatteryLevel;
  97. if (new_low_battery_status != is_low_battery_) {
  98. is_low_battery_ = new_low_battery_status;
  99. if (on_low_battery_status_changed_) {
  100. on_low_battery_status_changed_(is_low_battery_);
  101. }
  102. }
  103. }
  104. low_voltage_ = adc_value;
  105. ESP_LOGI("PowerManager", "ADC value: %d average: %ld level: %ld", adc_value, average_adc, battery_level_);
  106. }
  107. public:
  108. esp_timer_handle_t timer_handle_;
  109. uint16_t low_voltage_ = 2877;
  110. PowerManager(gpio_num_t pin) : charging_pin_(pin) {
  111. // 创建电池电量检查定时器
  112. esp_timer_create_args_t timer_args = {
  113. .callback = [](void* arg) {
  114. PowerManager* self = static_cast<PowerManager*>(arg);
  115. self->CheckBatteryStatus();
  116. },
  117. .arg = this,
  118. .dispatch_method = ESP_TIMER_TASK,
  119. .name = "battery_check_timer",
  120. .skip_unhandled_events = true,
  121. };
  122. ESP_ERROR_CHECK(esp_timer_create(&timer_args, &timer_handle_));
  123. ESP_ERROR_CHECK(esp_timer_start_periodic(timer_handle_, 1000000));
  124. // 初始化 ADC
  125. adc_oneshot_unit_init_cfg_t init_config = {
  126. .unit_id = ADC_UNIT_1,
  127. .ulp_mode = ADC_ULP_MODE_DISABLE,
  128. };
  129. ESP_ERROR_CHECK(adc_oneshot_new_unit(&init_config, &adc_handle_));
  130. adc_oneshot_chan_cfg_t chan_config = {
  131. .atten = ADC_ATTEN_DB_12,
  132. .bitwidth = ADC_BITWIDTH_12,
  133. };
  134. ESP_ERROR_CHECK(adc_oneshot_config_channel(adc_handle_, ADC_CHANNEL_0, &chan_config));
  135. }
  136. ~PowerManager() {
  137. if (timer_handle_) {
  138. esp_timer_stop(timer_handle_);
  139. esp_timer_delete(timer_handle_);
  140. }
  141. if (adc_handle_) {
  142. adc_oneshot_del_unit(adc_handle_);
  143. }
  144. }
  145. bool IsCharging() {
  146. // 如果电量已经满了,则不再显示充电中
  147. if (battery_level_ == 100) {
  148. return false;
  149. }
  150. return is_charging_;
  151. }
  152. bool IsDischarging() {
  153. // 没有区分充电和放电,所以直接返回相反状态
  154. return !is_charging_;
  155. }
  156. uint8_t GetBatteryLevel() {
  157. return battery_level_;
  158. }
  159. void OnLowBatteryStatusChanged(std::function<void(bool)> callback) {
  160. on_low_battery_status_changed_ = callback;
  161. }
  162. void OnChargingStatusChanged(std::function<void(bool)> callback) {
  163. on_charging_status_changed_ = callback;
  164. }
  165. };