Add safety management in PID handler and main loop
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a33154b2d0
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cbd28f9a12
@ -25,9 +25,28 @@
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#include <stdbool.h>
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#include <stdbool.h>
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#include <reflow-controller/pid-controller.h>
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#include <reflow-controller/pid-controller.h>
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enum oven_pid_error_report {
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OVEN_PID_NO_ERROR = 0,
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OVEN_PID_ERR_PT1000_ADC_WATCHDOG = (1<<0),
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OVEN_PID_ERR_PT1000_ADC_OFF = (1<<1),
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OVEN_PID_ERR_PT1000_OTHER = (1<<2),
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OVEN_PID_ERR_VREF_TOL = (1<<3),
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OVEN_PID_ERR_OVERTEMP = (1<<4),
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};
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struct oven_pid_errors {
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bool generic_error;
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bool pt1000_adc_watchdog;
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bool pt1000_adc_off;
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bool pt1000_other;
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bool vref_tol;
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bool controller_overtemp;
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};
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struct oven_pid_status {
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struct oven_pid_status {
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bool active;
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bool active;
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bool aborted;
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bool aborted;
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struct oven_pid_errors error_flags;
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float target_temp;
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float target_temp;
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float current_temp;
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float current_temp;
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uint64_t timestamp_last_run;
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uint64_t timestamp_last_run;
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@ -41,11 +60,11 @@ void oven_driver_disable(void);
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void oven_pid_init(struct pid_controller *controller_to_copy);
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void oven_pid_init(struct pid_controller *controller_to_copy);
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void oven_pid_handle(float target_temp, float current_temp);
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void oven_pid_handle(float target_temp);
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void oven_pid_stop();
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void oven_pid_stop();
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void oven_pid_report_error(void);
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void oven_pid_report_error(enum oven_pid_error_report report);
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const struct oven_pid_status *oven_pid_get_status(void);
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const struct oven_pid_status *oven_pid_get_status(void);
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@ -24,11 +24,10 @@
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#include <stdint.h>
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#include <stdint.h>
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#include <stdbool.h>
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#include <stdbool.h>
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#define SAFETY_ADC_FRAC_BITS (8)
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#define SAFETY_ADC_VREF_MVOLT (2500.0f)
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#define SAFETY_ADC_VREF_VOLT (2.5)
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#define SAFETY_ADC_VREF_TOL_MVOLT (100.0f)
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#define SAFETY_ADC_VREF_TOL (0.25)
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#define SAFETY_ADC_TEMP_LOW_LIM (0.0f)
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#define SAFETY_ADC_VREF_INT ()
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#define SAFETY_ADC_TEMP_HIGH_LIM (65.0f)
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enum safety_adc_meas_channel {SAFETY_ADC_MEAS_VREF, SAFETY_ADC_MEAS_TEMP};
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enum safety_adc_meas_channel {SAFETY_ADC_MEAS_VREF, SAFETY_ADC_MEAS_TEMP};
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enum safety_adc_check_result {
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enum safety_adc_check_result {
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@ -198,13 +198,17 @@ static void zero_ccm_ram(void)
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ptr[i] = 0UL;
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ptr[i] = 0UL;
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}
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}
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volatile bool error_state = false;
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volatile enum safety_adc_check_result safety_adc_status = SAFETY_ADC_CHECK_OK;
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int main()
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int main()
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{
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{
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bool sd_card_mounted = false;
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bool sd_card_mounted = false;
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shellmatta_handle_t shell_handle;
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shellmatta_handle_t shell_handle;
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int menu_wait_request;
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int menu_wait_request;
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uint64_t quarter_sec_timestamp = 0ULL;
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uint64_t quarter_sec_timestamp = 0ULL;
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enum safety_adc_check_result safety_adc_status;
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const struct oven_pid_status *pid_status;
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enum adc_pt1000_error pt1000_status;
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zero_ccm_ram();
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zero_ccm_ram();
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setup_system();
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setup_system();
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@ -215,14 +219,46 @@ int main()
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while (1) {
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while (1) {
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sd_card_mounted = mount_sd_card_if_avail(sd_card_mounted);
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sd_card_mounted = mount_sd_card_if_avail(sd_card_mounted);
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pid_status = oven_pid_get_status();
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if(systick_ticks_have_passed(quarter_sec_timestamp, 250)) {
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if(systick_ticks_have_passed(quarter_sec_timestamp, 250)) {
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safety_adc_status = handle_safety_adc();
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safety_adc_status = handle_safety_adc();
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quarter_sec_timestamp = systick_get_global_tick();
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quarter_sec_timestamp = systick_get_global_tick();
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if (safety_adc_status & SAFETY_ADC_CHECK_TEMP_LOW || safety_adc_status & SAFETY_ADC_CHECK_TEMP_HIGH) {
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oven_pid_report_error(OVEN_PID_ERR_OVERTEMP);
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}
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if (safety_adc_status & SAFETY_ADC_CHECK_VREF_LOW || safety_adc_status & SAFETY_ADC_CHECK_VREF_HIGH) {
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oven_pid_report_error(OVEN_PID_ERR_VREF_TOL);
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}
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if (safety_adc_status & SAFETY_ADC_INTERNAL_ERROR) {
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oven_pid_report_error(0);
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}
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if (error_state) {
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led_set(1, !led_get(1));
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} else {
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led_set(1, 0);
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}
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pt1000_status = adc_pt1000_check_error();
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}
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error_state = pid_status->aborted | !!safety_adc_status | !!pt1000_status;
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menu_wait_request = reflow_menu_handle();
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/* Deactivate oven output in case of error! */
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if (!pid_status->active || pid_status->aborted || error_state) {
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oven_pid_stop();
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oven_driver_set_power(0U);
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}
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}
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handle_shell_uart_input(shell_handle);
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handle_shell_uart_input(shell_handle);
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menu_wait_request = reflow_menu_handle();
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if (menu_wait_request)
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if (menu_wait_request)
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__WFI();
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__WFI();
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@ -22,6 +22,8 @@
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#include <reflow-controller/periph-config/oven-driver-hwcfg.h>
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#include <reflow-controller/periph-config/oven-driver-hwcfg.h>
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#include <stm-periph/clock-enable-manager.h>
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#include <stm-periph/clock-enable-manager.h>
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#include <reflow-controller/systick.h>
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#include <reflow-controller/systick.h>
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#include <reflow-controller/adc-meas.h>
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#include <reflow-controller/temp-converter.h>
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static struct pid_controller oven_pid;
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static struct pid_controller oven_pid;
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@ -76,29 +78,70 @@ void oven_pid_init(struct pid_controller *controller_to_copy)
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oven_pid.output_sat_max = 100.0f;
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oven_pid.output_sat_max = 100.0f;
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oven_pid_current_status.timestamp_last_run = 0ULL;
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oven_pid_current_status.timestamp_last_run = 0ULL;
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oven_pid_current_status.active = true;
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oven_pid_current_status.active = true;
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oven_pid_current_status.error_flags.vref_tol = false;
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oven_pid_current_status.error_flags.pt1000_other = false;
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oven_pid_current_status.error_flags.generic_error = false;
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oven_pid_current_status.error_flags.pt1000_adc_off = false;
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oven_pid_current_status.error_flags.controller_overtemp = false;
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oven_pid_current_status.error_flags.pt1000_adc_watchdog = false;
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}
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}
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void oven_pid_handle(float target_temp, float current_temp)
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void oven_pid_handle(float target_temp)
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{
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{
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float pid_out;
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float pid_out;
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float current_temp;
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int resistance_status;
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enum adc_pt1000_error pt1000_error;
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if (oven_pid_current_status.active) {
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if (oven_pid_current_status.active && !oven_pid_current_status.aborted) {
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if (systick_ticks_have_passed(oven_pid_current_status.timestamp_last_run,
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if (systick_ticks_have_passed(oven_pid_current_status.timestamp_last_run,
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(uint64_t)(oven_pid.sample_period * 1000))) {
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(uint64_t)(oven_pid.sample_period * 1000))) {
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resistance_status = adc_pt1000_get_current_resistance(¤t_temp);
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if (resistance_status < 0) {
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oven_driver_set_power(0);
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pt1000_error = adc_pt1000_check_error();
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if (pt1000_error & ADC_PT1000_WATCHDOG_ERROR)
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oven_pid_report_error(OVEN_PID_ERR_PT1000_ADC_WATCHDOG);
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if (pt1000_error & ADC_PT1000_INACTIVE)
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oven_pid_report_error(OVEN_PID_ERR_PT1000_ADC_OFF);
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if (pt1000_error & ADC_PT1000_OVERFLOW)
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oven_pid_report_error(OVEN_PID_ERR_PT1000_OTHER);
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return;
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}
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(void)temp_converter_convert_resistance_to_temp(current_temp, ¤t_temp);
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pid_out = pid_sample(&oven_pid, target_temp - current_temp);
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pid_out = pid_sample(&oven_pid, target_temp - current_temp);
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oven_driver_set_power((uint8_t)pid_out);
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oven_driver_set_power((uint8_t)pid_out);
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oven_pid_current_status.timestamp_last_run = systick_get_global_tick();
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oven_pid_current_status.timestamp_last_run = systick_get_global_tick();
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oven_pid_current_status.active = true;
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oven_pid_current_status.target_temp = target_temp;
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oven_pid_current_status.target_temp = target_temp;
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oven_pid_current_status.current_temp = current_temp;
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oven_pid_current_status.current_temp = current_temp;
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}
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}
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}
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}
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}
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}
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void oven_pid_report_error()
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void oven_pid_report_error(enum oven_pid_error_report report)
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{
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{
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struct oven_pid_errors *e = &oven_pid_current_status.error_flags;
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oven_pid_current_status.active = false;
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oven_pid_current_status.active = false;
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oven_pid_current_status.aborted = true;
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oven_pid_current_status.aborted = true;
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if (report == 0) {
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e->generic_error = true;
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}
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if (report & OVEN_PID_ERR_OVERTEMP)
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e->controller_overtemp = true;
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if (report & OVEN_PID_ERR_VREF_TOL)
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e->controller_overtemp = true;
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if (report & OVEN_PID_ERR_PT1000_OTHER)
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e->pt1000_other = true;
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if (report & OVEN_PID_ERR_PT1000_ADC_OFF)
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e->pt1000_adc_off = true;
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if (report & OVEN_PID_ERR_PT1000_ADC_WATCHDOG)
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e->pt1000_adc_watchdog = true;
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}
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}
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const struct oven_pid_status *oven_pid_get_status()
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const struct oven_pid_status *oven_pid_get_status()
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@ -20,7 +20,7 @@
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#include <reflow-controller/safety-adc.h>
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#include <reflow-controller/safety-adc.h>
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#include <reflow-controller/periph-config/safety-adc-hwcfg.h>
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#include <reflow-controller/periph-config/safety-adc-hwcfg.h>
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#include <helper-macros/helper-macros.h>
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#include <stm-periph/clock-enable-manager.h>
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#include <stm-periph/clock-enable-manager.h>
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void safety_adc_init()
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void safety_adc_init()
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@ -50,18 +50,32 @@ enum safety_adc_check_result safety_adc_check_results(uint16_t vref_result, uint
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float *vref_calculated, float *temp_calculated)
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float *vref_calculated, float *temp_calculated)
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{
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{
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enum safety_adc_check_result res = SAFETY_ADC_CHECK_OK;
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enum safety_adc_check_result res = SAFETY_ADC_CHECK_OK;
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float vref;
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float temp;
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vref = (SAFETY_ADC_INT_REF_MV * 4095.0f) / (float)vref_result;
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if (vref_calculated) {
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if (vref_calculated) {
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*vref_calculated = (SAFETY_ADC_INT_REF_MV * 4095.0f) / (float)vref_result;
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*vref_calculated = vref;
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}
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}
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temp = (((float)temp_result / 4095.0f * 2500.0f -
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SAFETY_ADC_TEMP_NOM_MV) / SAFETY_ADC_TEMP_MV_SLOPE) + SAFETY_ADC_TEMP_NOM;
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if (temp_calculated) {
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if (temp_calculated) {
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*temp_calculated = (((float)temp_result / 4095.0f * 2500.0f -
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*temp_calculated = temp;
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SAFETY_ADC_TEMP_NOM_MV) / SAFETY_ADC_TEMP_MV_SLOPE) + SAFETY_ADC_TEMP_NOM;
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}
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}
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/* TODO: Implement safety ADC checking */
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if (ABS(vref - SAFETY_ADC_VREF_MVOLT) > SAFETY_ADC_VREF_TOL_MVOLT) {
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if (vref > SAFETY_ADC_VREF_MVOLT)
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res |= SAFETY_ADC_CHECK_VREF_HIGH;
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else
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res |= SAFETY_ADC_CHECK_VREF_LOW;
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}
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if (temp < SAFETY_ADC_TEMP_LOW_LIM)
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res |= SAFETY_ADC_CHECK_TEMP_LOW;
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else if (temp < SAFETY_ADC_CHECK_TEMP_HIGH)
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res |= SAFETY_ADC_CHECK_TEMP_HIGH;
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return res;
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return res;
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}
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}
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