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Update Power.h with RAK4631 config from liberatedsystems build
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1 changed files with 104 additions and 0 deletions
104
Power.h
104
Power.h
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@ -68,6 +68,26 @@ float pmu_temperature = PMU_TEMP_MIN-1;
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bool bat_voltage_dropping = false;
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float bat_delay_v = 0;
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float bat_state_change_v = 0;
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#elif BOARD_MODEL == BOARD_RAK4631
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#include "nrfx_power.h"
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#define BAT_C_SAMPLES 7
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#define BAT_D_SAMPLES 2
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#define BAT_V_MIN 2.75
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#define BAT_V_MAX 4.2
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#define BAT_V_FLOAT 4.22
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#define BAT_SAMPLES 5
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#define VBAT_MV_PER_LSB (0.73242188F) // 3.0V ADC range and 12 - bit ADC resolution = 3000mV / 4096
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#define VBAT_DIVIDER_COMP (1.73) // Compensation factor for the VBAT divider
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#define VBAT_MV_PER_LSB_FIN (VBAT_DIVIDER_COMP * VBAT_MV_PER_LSB)
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#define PIN_VBAT WB_A0
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float bat_p_samples[BAT_SAMPLES];
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float bat_v_samples[BAT_SAMPLES];
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uint8_t bat_samples_count = 0;
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int bat_discharging_samples = 0;
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int bat_charging_samples = 0;
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int bat_charged_samples = 0;
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bool bat_voltage_dropping = false;
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float bat_delay_v = 0;
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#elif BOARD_MODEL == BOARD_T3S3
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#define BAT_V_MIN 3.15
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#define BAT_V_MAX 4.217
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@ -387,6 +407,75 @@ void measure_battery() {
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else {
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battery_ready = false;
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}
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#elif BOARD_MODEL == BOARD_RAK4631
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battery_installed = true;
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battery_indeterminate = false;
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bat_v_samples[bat_samples_count%BAT_SAMPLES] = (float)(analogRead(PIN_VBAT)) * VBAT_MV_PER_LSB_FIN;
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if (bat_v_samples[bat_samples_count%BAT_SAMPLES] < 3300) {
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bat_p_samples[bat_samples_count%BAT_SAMPLES] = 0;
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}
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else if (bat_v_samples[bat_samples_count%BAT_SAMPLES] < 3600)
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{
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bat_v_samples[bat_samples_count%BAT_SAMPLES] -= 3300;
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bat_p_samples[bat_samples_count%BAT_SAMPLES] = bat_v_samples[bat_samples_count%BAT_SAMPLES] / 30;
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} else {
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bat_v_samples[bat_samples_count%BAT_SAMPLES] -= 3600;
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}
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bat_p_samples[bat_samples_count%BAT_SAMPLES] = 10 + (bat_v_samples[bat_samples_count%BAT_SAMPLES] * 0.15F);
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bat_samples_count++;
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if (!battery_ready && bat_samples_count >= BAT_SAMPLES) {
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battery_ready = true;
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}
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battery_percent = 0;
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for (uint8_t bi = 0; bi < BAT_SAMPLES; bi++) {
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battery_percent += bat_p_samples[bi];
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}
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battery_percent = battery_percent/BAT_SAMPLES;
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battery_voltage = 0;
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for (uint8_t bi = 0; bi < BAT_SAMPLES; bi++) {
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battery_voltage += bat_v_samples[bi];
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}
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battery_voltage = battery_voltage/BAT_SAMPLES;
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if (bat_delay_v == 0) bat_delay_v = battery_voltage;
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if (battery_percent > 100.0) battery_percent = 100.0;
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if (battery_percent < 0.0) battery_percent = 0.0;
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if (bat_samples_count%BAT_SAMPLES == 0) {
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if (battery_voltage < bat_delay_v && battery_voltage < BAT_V_FLOAT) {
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bat_voltage_dropping = true;
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} else {
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bat_voltage_dropping = false;
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}
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bat_samples_count = 0;
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}
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nrfx_power_usb_state_t usbstate = nrfx_power_usbstatus_get();
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if (usbstate == NRFX_POWER_USB_STATE_CONNECTED || usbstate == NRFX_POWER_USB_STATE_READY) {
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// charging
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battery_state = BATTERY_STATE_CHARGING;
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} else {
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battery_state = BATTERY_STATE_DISCHARGING;
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}
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if (battery_percent >= 98) {
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battery_state = BATTERY_STATE_CHARGED;
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}
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#if HAS_BLE
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if ((bt_state == BT_STATE_ON) || bt_state == BT_STATE_CONNECTED) {
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if (battery_state != BATTERY_STATE_CHARGING) {
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blebas.write(battery_percent);
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} else {
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blebas.write(100);
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}
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}
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#endif
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#endif
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if (battery_ready) {
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@ -564,6 +653,21 @@ bool init_pmu() {
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PMU->setPowerKeyPressOffTime(XPOWERS_POWEROFF_4S);
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return true;
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#elif BOARD_MODEL == BOARD_RAK4631
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// board doesn't have PMU but we can measure batt voltage
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// prep ADC for reading battery level
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analogReference(AR_INTERNAL_3_0);
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// Set the resolution to 12-bit (0..4095)
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analogReadResolution(12);
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// Let the ADC settle
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delay(1);
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// Get a single ADC sample and throw it away
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float raw = analogRead(PIN_VBAT);
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return true;
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#elif BOARD_MODEL == BOARD_TBEAM_S_V1
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Wire1.begin(I2C_SDA, I2C_SCL);
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