175 lines
5.3 KiB
C
Executable File
175 lines
5.3 KiB
C
Executable File
#include <stdbool.h>
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#include <stdint.h>
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#include <stdlib.h>
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#include <math.h>
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#include <string.h>
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#include "driver/ledc.h"
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#include "esp_err.h"
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#include "esp_log.h"
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#include "esp_rom_sys.h"
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#include "evse_pilot.h"
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#include "adc121s021_dma.h"
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#include "board_config.h"
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#define PILOT_PWM_TIMER LEDC_TIMER_0
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#define PILOT_PWM_CHANNEL LEDC_CHANNEL_0
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#define PILOT_PWM_SPEED_MODE LEDC_LOW_SPEED_MODE
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#define PILOT_PWM_DUTY_RES LEDC_TIMER_10_BIT
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#define PILOT_PWM_MAX_DUTY 1023
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#define NUM_PILOT_SAMPLES 100
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#define MAX_SAMPLE_ATTEMPTS 1000
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#define PILOT_EXTREME_PERCENT 10 // 10% superior e inferior
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// ADC121S021 setup
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#define ADC121_VREF_MV 3300 // AJUSTE conforme Vref do seu hardware!
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#define ADC121_MAX 4095 // 12 bits
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static const char *TAG = "evse_pilot";
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// Memoização de estado para evitar comandos/logs desnecessários
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static int last_pilot_level = -1;
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static uint32_t last_pwm_duty = 0;
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// Função para converter leitura bruta do ADC para mV
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static int adc_raw_to_mv(uint16_t raw) {
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return (raw * ADC121_VREF_MV) / ADC121_MAX;
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}
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void pilot_init(void)
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{
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// PWM (LEDC) configuração
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ledc_timer_config_t ledc_timer = {
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.speed_mode = PILOT_PWM_SPEED_MODE,
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.timer_num = PILOT_PWM_TIMER,
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.duty_resolution = PILOT_PWM_DUTY_RES,
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.freq_hz = 1000,
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.clk_cfg = LEDC_AUTO_CLK
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};
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ESP_ERROR_CHECK(ledc_timer_config(&ledc_timer));
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ledc_channel_config_t ledc_channel = {
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.speed_mode = PILOT_PWM_SPEED_MODE,
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.channel = PILOT_PWM_CHANNEL,
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.timer_sel = PILOT_PWM_TIMER,
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.intr_type = LEDC_INTR_DISABLE,
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.gpio_num = board_config.pilot_pwm_gpio,
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.duty = 0,
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.hpoint = 0
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};
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ESP_ERROR_CHECK(ledc_channel_config(&ledc_channel));
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ESP_ERROR_CHECK(ledc_stop(PILOT_PWM_SPEED_MODE, PILOT_PWM_CHANNEL, 0));
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ESP_ERROR_CHECK(ledc_fade_func_install(0));
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// Inicializa ADC121S021 externo
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adc121s021_dma_init();
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}
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void pilot_set_level(bool level)
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{
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if (last_pilot_level == level) return; // só muda se necessário
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last_pilot_level = level;
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ESP_LOGI(TAG, "Set level %d", level);
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ledc_stop(PILOT_PWM_SPEED_MODE, PILOT_PWM_CHANNEL, level ? 1 : 0);
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last_pwm_duty = 0; // PWM parado
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}
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void pilot_set_amps(uint16_t amps)
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{
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if (amps < 60 || amps > 800) {
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ESP_LOGE(TAG, "Invalid ampere value: %d A*10", amps);
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return;
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}
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uint32_t duty;
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if (amps <= 510) {
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duty = (PILOT_PWM_MAX_DUTY * amps) / 600;
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} else {
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duty = ((PILOT_PWM_MAX_DUTY * amps) / 2500) + (64 * (PILOT_PWM_MAX_DUTY / 100));
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}
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if (duty > PILOT_PWM_MAX_DUTY) duty = PILOT_PWM_MAX_DUTY;
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if (last_pilot_level == 0 && last_pwm_duty == duty) return;
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last_pilot_level = 0;
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last_pwm_duty = duty;
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ESP_LOGI(TAG, "Set amp %dA*10 -> duty %lu/%d", amps, duty, PILOT_PWM_MAX_DUTY);
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ledc_set_duty(PILOT_PWM_SPEED_MODE, PILOT_PWM_CHANNEL, duty);
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ledc_update_duty(PILOT_PWM_SPEED_MODE, PILOT_PWM_CHANNEL);
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}
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static int compare_int(const void *a, const void *b) {
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return (*(int *)a - *(int *)b);
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}
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static int select_low_median_qsort(int *src, int n, int percent) {
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int k = (n * percent) / 100;
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if (k == 0) k = 1;
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int *copy = alloca(n * sizeof(int));
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memcpy(copy, src, n * sizeof(int));
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qsort(copy, n, sizeof(int), compare_int);
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return copy[k / 2];
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}
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static int select_high_median_qsort(int *src, int n, int percent) {
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int k = (n * percent) / 100;
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if (k == 0) k = 1;
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int *copy = alloca(n * sizeof(int));
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memcpy(copy, src, n * sizeof(int));
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qsort(copy, n, sizeof(int), compare_int);
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return copy[n - k + (k / 2)];
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}
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void pilot_measure(pilot_voltage_t *up_voltage, bool *down_voltage_n12)
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{
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ESP_LOGD(TAG, "pilot_measure");
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int samples[NUM_PILOT_SAMPLES];
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int collected = 0, attempts = 0;
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uint16_t adc_sample = 0;
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// Lê samples usando ADC121S021 externo
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while (collected < NUM_PILOT_SAMPLES && attempts < MAX_SAMPLE_ATTEMPTS) {
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adc_sample = 0;
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if (adc121s021_dma_get_sample(&adc_sample)) {
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samples[collected++] = adc_sample;
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esp_rom_delay_us(10);
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} else {
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esp_rom_delay_us(100);
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attempts++;
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}
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}
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if (collected < NUM_PILOT_SAMPLES) {
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ESP_LOGW(TAG, "Timeout on sample read (%d/%d)", collected, NUM_PILOT_SAMPLES);
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*up_voltage = PILOT_VOLTAGE_1;
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*down_voltage_n12 = false;
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return;
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}
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int high_raw = select_high_median_qsort(samples, collected, PILOT_EXTREME_PERCENT);
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int low_raw = select_low_median_qsort(samples, collected, PILOT_EXTREME_PERCENT);
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int high_mv = adc_raw_to_mv(high_raw);
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int low_mv = adc_raw_to_mv(low_raw);
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// Aplica thresholds definidos em board_config (em mV)
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if (high_mv >= board_config.pilot_down_threshold_12)
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*up_voltage = PILOT_VOLTAGE_12;
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else if (high_mv >= board_config.pilot_down_threshold_9)
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*up_voltage = PILOT_VOLTAGE_9;
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else if (high_mv >= board_config.pilot_down_threshold_6)
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*up_voltage = PILOT_VOLTAGE_6;
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else if (high_mv >= board_config.pilot_down_threshold_3)
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*up_voltage = PILOT_VOLTAGE_3;
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else
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*up_voltage = PILOT_VOLTAGE_1;
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*down_voltage_n12 = (low_mv <= board_config.pilot_down_threshold_n12);
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ESP_LOGD(TAG, "Final: up_voltage=%d, down_voltage_n12=%d", *up_voltage, *down_voltage_n12);
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}
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