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feature/su
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60
README.md
60
README.md
@ -77,31 +77,35 @@ Sntp <|-- Metrics
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#### Example
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```
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burner_fault_pending 1
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circulation_pump_enabled 0
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burner_enabled 1
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safety_contact_enabled 1
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chamber_temperature 21.812500
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chamber_temperature_avg10 21.837500
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chamber_temperature_avg60 21.825521
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inlet_flow_temperature 22.437500
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inlet_flow_temperature_avg10 22.437500
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inlet_flow_temperature_avg60 22.434896
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outdoor_temperature 21.937500
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outdoor_temperature_avg10 21.937500
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outdoor_temperature_avg60 21.933594
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return_flow_temperature 22.375000
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return_flow_temperature_avg10 22.375000
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return_flow_temperature_avg60 22.375000
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circulation_pump_enabled 1
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burner_enabled 0
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safety_contact_enabled 0
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chamber_temperature 58.750000
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chamber_temperature_avg10 58.931252
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chamber_temperature_avg60 59.190475
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chamber_temperature_pred60 55.870998
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inlet_flow_temperature 53.875000
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inlet_flow_temperature_avg10 53.900002
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inlet_flow_temperature_avg60 53.994320
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inlet_flow_temperature_pred60 52.848743
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outdoor_temperature 18.000000
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outdoor_temperature_avg10 18.006250
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outdoor_temperature_avg60 18.002840
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outdoor_temperature_pred60 18.050785
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return_flow_temperature 48.625000
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return_flow_temperature_avg10 48.718750
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return_flow_temperature_avg60 48.846592
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return_flow_temperature_pred60 47.383083
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chamber_temperature_state 0
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outdoor_temperature_state 0
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inlet_flow_temperature_state 0
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return_flow_temperature_state 0
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safety_state 0
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control_state 5
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control_state 3
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sntp_state 0
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system_unixtime 1734814285
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uptime_seconds 90
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wifi_rssi -63
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system_unixtime 1735242392
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uptime_seconds 40
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wifi_rssi -74
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```
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#### Status Encoding
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@ -131,15 +135,15 @@ wifi_rssi -63
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##### Control Loop
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- control_state
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| Enum eControlState in [control.h](main/control.h) | Value | Description |
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|---------------------------------------------------|-------|------------------------------------|
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| CONTROL_STARTING | 0 | |
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| CONTROL_HEATING | 1 | Burner running |
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| CONTROL_OUTDOOR_TOO_WARM | 2 | Heating not needed |
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| CONTROL_RETURN_FLOW_TOO_WARM | 3 | Heating not needed |
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| CONTROL_BURNER_FAULT | 4 | Burner reported fault |
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| CONTROL_FAULT_SAFETY | 5 | Unable to control due safety fault |
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| CONTROL_FAULT_SNTP | 6 | Unable to control due SNTP fault |
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| Enum eControlState in [control.h](main/control.h) | Value | Description |
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|---------------------------------------------------|-------|--------------------------------------------------|
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| CONTROL_STARTING | 0 | |
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| CONTROL_HEATING | 1 | Burner running |
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| CONTROL_OUTDOOR_TOO_WARM | 2 | Heating not needed |
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| CONTROL_RETURN_FLOW_TOO_WARM | 3 | Heating not needed |
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| CONTROL_FAULT_BURNER | 4 | Burner reported fault after threshold is reached |
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| CONTROL_FAULT_SAFETY | 5 | Unable to control due safety fault |
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| CONTROL_FAULT_SNTP | 6 | Unable to control due SNTP fault |
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##### SNTP Client
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- sntp_state
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182
main/control.c
182
main/control.c
@ -1,5 +1,6 @@
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#include "freertos/FreeRTOS.h"
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#include "freertos/task.h"
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#include "esp_timer.h"
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#include "esp_log.h"
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#include "control.h"
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#include "outputs.h"
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@ -7,25 +8,32 @@
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#include "safety.h"
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#include "sntp.h"
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#define PERIODIC_INTERVAL 1U // run control loop every 1sec
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#define PERIODIC_INTERVAL 1U // Run control loop every 1 second
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#define RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY 30.0
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#define RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT 25.0
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#define CHAMPER_TEMPERATURE_TARGET 70.0
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// Temperature thresholds
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#define RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY 30.0f
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#define RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT 25.0f
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#define CHAMBER_TEMPERATURE_TARGET 80.0f // Max cutoff temperature
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#define CHAMBER_TEMPERATURE_THRESHOLD 45.0f // Min threshold for burner enable
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#define OUTDOOR_TEMPERATURE_THRESHOLD 13.0f // Min threshold for burner enable
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#define CIRCULATION_PUMP_TEMPERATURE_THRESHOLD 30.0f // Min threshold of chamber for circulation pump enable
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#define BURNER_FAULT_DETECTION_THRESHOLD (60U * 4U) // Burner fault detection after 4 minutes
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static const char *TAG = "smart-oil-heater-control-system-control";
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static eControlState sControlState = CONTROL_STARTING;
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// Control table for daily schedules
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static sControlDay aControlTable[] = {
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{MONDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{TUESDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{WEDNESDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{THURSDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{FRIDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{23, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{SATURDAY, 2U, {{{6, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{23, 30}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{SUNDAY, 2U, {{{6, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMPER_TEMPERATURE_TARGET}, {{22, 30}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMPER_TEMPERATURE_TARGET}}},
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{MONDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{TUESDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{WEDNESDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{THURSDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{22, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{FRIDAY, 2U, {{{4, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{23, 0}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{SATURDAY, 2U, {{{6, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{23, 30}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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{SUNDAY, 2U, {{{6, 45}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_DAY, CHAMBER_TEMPERATURE_TARGET}, {{22, 30}, RETURN_FLOW_TEMPERATURE_LOWER_LIMIT_NIGHT, CHAMBER_TEMPERATURE_TARGET}}},
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};
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// Function prototypes
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void taskControl(void *pvParameters);
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eControlWeekday getCurrentWeekday(void);
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sControlTemperatureEntry getCurrentTemperatureEntry(void);
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@ -54,34 +62,37 @@ void initControl(void)
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void taskControl(void *pvParameters)
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{
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bool bHeatingInAction = false;
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eBurnerState eBurnerState = BURNER_UNKNOWN;
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int64_t i64BurnerEnableTimestamp = esp_timer_get_time();
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while (1)
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{
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vTaskDelay(PERIODIC_INTERVAL * 1000U / portTICK_PERIOD_MS);
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// Check for safety faults
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if (getSafetyState() != SAFETY_NO_ERROR)
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{
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ESP_LOGW(TAG, "Control not possible due to safety fault!");
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sControlState = CONTROL_FAULT_SAFETY;
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if (bHeatingInAction == true)
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if (bHeatingInAction)
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{
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ESP_LOGI(TAG, "Control not possible due to safety fault: Disable burner");
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ESP_LOGW(TAG, "Disabling burner due to safety fault");
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bHeatingInAction = false;
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setCirculationPumpState(ENABLED);
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setBurnerState(DISABLED);
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setSafetyControlState(ENABLED);
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}
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continue;
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}
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// Check for SNTP faults
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if (getSntpState() != SYNC_SUCCESSFUL)
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{
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ESP_LOGW(TAG, "Control not possible due to sntp fault!");
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ESP_LOGW(TAG, "Control not possible due to SNTP fault!");
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sControlState = CONTROL_FAULT_SNTP;
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if (bHeatingInAction == true)
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if (bHeatingInAction)
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{
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ESP_LOGI(TAG, "Control not possible due to sntp fault: Disable burner");
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ESP_LOGW(TAG, "Disabling burner due to SNTP fault");
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bHeatingInAction = false;
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setCirculationPumpState(ENABLED);
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setBurnerState(DISABLED);
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setSafetyControlState(ENABLED);
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}
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@ -89,44 +100,80 @@ void taskControl(void *pvParameters)
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}
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sControlTemperatureEntry currentControlEntry = getCurrentTemperatureEntry();
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// ESP_LOGI(TAG, "Control Entry Hour: %i Minute: %i ChamberTemp: %lf ReturnFlowTemp: %lf", currentControlEntry.timestamp.hour, currentControlEntry.timestamp.minute, currentControlEntry.fChamberTemperature, currentControlEntry.fReturnFlowTemperature);
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if (bHeatingInAction == true)
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// Enable burner if outdoor temperature is low and return flow temperature is cooled down
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if (!bHeatingInAction && (eBurnerState != BURNER_FAULT))
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{
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if (getChamberTemperature().fCurrentValue >= currentControlEntry.fChamberTemperature)
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if (getOutdoorTemperature().average60s.fValue >= OUTDOOR_TEMPERATURE_THRESHOLD)
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{
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ESP_LOGI(TAG, "Chamber Target Temperature reached: Disable burner");
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bHeatingInAction = false;
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setCirculationPumpState(ENABLED);
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// ESP_LOGI(TAG, "Outdoor temperature too warm: Disabling heating");
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setBurnerState(DISABLED);
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setSafetyControlState(ENABLED);
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setSafetyControlState(DISABLED);
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sControlState = CONTROL_OUTDOOR_TOO_WARM;
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}
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else
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else if ((getReturnFlowTemperature().average60s.fValue <= currentControlEntry.fReturnFlowTemperature) &&
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(getChamberTemperature().fCurrentValue <= CHAMBER_TEMPERATURE_THRESHOLD))
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{
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if (bHeatingInAction)
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{
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// TODO: Check burner fault signal here
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}
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}
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}
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if (bHeatingInAction == false)
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{
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if ((getReturnFlowTemperature().average60s.fValue <= currentControlEntry.fReturnFlowTemperature) && (getChamberTemperature().fCurrentValue <= 45.0))
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{
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ESP_LOGI(TAG, "Return Flow Target Temperature reached: Enable Burner");
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ESP_LOGI(TAG, "Enabling burner: Return flow temperature target reached");
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eBurnerState = BURNER_UNKNOWN;
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bHeatingInAction = true;
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setCirculationPumpState(ENABLED);
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setBurnerState(ENABLED);
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setSafetyControlState(ENABLED);
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i64BurnerEnableTimestamp = esp_timer_get_time();
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sControlState = CONTROL_HEATING;
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}
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else
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{
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// ESP_LOGI(TAG, "Return flow temperature too warm: Disabling heating");
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sControlState = CONTROL_RETURN_FLOW_TOO_WARM;
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}
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}
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}
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// Disable burner if target temperature is reached or a fault occurred
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if (bHeatingInAction)
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{
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if ((getChamberTemperature().fCurrentValue >= currentControlEntry.fChamberTemperature) ||
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(getChamberTemperature().predict60s.fValue >= currentControlEntry.fChamberTemperature))
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{
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ESP_LOGI(TAG, "Chamber target temperature reached: Disabling burner");
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bHeatingInAction = false;
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setBurnerState(DISABLED);
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setSafetyControlState(ENABLED);
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}
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else if (esp_timer_get_time() - i64BurnerEnableTimestamp >= BURNER_FAULT_DETECTION_THRESHOLD * 1000000U)
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{
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if (eBurnerState == BURNER_UNKNOWN)
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{
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if (getBurnerError() == FAULT)
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{
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// ESP_LOGW(TAG, "Burner fault detected: Disabling burner");
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bHeatingInAction = false;
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eBurnerState = BURNER_FAULT;
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sControlState = CONTROL_FAULT_BURNER;
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setBurnerState(DISABLED);
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setSafetyControlState(ENABLED);
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}
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else
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{
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// ESP_LOGI(TAG, "No burner fault detected: Marking burner as fired");
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eBurnerState = BURNER_FIRED;
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}
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}
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}
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}
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// Manage circulation pump
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if (getChamberTemperature().fCurrentValue <= CIRCULATION_PUMP_TEMPERATURE_THRESHOLD)
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{
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// ESP_LOGI(TAG, "Burner cooled down: Disabling circulation pump");
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setCirculationPumpState(DISABLED);
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}
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else
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{
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// ESP_LOGI(TAG, "Burner heated: Enabling circulation pump");
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setCirculationPumpState(ENABLED);
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}
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} // End of while(1)
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}
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eControlState getControlState(void)
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@ -139,73 +186,38 @@ eControlWeekday getCurrentWeekday(void)
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time_t now;
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struct tm *timeinfo;
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// Get the current time
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time(&now);
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timeinfo = localtime(&now); // Convert to local time
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timeinfo = localtime(&now);
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// Get the day of the week (0 = Sunday, 1 = Monday, ..., 6 = Saturday)
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int day = timeinfo->tm_wday;
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// Adjust so that Monday = 0, Sunday = 6
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if (day == 0)
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{
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day = 6; // Sunday becomes 6
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}
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else
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{
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day -= 1; // Shift other days to make Monday = 0
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}
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return (eControlWeekday)day;
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return (eControlWeekday)((day == 0) ? 6 : day - 1);
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}
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sControlTemperatureEntry getCurrentTemperatureEntry(void)
|
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{
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sControlTemperatureEntry result = aControlTable[0].aTemperatureEntries[0];
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eControlWeekday currentDay = getCurrentWeekday();
|
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time_t now;
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struct tm timeinfo;
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// Get the current time
|
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time(&now);
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// Convert to local time structure
|
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localtime_r(&now, &timeinfo);
|
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// Extract hour and minute
|
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int hour = timeinfo.tm_hour; // Hour (0-23)
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int minute = timeinfo.tm_min; // Minute (0-59)u
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// ESP_LOGI(TAG, "Current Day: %i Hour: %i Minute: %i", currentDay, hour, minute);
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int hour = timeinfo.tm_hour;
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int minute = timeinfo.tm_min;
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for (int i = 0; i < sizeof(aControlTable) / sizeof(aControlTable[0]); i++)
|
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{
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/// loops through days
|
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// ESP_LOGI(TAG, "Day %d: %d", i + 1, aControlTable[i].day);
|
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// int numberOfEntries = aControlTable[i].entryCount;
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// ESP_LOGI(TAG, "Number of entries: %i", numberOfEntries);
|
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for (int j = 0; j < aControlTable[i].entryCount; j++)
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{
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if ((aControlTable[i].day) > currentDay)
|
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if ((aControlTable[i].day > currentDay) ||
|
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(aControlTable[i].day == currentDay && aControlTable[i].aTemperatureEntries[j].timestamp.hour > hour) ||
|
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(aControlTable[i].day == currentDay && aControlTable[i].aTemperatureEntries[j].timestamp.hour == hour && aControlTable[i].aTemperatureEntries[j].timestamp.minute >= minute))
|
||||
{
|
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// ESP_LOGI(TAG, "DAY Return Control Entry Day: %i Hour: %i Minute: %i ChamberTemp: %lf ReturnFlowTemp: %lf", aControlTable[i].day, aControlTable[i].aTemperatureEntries[j].timestamp.hour, aControlTable[i].aTemperatureEntries[j].timestamp.minute, aControlTable[i].aTemperatureEntries[j].fChamberTemperature, aControlTable[i].aTemperatureEntries[j].fReturnFlowTemperature);
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return result;
|
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return aControlTable[i].aTemperatureEntries[j];
|
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}
|
||||
|
||||
if ((aControlTable[i].day == currentDay) && (aControlTable[i].aTemperatureEntries[j].timestamp.hour > hour))
|
||||
{
|
||||
// ESP_LOGI(TAG, "HOUR Return Control Entry Day: %i Hour: %i Minute: %i ChamberTemp: %lf ReturnFlowTemp: %lf", aControlTable[i].day, aControlTable[i].aTemperatureEntries[j].timestamp.hour, aControlTable[i].aTemperatureEntries[j].timestamp.minute, aControlTable[i].aTemperatureEntries[j].fChamberTemperature, aControlTable[i].aTemperatureEntries[j].fReturnFlowTemperature);
|
||||
return result;
|
||||
}
|
||||
|
||||
if ((aControlTable[i].day == currentDay) && (aControlTable[i].aTemperatureEntries[j].timestamp.hour == hour) && (aControlTable[i].aTemperatureEntries[j].timestamp.minute == minute))
|
||||
{
|
||||
// ESP_LOGI(TAG, "MINUTE Return Control Entry Day: %i Hour: %i Minute: %i ChamberTemp: %lf ReturnFlowTemp: %lf", aControlTable[i].day, aControlTable[i].aTemperatureEntries[j].timestamp.hour, aControlTable[i].aTemperatureEntries[j].timestamp.minute, aControlTable[i].aTemperatureEntries[j].fChamberTemperature, aControlTable[i].aTemperatureEntries[j].fReturnFlowTemperature);
|
||||
return result;
|
||||
}
|
||||
|
||||
// ESP_LOGI(TAG, "SET Return Control Entry Day: %i Hour: %i Minute: %i ChamberTemp: %lf ReturnFlowTemp: %lf", aControlTable[i].day, aControlTable[i].aTemperatureEntries[j].timestamp.hour, aControlTable[i].aTemperatureEntries[j].timestamp.minute, aControlTable[i].aTemperatureEntries[j].fChamberTemperature, aControlTable[i].aTemperatureEntries[j].fReturnFlowTemperature);
|
||||
result = aControlTable[i].aTemperatureEntries[j];
|
||||
}
|
||||
}
|
||||
return result;
|
||||
}
|
||||
}
|
||||
|
@ -9,11 +9,18 @@ typedef enum _ControlState
|
||||
CONTROL_HEATING,
|
||||
CONTROL_OUTDOOR_TOO_WARM,
|
||||
CONTROL_RETURN_FLOW_TOO_WARM,
|
||||
CONTROL_BURNER_FAULT,
|
||||
CONTROL_FAULT_BURNER,
|
||||
CONTROL_FAULT_SAFETY,
|
||||
CONTROL_FAULT_SNTP,
|
||||
} eControlState;
|
||||
|
||||
typedef enum _BurnerState
|
||||
{
|
||||
BURNER_UNKNOWN, // Burner is disabled or state after enabling is still unkown
|
||||
BURNER_FIRED, // Burner fired successfully
|
||||
BURNER_FAULT // Burner was unable to fire successfully
|
||||
} eBurnerState;
|
||||
|
||||
typedef enum _ControlWeekday
|
||||
{
|
||||
MONDAY,
|
||||
|
@ -16,10 +16,10 @@ static const char *TAG = "smart-oil-heater-control-system-inputs";
|
||||
const uint8_t uBurnerFaultPin = 19U;
|
||||
const uint8_t uDS18B20Pin = 4U;
|
||||
|
||||
const onewire_addr_t uChamperTempSensorAddr = 0x78000000c6c2f728;
|
||||
const onewire_addr_t uOutdoorTempSensorAddr = 0x78000000c6c2f728;
|
||||
const onewire_addr_t uInletFlowTempSensorAddr = 0x78000000c6c2f728;
|
||||
const onewire_addr_t uReturnFlowTempSensorAddr = 0x78000000c6c2f728;
|
||||
const onewire_addr_t uChamperTempSensorAddr = 0xd00000108cd01d28;
|
||||
const onewire_addr_t uOutdoorTempSensorAddr = 0xd70000108a9b9128;
|
||||
const onewire_addr_t uInletFlowTempSensorAddr = 0x410000108b8c0628;
|
||||
const onewire_addr_t uReturnFlowTempSensorAddr = 0x90000108cc77c28;
|
||||
|
||||
onewire_addr_t uOneWireAddresses[MAX_DN18B20_SENSORS];
|
||||
float fDS18B20Temps[MAX_DN18B20_SENSORS];
|
||||
@ -36,7 +36,7 @@ void taskInput(void *pvParameters);
|
||||
void initMeasurement(sMeasurement *pMeasurement);
|
||||
void updateAverage(sMeasurement *pMeasurement);
|
||||
void updatePrediction(sMeasurement *pMeasurement);
|
||||
float linearRegressionPredict(const float *samples, size_t count, float futureIndex);
|
||||
float linearRegressionPredict(const float *samples, size_t count, size_t bufferIndex, float futureIndex);
|
||||
|
||||
void initInputs(void)
|
||||
{
|
||||
@ -162,6 +162,7 @@ void updatePrediction(sMeasurement *pMeasurement)
|
||||
predict60s->fValue = linearRegressionPredict(
|
||||
predict60s->samples,
|
||||
predict60s->bufferCount,
|
||||
predict60s->bufferIndex,
|
||||
predict60s->bufferCount + 60.0f);
|
||||
}
|
||||
|
||||
@ -217,7 +218,7 @@ void taskInput(void *pvParameters)
|
||||
for (int j = 0; j < sSensorCount; j++)
|
||||
{
|
||||
float temp_c = fDS18B20Temps[j];
|
||||
ESP_LOGI(TAG, "Sensor: %08" PRIx64 " reports %lf°C", (uint64_t)uOneWireAddresses[j], temp_c);
|
||||
// ESP_LOGI(TAG, "Sensor: %08" PRIx64 " reports %lf°C", (uint64_t)uOneWireAddresses[j], temp_c);
|
||||
|
||||
switch ((uint64_t)uOneWireAddresses[j])
|
||||
{
|
||||
@ -226,17 +227,20 @@ void taskInput(void *pvParameters)
|
||||
sChamperTemperature.state = MEASUREMENT_NO_ERROR;
|
||||
updateAverage(&sChamperTemperature);
|
||||
updatePrediction(&sChamperTemperature);
|
||||
|
||||
break;
|
||||
case ((uint64_t)uOutdoorTempSensorAddr):
|
||||
sOutdoorTemperature.fCurrentValue = temp_c;
|
||||
sOutdoorTemperature.state = MEASUREMENT_NO_ERROR;
|
||||
updateAverage(&sOutdoorTemperature);
|
||||
updatePrediction(&sOutdoorTemperature);
|
||||
|
||||
break;
|
||||
case ((uint64_t)uInletFlowTempSensorAddr):
|
||||
sInletFlowTemperature.fCurrentValue = temp_c;
|
||||
sInletFlowTemperature.state = MEASUREMENT_NO_ERROR;
|
||||
updateAverage(&sInletFlowTemperature);
|
||||
updatePrediction(&sInletFlowTemperature);
|
||||
|
||||
break;
|
||||
case ((uint64_t)uReturnFlowTempSensorAddr):
|
||||
sReturnFlowTemperature.fCurrentValue = temp_c;
|
||||
sReturnFlowTemperature.state = MEASUREMENT_NO_ERROR;
|
||||
updateAverage(&sReturnFlowTemperature);
|
||||
@ -264,7 +268,7 @@ void taskInput(void *pvParameters)
|
||||
}
|
||||
}
|
||||
|
||||
float linearRegressionPredict(const float *samples, size_t count, float futureIndex)
|
||||
float linearRegressionPredict(const float *samples, size_t count, size_t bufferIndex, float futureIndex)
|
||||
{
|
||||
if (count == 0)
|
||||
return 0.0f; // No prediction possible with no data
|
||||
@ -273,8 +277,11 @@ float linearRegressionPredict(const float *samples, size_t count, float futureIn
|
||||
|
||||
for (size_t i = 0; i < count; i++)
|
||||
{
|
||||
float x = (float)i; // Time index
|
||||
float y = samples[i]; // Sample value
|
||||
// Calculate the circular buffer index for the current sample
|
||||
size_t circularIndex = (bufferIndex + i + 1) % count;
|
||||
|
||||
float x = (float)i; // Time index
|
||||
float y = samples[circularIndex]; // Sample value
|
||||
|
||||
sumX += x;
|
||||
sumY += y;
|
||||
@ -284,8 +291,8 @@ float linearRegressionPredict(const float *samples, size_t count, float futureIn
|
||||
|
||||
// Calculate slope (m) and intercept (b) of the line: y = mx + b
|
||||
float denominator = (count * sumX2 - sumX * sumX);
|
||||
if (fabs(denominator) < 1e-6) // Avoid division by zero
|
||||
return samples[count - 1]; // Return last value as prediction
|
||||
if (fabs(denominator) < 1e-6) // Avoid division by zero
|
||||
return samples[bufferIndex]; // Return the latest value as prediction
|
||||
|
||||
float m = (count * sumXY - sumX * sumY) / denominator;
|
||||
float b = (sumY - m * sumX) / count;
|
||||
|
Reference in New Issue
Block a user