initial commit

This commit is contained in:
2026-07-05 10:06:21 +02:00
commit f8ed637759
16 changed files with 1795 additions and 0 deletions

7
.gitignore vendored Normal file
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.pio
logs/
compile_commands.json
.vscode/.browse.c_cpp.db*
.vscode/c_cpp_properties.json
.vscode/launch.json
.vscode/ipch

9
.vscode/extensions.json vendored Normal file
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{
"recommendations": [
"llvm-vs-code-extensions.vscode-clangd"
],
"unwantedRecommendations": [
"platformio.platformio-ide",
"davidgomes.platformio-ide-cursor"
]
}

10
.vscode/settings.json vendored Normal file
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{
"files.associations": {
"*.h": "cpp",
"platformio.ini": "ini"
},
"clangd.arguments": [
"--compile-commands-dir=${workspaceFolder}",
"--header-insertion=never"
],
}

84
.vscode/tasks.json vendored Normal file
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{
"version": "2.0.0",
"tasks": [
{
"label": "PlatformIO: Build",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["run"],
"group": {
"kind": "build",
"isDefault": true
},
"problemMatcher": "$gcc",
"presentation": {
"reveal": "always",
"panel": "shared"
}
},
{
"label": "PlatformIO: Upload",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["run", "--target", "upload"],
"group": "none",
"problemMatcher": "$gcc",
"presentation": {
"reveal": "always",
"panel": "shared"
}
},
{
"label": "PlatformIO: Monitor",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["device", "monitor"],
"group": "none",
"isBackground": true,
"problemMatcher": [],
"presentation": {
"reveal": "always",
"panel": "dedicated"
}
},
{
"label": "PlatformIO: Update IntelliSense DB",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["run", "-t", "compiledb"],
"group": "none",
"problemMatcher": [],
"presentation": {
"reveal": "silent",
"panel": "shared"
}
},
{
"label": "PlatformIO: Clean",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["run", "--target", "clean"],
"group": "none",
"problemMatcher": [],
"presentation": {
"reveal": "always",
"panel": "shared"
}
},
{
"label": "PlatformIO: Upload and Monitor",
"dependsOn": ["PlatformIO: Upload"],
"dependsOrder": "sequence",
"type": "shell",
"command": "${env:HOME}/.platformio/penv/bin/pio",
"args": ["device", "monitor"],
"group": "none",
"isBackground": true,
"problemMatcher": [],
"presentation": {
"reveal": "always",
"panel": "dedicated"
}
}
]
}

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include/config.h Normal file
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#pragma once
// ---------------------------------------------------------------------------
// I2C — Nano default: A4 (SDA), A5 (SCL). Wire handles pin assignment.
// ---------------------------------------------------------------------------
static const uint8_t TCA9548A_ADDRESS = 0x70;
// Four SHT31 sensors on TCA9548A channels 2, 3, 4, 5
static const uint8_t SENSOR_CHANNELS[] = {2, 3, 4, 5};
static const uint8_t SENSOR_COUNT = sizeof(SENSOR_CHANNELS) / sizeof(SENSOR_CHANNELS[0]);
// SHT31 I2C address (ADDR pin low → 0x44, high → 0x45)
static const uint8_t SHT31_ADDRESS = 0x44;
// ---------------------------------------------------------------------------
// Outputs — D5 has hardware PWM; heater on A2 uses burst control (SSR-friendly)
// ---------------------------------------------------------------------------
static const uint8_t FAN_PIN = 5; // D5 — 24 V fan via N-channel MOSFET
static const uint8_t HEATER_PIN = A2; // heater via solid-state relay
// ---------------------------------------------------------------------------
// Temperature control
// ---------------------------------------------------------------------------
static const float TARGET_TEMP_C = 0.0f; // power-on default: idle (heater off)
static const float AUTOTUNE_DEFAULT_TEMP_C = 40.0f; // autotune when no temp given and idle
static const float TARGET_MIN_C = 0.0f; // 0 = idle (heater off, fan at idle speed)
static const float TARGET_MAX_C = 80.0f;
static const float OVERTEMP_FRACTION = 0.05f; // hard cutoff at target * 1.05
// PID on chamber average
static const float PID_KP = 4.0f;
static const float PID_KI = 0.05f;
static const float PID_KD = 6.0f;
// Tiered heater cap — more power when cold, gentle near setpoint
static const float HEATER_MAX_DUTY_COLD = 65.0f; // avg >10 °C below target
static const float HEATER_MAX_DUTY_MID = 50.0f; // avg 310 °C below target
static const float HEATER_MAX_DUTY_NEAR = 42.0f; // avg <3 °C below target
static const float HEATER_COLD_BELOW_C = 10.0f;
static const float HEATER_WARM_BELOW_C = 3.0f;
// Ramp-up limit (% per second) — still caps sudden jumps
static const float HEATER_SLEW_UP_PER_S = 18.0f;
// Hot-corner limiter: taper heater as max corner approaches stop temperature
static const float MAX_TEMP_HEADROOM_C = 15.0f;
// Average-temp approach: taper only in the last few °C before setpoint
static const float APPROACH_BAND_C = 4.0f;
// When spread is good, allow hottest corner slightly above target so avg can reach setpoint
static const float GOOD_SPREAD_C = 5.0f;
static const float BALANCED_MAX_ABOVE_TARGET_C = 2.0f;
static const uint16_t HEATER_CYCLE_MS = 3000;
// Fan PWM (0255)
static const uint8_t FAN_IDLE_PWM = 77; // ~30 % — optional override via "fan on"
static const float IDLE_AUTO_FAN_OFF_TEMP_C = 40.0f; // idle: fans off when max corner below this
static const uint8_t FAN_MIX_MIN_PWM = 70; // ~27 % — light mixing when spread rises
static const uint8_t FAN_HEAT_MIN_PWM = 100; // ~39 % — floor while heating
static const uint8_t FAN_HEAT_MAX_PWM = 140; // ~55 % — cap during heat-up
static const uint8_t FAN_MIX_MAX_PWM = 200; // ~78 % — cap for spread-driven mixing
static const uint8_t FAN_MAX_PWM = 255; // failsafe / over-temp only
// Corner mixing — moderate airflow; full speed reserved for safety
static const float SPREAD_DEADBAND_C = 0.5f;
static const float SPREAD_FULL_MIX_C = 8.0f;
static const float SPREAD_EMA_ALPHA = 0.45f;
// PID auto-tune (relay method) — run with: autotune 45
static const float AUTOTUNE_HYSTERESIS_C = 0.4f;
static const float AUTOTUNE_PREHEAT_BAND_C = 5.0f;
static const float AUTOTUNE_PREHEAT_DUTY = 80.0f;
static const float AUTOTUNE_ABORT_ABOVE_C = 15.0f;
static const uint8_t AUTOTUNE_CYCLES_REQUIRED = 6;
static const uint32_t AUTOTUNE_TIMEOUT_MS = 1800000UL;
// ---------------------------------------------------------------------------
// Timing
// ---------------------------------------------------------------------------
static const uint32_t SENSOR_READ_INTERVAL_MS = 1000;
static const uint32_t CONTROL_INTERVAL_MS = 500;
static const uint32_t SERIAL_REPORT_INTERVAL_MS = 2000;
static const bool LOG_CSV_DEFAULT = false; // enable with serial command: log on

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include/csv_logger.h Normal file
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#pragma once
#include <Arduino.h>
#include "config.h"
#include "thermal_controller.h"
struct SensorReading {
float temperatureC = NAN;
float humidityPct = NAN;
bool valid = false;
};
void printCsvHeader() {
Serial.println(
F("csv_hdr,ms,target_c,avg_c,min_c,max_c,spread_c,heatlim_pct,heater_pct,fan_pct,"
"cutoff,failsafe,ch2_t,ch2_h,ch3_t,ch3_h,ch4_t,ch4_h,ch5_t,ch5_h"));
}
inline void printCsvField(float value, uint8_t decimals) { Serial.print(value, decimals); }
void printCsvRow(uint32_t nowMs, const ThermalController &thermal, const SensorReading *sensors,
uint8_t sensorCount, float avgTemp, float minTemp, float maxTemp) {
Serial.print(F("csv,"));
Serial.print(nowMs);
Serial.print(',');
Serial.print(thermal.target(), 1);
Serial.print(',');
printCsvField(avgTemp, 2);
Serial.print(',');
printCsvField(minTemp, 2);
Serial.print(',');
printCsvField(maxTemp, 2);
Serial.print(',');
printCsvField(thermal.cornerSpread(), 2);
Serial.print(',');
Serial.print(thermal.heaterAllowance(), 0);
Serial.print(',');
printCsvField(thermal.heaterDutyPercent(), 1);
Serial.print(',');
Serial.print((thermal.fanPwm() * 100) / 255);
Serial.print(',');
Serial.print(thermal.isCutoffActive() ? 1 : 0);
Serial.print(',');
Serial.print(thermal.isFailSafeActive() ? 1 : 0);
for (uint8_t i = 0; i < sensorCount; ++i) {
Serial.print(',');
if (sensors[i].valid) {
printCsvField(sensors[i].temperatureC, 2);
Serial.print(',');
printCsvField(sensors[i].humidityPct, 1);
} else {
Serial.print(',');
}
}
Serial.println();
}

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include/pid_autotuner.h Normal file
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#pragma once
#include <Arduino.h>
#include "config.h"
class PidAutotuner {
public:
enum class Phase : uint8_t { Idle, Preheat, Relay, Done, Failed };
PidAutotuner()
: phase_(Phase::Idle),
setpointC_(AUTOTUNE_DEFAULT_TEMP_C),
relayHigh_(0.0f),
relayLow_(0.0f),
peakSinceCross_(0.0f),
valleySinceCross_(0.0f),
lastCrossMs_(0),
periodSumMs_(0),
periodCount_(0),
amplitudeSum_(0.0f),
amplitudeCount_(0),
spreadSum_(0.0f),
spreadSamples_(0),
cycleCount_(0),
aboveSetpoint_(false),
phaseStartMs_(0),
resultKp_(PID_KP),
resultKi_(PID_KI),
resultKd_(PID_KD),
resultFanMixMax_(FAN_MIX_MAX_PWM) {}
Phase phase() const { return phase_; }
bool isActive() const { return phase_ == Phase::Preheat || phase_ == Phase::Relay; }
bool start(float setpointC) {
if (setpointC < 25.0f || setpointC > TARGET_MAX_C) {
return false;
}
setpointC_ = setpointC;
relayHigh_ = setpointC + AUTOTUNE_HYSTERESIS_C;
relayLow_ = setpointC - AUTOTUNE_HYSTERESIS_C;
resetMeasurements();
phase_ = Phase::Preheat;
phaseStartMs_ = millis();
Serial.print(F("autotune: preheat to "));
Serial.print(setpointC_, 1);
Serial.println(F("C"));
return true;
}
void abort() {
if (phase_ == Phase::Preheat || phase_ == Phase::Relay) {
Serial.println(F("autotune: cancelled"));
}
phase_ = Phase::Idle;
}
void reset() { phase_ = Phase::Idle; }
float setpoint() const { return setpointC_; }
float resultKp() const { return resultKp_; }
float resultKi() const { return resultKi_; }
float resultKd() const { return resultKd_; }
uint8_t resultFanMixMax() const { return resultFanMixMax_; }
Phase update(float avgTempC, float maxTempC, float spreadC, uint32_t nowMs, float &heaterDutyOut,
uint8_t &fanPwmOut) {
heaterDutyOut = 0.0f;
fanPwmOut = FAN_HEAT_MIN_PWM;
if (phase_ == Phase::Idle || phase_ == Phase::Done || phase_ == Phase::Failed) {
return phase_;
}
if (maxTempC >= setpointC_ + AUTOTUNE_ABORT_ABOVE_C) {
fail(F("autotune: abort — temperature too high"));
return phase_;
}
if (nowMs - phaseStartMs_ > AUTOTUNE_TIMEOUT_MS) {
fail(F("autotune: abort — timeout"));
return phase_;
}
if (phase_ == Phase::Preheat) {
if (avgTempC >= setpointC_ - AUTOTUNE_PREHEAT_BAND_C) {
enterRelay(avgTempC, nowMs);
} else {
heaterDutyOut = AUTOTUNE_PREHEAT_DUTY;
}
return phase_;
}
spreadSum_ += spreadC;
++spreadSamples_;
if (avgTempC > peakSinceCross_) {
peakSinceCross_ = avgTempC;
}
if (avgTempC < valleySinceCross_) {
valleySinceCross_ = avgTempC;
}
bool heatOn = false;
if (avgTempC <= relayLow_) {
heatOn = true;
} else if (avgTempC >= relayHigh_) {
heatOn = false;
} else {
heatOn = !aboveSetpoint_;
}
heaterDutyOut = heatOn ? 100.0f : 0.0f;
const bool nowAbove = avgTempC >= setpointC_;
if (nowAbove != aboveSetpoint_) {
onSetpointCrossing(nowMs);
aboveSetpoint_ = nowAbove;
}
return phase_;
}
private:
void enterRelay(float avgTempC, uint32_t nowMs) {
phase_ = Phase::Relay;
phaseStartMs_ = nowMs;
aboveSetpoint_ = avgTempC >= setpointC_;
peakSinceCross_ = avgTempC;
valleySinceCross_ = avgTempC;
lastCrossMs_ = 0;
Serial.println(F("autotune: relay test started"));
}
void resetMeasurements() {
peakSinceCross_ = 0.0f;
valleySinceCross_ = 0.0f;
lastCrossMs_ = 0;
periodSumMs_ = 0;
periodCount_ = 0;
amplitudeSum_ = 0.0f;
amplitudeCount_ = 0;
spreadSum_ = 0.0f;
spreadSamples_ = 0;
cycleCount_ = 0;
aboveSetpoint_ = false;
}
void onSetpointCrossing(uint32_t nowMs) {
const float amplitude = peakSinceCross_ - valleySinceCross_;
if (amplitude >= 0.3f) {
amplitudeSum_ += amplitude;
++amplitudeCount_;
++cycleCount_;
Serial.print(F("autotune: cycle "));
Serial.print(cycleCount_);
Serial.print(F(" amp="));
Serial.println(amplitude, 2);
}
if (lastCrossMs_ > 0) {
const uint32_t period = nowMs - lastCrossMs_;
if (period > 8000 && period < 900000) {
periodSumMs_ += period;
++periodCount_;
}
}
lastCrossMs_ = nowMs;
peakSinceCross_ = valleySinceCross_;
if (cycleCount_ >= AUTOTUNE_CYCLES_REQUIRED && periodCount_ >= 3 && amplitudeCount_ >= 3) {
finish();
}
}
void finish() {
const float avgPeriodSec =
static_cast<float>(periodSumMs_ / periodCount_) / 1000.0f;
const float avgAmplitude = amplitudeSum_ / static_cast<float>(amplitudeCount_);
if (avgAmplitude < 0.3f || avgPeriodSec < 8.0f) {
fail(F("autotune: failed — oscillation too small"));
return;
}
const float ku = (4.0f * 100.0f) / (PI * avgAmplitude);
resultKp_ = 0.45f * ku;
resultKi_ = resultKp_ / (2.2f * avgPeriodSec);
resultKd_ = resultKp_ * avgPeriodSec / 6.3f;
if (resultKp_ < 0.5f) {
resultKp_ = 0.5f;
}
if (resultKi_ > resultKp_ / 3.0f) {
resultKi_ = resultKp_ / 3.0f;
}
resultFanMixMax_ = FAN_MIX_MAX_PWM;
const float spreadAvg =
spreadSamples_ > 0 ? spreadSum_ / static_cast<float>(spreadSamples_) : GOOD_SPREAD_C;
if (spreadAvg > GOOD_SPREAD_C) {
const float boost = 1.0f + ((spreadAvg - GOOD_SPREAD_C) / 10.0f);
int boosted = static_cast<int>(static_cast<float>(FAN_MIX_MAX_PWM) * boost);
if (boosted > static_cast<int>(FAN_MAX_PWM) - 20) {
boosted = FAN_MAX_PWM - 20;
}
resultFanMixMax_ = static_cast<uint8_t>(boosted);
}
phase_ = Phase::Done;
Serial.println(F("autotune: done"));
Serial.print(F(" Kp="));
Serial.print(resultKp_, 3);
Serial.print(F(" Ki="));
Serial.print(resultKi_, 4);
Serial.print(F(" Kd="));
Serial.print(resultKd_, 3);
Serial.print(F(" fanMixMax="));
Serial.println(resultFanMixMax_);
}
void fail(const __FlashStringHelper *reason) {
Serial.println(reason);
phase_ = Phase::Failed;
}
Phase phase_;
float setpointC_;
float relayHigh_;
float relayLow_;
float peakSinceCross_;
float valleySinceCross_;
uint32_t lastCrossMs_;
uint32_t periodSumMs_;
uint8_t periodCount_;
float amplitudeSum_;
uint8_t amplitudeCount_;
float spreadSum_;
uint16_t spreadSamples_;
uint8_t cycleCount_;
bool aboveSetpoint_;
uint32_t phaseStartMs_;
float resultKp_;
float resultKi_;
float resultKd_;
uint8_t resultFanMixMax_;
};

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#pragma once
class PidController {
public:
PidController(float kp, float ki, float kd, float outputMin, float outputMax)
: kp_(kp),
ki_(ki),
kd_(kd),
outputMin_(outputMin),
outputMax_(outputMax) {}
void setTunings(float kp, float ki, float kd) {
kp_ = kp;
ki_ = ki;
kd_ = kd;
}
void setSetpoint(float setpoint) { setpoint_ = setpoint; }
void reset() {
integral_ = 0.0f;
prevInput_ = 0.0f;
firstSample_ = true;
}
float compute(float input, uint32_t nowMs) {
if (firstSample_) {
prevInput_ = input;
prevTimeMs_ = nowMs;
firstSample_ = false;
return outputMin_;
}
const float dt = static_cast<float>(nowMs - prevTimeMs_) / 1000.0f;
if (dt <= 0.0f) {
return lastOutput_;
}
const float error = setpoint_ - input;
integral_ += error * dt;
// Anti-windup: clamp integral so output cannot exceed limits
const float integralMax = (outputMax_ - outputMin_) / (ki_ > 0.0f ? ki_ : 1.0f);
if (integral_ > integralMax) {
integral_ = integralMax;
} else if (integral_ < 0.0f) {
integral_ = 0.0f;
}
const float derivative = (input - prevInput_) / dt;
float output = kp_ * error + ki_ * integral_ - kd_ * derivative;
if (output < outputMin_) {
output = outputMin_;
} else if (output > outputMax_) {
output = outputMax_;
}
prevInput_ = input;
prevTimeMs_ = nowMs;
lastOutput_ = output;
return output;
}
float lastOutput() const { return lastOutput_; }
float kp() const { return kp_; }
float ki() const { return ki_; }
float kd() const { return kd_; }
private:
float kp_;
float ki_;
float kd_;
float outputMin_;
float outputMax_;
float setpoint_ = 0.0f;
float integral_ = 0.0f;
float prevInput_ = 0.0f;
float lastOutput_ = 0.0f;
uint32_t prevTimeMs_ = 0;
bool firstSample_ = true;
};

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include/tca9548a.h Normal file
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#pragma once
#include <Wire.h>
class Tca9548a {
public:
explicit Tca9548a(uint8_t address) : address_(address), activeChannel_(0xFF) {}
bool begin() {
Wire.beginTransmission(address_);
return Wire.endTransmission() == 0;
}
bool selectChannel(uint8_t channel) {
if (channel > 7) {
return false;
}
const uint8_t mask = static_cast<uint8_t>(1u << channel);
if (mask == activeChannel_) {
return true;
}
Wire.beginTransmission(address_);
Wire.write(mask);
if (Wire.endTransmission() != 0) {
return false;
}
activeChannel_ = mask;
return true;
}
void disableAll() {
Wire.beginTransmission(address_);
Wire.write(0x00);
Wire.endTransmission();
activeChannel_ = 0x00;
}
private:
uint8_t address_;
uint8_t activeChannel_;
};

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#pragma once
#include <Arduino.h>
#include "config.h"
#include "pid_autotuner.h"
#include "pid_controller.h"
#include "tuning_store.h"
class ThermalController {
public:
ThermalController()
: pid_(PID_KP, PID_KI, PID_KD, 0.0f, 100.0f),
autotuner_(),
targetTempC_(TARGET_TEMP_C),
heaterDutyPercent_(0.0f),
heaterAllowancePercent_(100.0f),
cornerSpreadC_(0.0f),
lastMaxTempC_(0.0f),
fanPwm_(FAN_MAX_PWM),
fanMixMax_(FAN_MIX_MAX_PWM),
adaptiveEnabled_(false),
fanIdleOverride_(false),
sensorWarmValid_(false),
cutoffActive_(false),
failSafeActive_(true),
heaterCycleStartMs_(0),
lastHeaterUpdateMs_(0),
heaterOn_(false) {}
void begin() {
pinMode(FAN_PIN, OUTPUT);
pinMode(HEATER_PIN, OUTPUT);
digitalWrite(HEATER_PIN, LOW);
pid_.setSetpoint(targetTempC_);
pid_.reset();
heaterCycleStartMs_ = millis();
lastHeaterUpdateMs_ = 0;
failSafeActive_ = true;
fanPwm_ = FAN_MAX_PWM;
cornerSpreadC_ = 0.0f;
lastMaxTempC_ = 0.0f;
sensorWarmValid_ = false;
heaterAllowancePercent_ = 100.0f;
if (isIdle()) {
forceHeaterOff();
}
applyFan();
TuningData stored;
if (tuningLoad(stored)) {
applyTuning(stored);
Serial.println(F("Loaded learned PID from EEPROM"));
printTuning();
}
}
void applyTuning(const TuningData &data) {
pid_.setTunings(data.kp, data.ki, data.kd);
fanMixMax_ = data.fanMixMax;
adaptiveEnabled_ = true;
}
void clearTuning() {
adaptiveEnabled_ = false;
fanMixMax_ = FAN_MIX_MAX_PWM;
pid_.setTunings(PID_KP, PID_KI, PID_KD);
tuningClear();
pid_.reset();
Serial.println(F("PID reset to defaults"));
}
void printTuning() const {
Serial.print(F("PID Kp="));
Serial.print(pidKp(), 3);
Serial.print(F(" Ki="));
Serial.print(pidKi(), 4);
Serial.print(F(" Kd="));
Serial.print(pidKd(), 3);
Serial.print(F(" fanMixMax="));
Serial.print(fanMixMax_);
Serial.print(F(" adaptive="));
Serial.println(adaptiveEnabled_ ? F("yes") : F("no"));
}
float pidKp() const { return pid_.kp(); }
float pidKi() const { return pid_.ki(); }
float pidKd() const { return pid_.kd(); }
bool isAdaptive() const { return adaptiveEnabled_; }
bool startAutotune(float setpointC) {
if (autotuner_.isActive()) {
return false;
}
adaptiveEnabled_ = false;
cutoffActive_ = false;
pid_.reset();
return autotuner_.start(setpointC);
}
void stopAutotune() { autotuner_.abort(); }
bool isAutotuning() const { return autotuner_.isActive(); }
bool commitAutotuneIfDone() {
if (autotuner_.phase() != PidAutotuner::Phase::Done) {
return false;
}
TuningData data;
data.magic = TUNING_MAGIC;
data.kp = autotuner_.resultKp();
data.ki = autotuner_.resultKi();
data.kd = autotuner_.resultKd();
data.fanMixMax = autotuner_.resultFanMixMax();
tuningSave(data);
applyTuning(data);
autotuner_.reset();
Serial.println(F("Saved learned PID to EEPROM"));
return true;
}
void setTarget(float targetC) {
targetTempC_ = targetC;
pid_.setSetpoint(targetC);
pid_.reset();
cutoffActive_ = false;
if (targetC > 0.0f) {
fanIdleOverride_ = false;
} else {
forceHeaterOff();
fanIdleOverride_ = false;
}
applyFan();
}
void noteSensorMax(float maxTempC) {
lastMaxTempC_ = maxTempC;
sensorWarmValid_ = true;
}
bool setFanOff() {
if (!isIdle()) {
return false;
}
fanIdleOverride_ = false;
applyFan();
return true;
}
void setFanIdle() {
if (!isIdle()) {
return;
}
if (!sensorWarmValid_ || lastMaxTempC_ >= IDLE_AUTO_FAN_OFF_TEMP_C) {
return;
}
fanIdleOverride_ = true;
applyFan();
}
bool isFanOff() const {
return isIdle() && sensorWarmValid_ && lastMaxTempC_ < IDLE_AUTO_FAN_OFF_TEMP_C &&
!fanIdleOverride_;
}
bool isIdleCooling() const {
return isIdle() &&
(!sensorWarmValid_ || lastMaxTempC_ >= IDLE_AUTO_FAN_OFF_TEMP_C);
}
float target() const { return targetTempC_; }
bool isIdle() const { return targetTempC_ <= 0.0f; }
float cutoffThreshold() const {
if (isIdle()) {
return INFINITY;
}
return targetTempC_ * (1.0f + OVERTEMP_FRACTION);
}
bool isCutoffActive() const { return cutoffActive_; }
bool isFailSafeActive() const { return failSafeActive_; }
float heaterDutyPercent() const { return heaterDutyPercent_; }
float heaterAllowance() const { return heaterAllowancePercent_; }
float cornerSpread() const { return cornerSpreadC_; }
uint8_t fanPwm() const { return fanPwm_; }
void update(float avgTempC, float maxTempC, float cornerSpreadC, uint32_t nowMs) {
failSafeActive_ = false;
noteSensorMax(maxTempC);
cornerSpreadC_ =
SPREAD_EMA_ALPHA * cornerSpreadC +
(1.0f - SPREAD_EMA_ALPHA) * cornerSpreadC_;
if (autotuner_.isActive()) {
updateAutotune(avgTempC, maxTempC, nowMs);
return;
}
if (isIdle()) {
forceHeaterOff();
cutoffActive_ = false;
pid_.reset();
lastHeaterUpdateMs_ = nowMs;
applyFan();
return;
}
if (adaptiveEnabled_) {
updateAdaptive(avgTempC, maxTempC, nowMs);
} else {
updateLegacy(avgTempC, maxTempC, nowMs);
}
lastHeaterUpdateMs_ = nowMs;
applyHeaterBurst(nowMs);
applyFan();
}
void enterFailSafe() {
failSafeActive_ = true;
cutoffActive_ = false;
forceHeaterOff();
applyFan();
pid_.reset();
autotuner_.abort();
}
void forceHeaterOff() {
heaterDutyPercent_ = 0.0f;
heaterAllowancePercent_ = 0.0f;
heaterOn_ = false;
digitalWrite(HEATER_PIN, LOW);
}
void writeFan(uint8_t pwm) {
fanPwm_ = pwm;
if (pwm == 0) {
// Re-assert output and stop Timer0 PWM on D5 — analogWrite(0) can leave the pin driving
pinMode(FAN_PIN, OUTPUT);
digitalWrite(FAN_PIN, LOW);
} else {
analogWrite(FAN_PIN, pwm);
}
}
private:
void updateAutotune(float avgTempC, float maxTempC, uint32_t nowMs) {
float duty = 0.0f;
uint8_t fan = FAN_HEAT_MIN_PWM;
autotuner_.update(avgTempC, maxTempC, cornerSpreadC_, nowMs, duty, fan);
heaterDutyPercent_ = duty;
heaterAllowancePercent_ = duty;
heaterOn_ = duty >= 50.0f;
digitalWrite(HEATER_PIN, heaterOn_ ? HIGH : LOW);
writeFan(fan);
lastHeaterUpdateMs_ = nowMs;
commitAutotuneIfDone();
}
void updateAdaptive(float avgTempC, float maxTempC, uint32_t nowMs) {
const float cutoff = cutoffThreshold();
if (maxTempC >= cutoff) {
cutoffActive_ = true;
heaterDutyPercent_ = 0.0f;
heaterAllowancePercent_ = 0.0f;
heaterOn_ = false;
pid_.reset();
return;
}
if (cutoffActive_ && maxTempC <= targetTempC_) {
cutoffActive_ = false;
pid_.reset();
}
if (cutoffActive_) {
return;
}
const float maxHeatStopC = maxHeatStopTemp(avgTempC);
if (maxTempC >= maxHeatStopC) {
heaterDutyPercent_ = 0.0f;
heaterAllowancePercent_ = 0.0f;
pid_.reset();
return;
}
float duty = pid_.compute(avgTempC, nowMs);
const float maxDuty = heaterMaxDuty(avgTempC);
if (duty > maxDuty) {
duty = maxDuty;
}
heaterAllowancePercent_ = maxDuty;
heaterDutyPercent_ = duty;
}
void updateLegacy(float avgTempC, float maxTempC, uint32_t nowMs) {
const float cutoff = cutoffThreshold();
if (maxTempC >= cutoff) {
cutoffActive_ = true;
heaterDutyPercent_ = 0.0f;
heaterAllowancePercent_ = 0.0f;
heaterOn_ = false;
pid_.reset();
return;
}
if (cutoffActive_ && maxTempC <= targetTempC_) {
cutoffActive_ = false;
pid_.reset();
}
if (cutoffActive_) {
return;
}
const float maxHeatStopC = maxHeatStopTemp(avgTempC);
if (maxTempC >= maxHeatStopC) {
heaterDutyPercent_ = 0.0f;
heaterAllowancePercent_ = 0.0f;
pid_.reset();
return;
}
const float pidOut = pid_.compute(avgTempC, nowMs);
heaterAllowancePercent_ = heaterAllowancePercent(avgTempC, maxTempC);
float duty = pidOut;
if (duty > heaterAllowancePercent_) {
duty = heaterAllowancePercent_;
}
heaterDutyPercent_ = applyHeaterRamp(duty, avgTempC, nowMs);
}
static float clampPercent(float value) {
if (value < 0.0f) {
return 0.0f;
}
if (value > 100.0f) {
return 100.0f;
}
return value;
}
bool isBalancedChamber() const { return cornerSpreadC_ <= GOOD_SPREAD_C; }
float maxHeatStopTemp(float avgTempC) const {
if (isBalancedChamber() && avgTempC < targetTempC_) {
return targetTempC_ + BALANCED_MAX_ABOVE_TARGET_C;
}
return targetTempC_;
}
float allowanceFromMaxCorner(float maxTempC, float avgTempC) const {
if (isBalancedChamber() && avgTempC < targetTempC_) {
return 100.0f;
}
const float stopAt = maxHeatStopTemp(avgTempC);
if (maxTempC >= stopAt) {
return 0.0f;
}
const float headroom = stopAt - maxTempC;
if (headroom >= MAX_TEMP_HEADROOM_C) {
return 100.0f;
}
return clampPercent((headroom / MAX_TEMP_HEADROOM_C) * 100.0f);
}
float allowanceFromAverage(float avgTempC) const {
if (avgTempC >= targetTempC_) {
return 0.0f;
}
const float below = targetTempC_ - avgTempC;
if (below >= APPROACH_BAND_C) {
return 100.0f;
}
return clampPercent((below / APPROACH_BAND_C) * 100.0f);
}
float heaterMaxDuty(float avgTempC) const {
if (avgTempC >= targetTempC_) {
return HEATER_MAX_DUTY_NEAR;
}
const float below = targetTempC_ - avgTempC;
if (below > HEATER_COLD_BELOW_C) {
return HEATER_MAX_DUTY_COLD;
}
if (below > HEATER_WARM_BELOW_C) {
return HEATER_MAX_DUTY_MID;
}
return HEATER_MAX_DUTY_NEAR;
}
float heaterAllowancePercent(float avgTempC, float maxTempC) const {
const float fromMax = allowanceFromMaxCorner(maxTempC, avgTempC);
const float fromAvg = allowanceFromAverage(avgTempC);
float allowance = fromMax < fromAvg ? fromMax : fromAvg;
const float maxDuty = heaterMaxDuty(avgTempC);
if (allowance > maxDuty) {
allowance = maxDuty;
}
return allowance;
}
float applyHeaterRamp(float requestedDuty, float avgTempC, uint32_t nowMs) {
const float maxDuty = heaterMaxDuty(avgTempC);
if (requestedDuty > maxDuty) {
requestedDuty = maxDuty;
}
if (lastHeaterUpdateMs_ > 0 && requestedDuty > heaterDutyPercent_) {
const float dt = static_cast<float>(nowMs - lastHeaterUpdateMs_) / 1000.0f;
const float maxUp = heaterDutyPercent_ + HEATER_SLEW_UP_PER_S * dt;
if (requestedDuty > maxUp) {
requestedDuty = maxUp;
}
}
return requestedDuty;
}
uint8_t fanPwmForHeaterDemand() const {
if (heaterDutyPercent_ <= 0.0f) {
return 0;
}
const uint8_t span = FAN_HEAT_MAX_PWM - FAN_HEAT_MIN_PWM;
return FAN_HEAT_MIN_PWM +
static_cast<uint8_t>((heaterDutyPercent_ / 100.0f) * static_cast<float>(span));
}
uint8_t fanPwmForCornerSpread() const {
if (cornerSpreadC_ <= SPREAD_DEADBAND_C) {
return 0;
}
float spread = cornerSpreadC_;
if (spread > SPREAD_FULL_MIX_C) {
spread = SPREAD_FULL_MIX_C;
}
const float t =
(spread - SPREAD_DEADBAND_C) / (SPREAD_FULL_MIX_C - SPREAD_DEADBAND_C);
const uint8_t mixMax = fanMixMax_;
const uint8_t mixMin = FAN_MIX_MIN_PWM;
const uint8_t span = mixMax > mixMin ? mixMax - mixMin : 0;
return mixMin + static_cast<uint8_t>(t * static_cast<float>(span));
}
void applyHeaterBurst(uint32_t nowMs) {
if (heaterDutyPercent_ <= 0.0f) {
forceHeaterOff();
return;
}
if (nowMs - heaterCycleStartMs_ >= HEATER_CYCLE_MS) {
heaterCycleStartMs_ = nowMs;
}
const float onFraction = heaterDutyPercent_ / 100.0f;
const uint32_t onTimeMs = static_cast<uint32_t>(HEATER_CYCLE_MS * onFraction);
const bool shouldHeat = (nowMs - heaterCycleStartMs_) < onTimeMs;
if (shouldHeat != heaterOn_) {
heaterOn_ = shouldHeat;
digitalWrite(HEATER_PIN, heaterOn_ ? HIGH : LOW);
}
}
void applyFan() {
if (isIdle()) {
if (!sensorWarmValid_ || lastMaxTempC_ >= IDLE_AUTO_FAN_OFF_TEMP_C) {
writeFan(FAN_MAX_PWM);
} else if (fanIdleOverride_) {
writeFan(FAN_IDLE_PWM);
} else {
writeFan(0);
}
return;
}
if (failSafeActive_ || cutoffActive_) {
writeFan(FAN_MAX_PWM);
return;
}
uint8_t duty = fanPwmForHeaterDemand();
const uint8_t mixFan = fanPwmForCornerSpread();
if (mixFan > duty) {
duty = mixFan;
}
if (lastMaxTempC_ > targetTempC_ && duty < FAN_MAX_PWM) {
duty = FAN_MAX_PWM;
}
writeFan(duty);
}
PidController pid_;
PidAutotuner autotuner_;
float targetTempC_;
float heaterDutyPercent_;
float heaterAllowancePercent_;
float cornerSpreadC_;
float lastMaxTempC_;
uint8_t fanPwm_;
uint8_t fanMixMax_;
bool adaptiveEnabled_;
bool fanIdleOverride_;
bool sensorWarmValid_;
bool cutoffActive_;
bool failSafeActive_;
uint32_t heaterCycleStartMs_;
uint32_t lastHeaterUpdateMs_;
bool heaterOn_;
};

45
include/tuning_store.h Normal file
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#pragma once
#include <Arduino.h>
#include <EEPROM.h>
#include "config.h"
static const uint16_t TUNING_MAGIC = 0xDA7A;
static const int TUNING_EEPROM_ADDR = 0;
struct TuningData {
uint16_t magic = 0;
float kp = PID_KP;
float ki = PID_KI;
float kd = PID_KD;
uint8_t fanMixMax = FAN_MIX_MAX_PWM;
};
inline uint8_t tuningChecksum(const TuningData &data) {
const uint8_t *bytes = reinterpret_cast<const uint8_t *>(&data);
uint8_t sum = 0;
for (uint8_t i = 0; i < sizeof(TuningData) - 1; ++i) {
sum ^= bytes[i];
}
return sum;
}
inline bool tuningLoad(TuningData &out) {
EEPROM.get(TUNING_EEPROM_ADDR, out);
const uint8_t stored = EEPROM.read(TUNING_EEPROM_ADDR + sizeof(TuningData));
if (out.magic != TUNING_MAGIC) {
return false;
}
return tuningChecksum(out) == stored;
}
inline void tuningSave(const TuningData &data) {
EEPROM.put(TUNING_EEPROM_ADDR, data);
EEPROM.write(TUNING_EEPROM_ADDR + sizeof(TuningData), tuningChecksum(data));
}
inline void tuningClear() {
TuningData cleared;
tuningSave(cleared);
}

9
platformio.ini Normal file
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; Voron filament dryer — Arduino Nano (ATmega328P)
[env:nanoatmega328]
platform = atmelavr
board = nanoatmega328
framework = arduino
monitor_speed = 115200
lib_deps =
adafruit/Adafruit SHT31 Library@^2.2.2
adafruit/Adafruit BusIO@^1.16.1

147
scripts/capture_csv.py Executable file
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#!/usr/bin/env python3
"""Capture filament dryer CSV lines from serial into a file.
Designed for a Raspberry Pi attached to the dryer Nano over USB. The Arduino
still owns sensors and control; this script only records the csv,* stream.
"""
from __future__ import annotations
import argparse
import sys
import time
from datetime import datetime, timezone
from pathlib import Path
FALLBACK_HEADER = (
"wall_time,ms,target_c,avg_c,min_c,max_c,spread_c,heatlim_pct,heater_pct,"
"fan_pct,cutoff,failsafe,ch2_t,ch2_h,ch3_t,ch3_h,ch4_t,ch4_h,ch5_t,ch5_h"
)
def detect_serial_port() -> str | None:
by_id = Path("/dev/serial/by-id")
if by_id.is_dir():
patterns = ("*Arduino*", "*arduino*", "*2341*", "*1a86*", "*CH340*", "*ch340*")
for pattern in patterns:
matches = sorted(by_id.glob(pattern))
if matches:
return str(matches[0])
for candidate in ("/dev/ttyACM0", "/dev/ttyACM1", "/dev/ttyUSB0", "/dev/ttyUSB1"):
if Path(candidate).exists():
return candidate
return None
def enable_dryer_logging(ser, retries: int = 3) -> None:
for attempt in range(retries):
ser.reset_input_buffer()
ser.write(b"log on\n")
ser.flush()
deadline = time.monotonic() + 2.0
while time.monotonic() < deadline:
raw = ser.readline()
if not raw:
continue
line = raw.decode("utf-8", errors="replace").strip()
if line == "OK csv logging on" or line.startswith("csv_hdr,"):
return
if line.startswith("csv,"):
return
time.sleep(0.5 * (attempt + 1))
print("WARN: did not see 'OK csv logging on' — continuing anyway", file=sys.stderr)
def main() -> int:
parser = argparse.ArgumentParser(description=__doc__)
parser.add_argument(
"-p",
"--port",
help="Serial port (default: auto-detect on Pi, else /dev/ttyUSB0)",
)
parser.add_argument("-b", "--baud", type=int, default=115200)
parser.add_argument(
"-o",
"--output",
type=Path,
help="Output CSV file (default: logs/dryer_YYYYMMDD_HHMMSS.csv)",
)
parser.add_argument(
"--log-dir",
type=Path,
default=Path("logs"),
help="Directory for default timestamped log files",
)
parser.add_argument(
"--auto-log-on",
action=argparse.BooleanOptionalAction,
default=True,
help="Send 'log on' to the dryer after connect (default: on)",
)
args = parser.parse_args()
port = args.port
if port is None:
port = detect_serial_port()
if port is None:
port = "/dev/ttyUSB0"
print(
f"WARN: no serial device found, using {port}",
file=sys.stderr,
)
try:
import serial
except ImportError:
print("Install pyserial: pip install pyserial", file=sys.stderr)
return 1
out = args.output
if out is None:
out = args.log_dir / f"dryer_{datetime.now():%Y%m%d_%H%M%S}.csv"
out.parent.mkdir(parents=True, exist_ok=True)
print(f"Logging {port} -> {out}", file=sys.stderr)
if args.auto_log_on:
print("Will send 'log on' after connect", file=sys.stderr)
else:
print("Send 'log on' to the dryer if CSV rows are not appearing", file=sys.stderr)
header_written = False
with serial.Serial(port, args.baud, timeout=1) as ser, out.open("w", encoding="utf-8") as fh:
time.sleep(2.0) # allow Nano reset after USB open
if args.auto_log_on:
enable_dryer_logging(ser)
while True:
try:
raw = ser.readline()
except KeyboardInterrupt:
print("\nStopped.", file=sys.stderr)
return 0
if not raw:
continue
line = raw.decode("utf-8", errors="replace").strip()
if not line.startswith("csv_hdr,") and not line.startswith("csv,"):
continue
if line.startswith("csv_hdr,"):
device_header = line[len("csv_hdr,") :]
fh.write("wall_time," + device_header + "\n")
header_written = True
fh.flush()
continue
if not header_written:
fh.write(FALLBACK_HEADER + "\n")
header_written = True
wall_time = datetime.now(timezone.utc).isoformat(timespec="seconds")
fh.write(wall_time + "," + line[len("csv,") :] + "\n")
fh.flush()
if __name__ == "__main__":
raise SystemExit(main())

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[Unit]
Description=Voron filament dryer CSV logger
After=multi-user.target
# Give USB time to enumerate after boot
After=systemd-udev-settle.service
[Service]
Type=simple
# Adjust user and paths to match your Pi setup
User=pi
WorkingDirectory=/home/pi/voron-filament-dryer
ExecStart=/usr/bin/python3 /home/pi/voron-filament-dryer/scripts/capture_csv.py --log-dir /home/pi/voron-filament-dryer/logs
Restart=on-failure
RestartSec=10
[Install]
WantedBy=multi-user.target

1
scripts/requirements.txt Normal file
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pyserial>=3.5

409
src/main.cpp Normal file
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#include <Arduino.h>
#include <Wire.h>
#include <Adafruit_SHT31.h>
#include "config.h"
#include "csv_logger.h"
#include "tca9548a.h"
#include "thermal_controller.h"
Tca9548a mux(TCA9548A_ADDRESS);
Adafruit_SHT31 sht31;
ThermalController thermal;
SensorReading sensors[SENSOR_COUNT];
uint32_t lastSensorReadMs = 0;
uint32_t lastControlMs = 0;
uint32_t lastReportMs = 0;
char serialLine[48];
uint8_t serialLineLen = 0;
bool csvLogEnabled = LOG_CSV_DEFAULT;
bool readSensorOnChannel(uint8_t channel, SensorReading &out) {
if (!mux.selectChannel(channel)) {
out.valid = false;
return false;
}
if (!sht31.begin(SHT31_ADDRESS)) {
out.valid = false;
return false;
}
const float temp = sht31.readTemperature();
const float humidity = sht31.readHumidity();
if (isnan(temp) || isnan(humidity)) {
out.valid = false;
return false;
}
out.temperatureC = temp;
out.humidityPct = humidity;
out.valid = true;
return true;
}
void readAllSensors() {
for (uint8_t i = 0; i < SENSOR_COUNT; ++i) {
readSensorOnChannel(SENSOR_CHANNELS[i], sensors[i]);
}
mux.disableAll();
}
float averageValidTemperature() {
float sum = 0.0f;
uint8_t count = 0;
for (uint8_t i = 0; i < SENSOR_COUNT; ++i) {
if (sensors[i].valid) {
sum += sensors[i].temperatureC;
++count;
}
}
return count > 0 ? sum / static_cast<float>(count) : NAN;
}
float minValidTemperature() {
float minTemp = INFINITY;
for (uint8_t i = 0; i < SENSOR_COUNT; ++i) {
if (sensors[i].valid && sensors[i].temperatureC < minTemp) {
minTemp = sensors[i].temperatureC;
}
}
return minTemp < INFINITY ? minTemp : NAN;
}
float maxValidTemperature() {
float maxTemp = -INFINITY;
for (uint8_t i = 0; i < SENSOR_COUNT; ++i) {
if (sensors[i].valid && sensors[i].temperatureC > maxTemp) {
maxTemp = sensors[i].temperatureC;
}
}
return maxTemp > -INFINITY ? maxTemp : NAN;
}
float cornerTemperatureSpread() {
const float minTemp = minValidTemperature();
const float maxTemp = maxValidTemperature();
if (isnan(minTemp) || isnan(maxTemp)) {
return NAN;
}
return maxTemp - minTemp;
}
void printStatus(float avgTemp, float minTemp, float maxTemp) {
Serial.print(F("target="));
if (thermal.isIdle()) {
Serial.print(F("idle"));
} else {
Serial.print(thermal.target(), 1);
}
Serial.print(F("C cutoff="));
if (thermal.isIdle()) {
Serial.print(F("n/a"));
} else {
Serial.print(thermal.cutoffThreshold(), 1);
}
Serial.print(F("C avg="));
Serial.print(avgTemp, 2);
Serial.print(F("C min="));
Serial.print(minTemp, 2);
Serial.print(F("C max="));
Serial.print(maxTemp, 2);
Serial.print(F("C spread="));
Serial.print(thermal.cornerSpread(), 2);
Serial.print(F("C heatlim="));
Serial.print(thermal.heaterAllowance(), 0);
Serial.print(F("% heater="));
Serial.print(thermal.heaterDutyPercent(), 1);
Serial.print(F("% fan="));
Serial.print((thermal.fanPwm() * 100) / 255);
if (thermal.isIdle() && thermal.isFanOff()) {
Serial.print(F("(off)"));
} else if (thermal.isIdleCooling()) {
Serial.print(F("(cooldown)"));
}
Serial.print(F(" cutoff="));
Serial.print(thermal.isCutoffActive() ? F("YES") : F("no"));
Serial.print(F(" failsafe="));
Serial.print(thermal.isFailSafeActive() ? F("YES") : F("no"));
Serial.print(F(" mode="));
if (thermal.isAutotuning()) {
Serial.print(F("autotune"));
} else if (thermal.isAdaptive()) {
Serial.print(F("learned"));
} else {
Serial.print(F("manual"));
}
Serial.print(F(" sensors=["));
for (uint8_t i = 0; i < SENSOR_COUNT; ++i) {
if (i > 0) {
Serial.print(F(", "));
}
Serial.print(F("ch"));
Serial.print(SENSOR_CHANNELS[i]);
Serial.print(F(":"));
if (sensors[i].valid) {
Serial.print(sensors[i].temperatureC, 1);
Serial.print(F("C/"));
Serial.print(sensors[i].humidityPct, 0);
Serial.print(F("%"));
} else {
Serial.print(F("ERR"));
}
}
Serial.println(F("]"));
}
void printHelp() {
Serial.println(F("Commands:"));
Serial.println(F(" target <C> set target (0 = idle)"));
Serial.println(F(" fan off cancel idle fan override (auto-off below 40C)"));
Serial.println(F(" fan on idle fan 30% (optional, auto-off below 40C)"));
Serial.println(F(" autotune [C] learn PID (default: 40C when idle)"));
Serial.println(F(" autotune stop"));
Serial.println(F(" pid show PID / adaptive status"));
Serial.println(F(" pid default reset to factory PID"));
Serial.println(F(" status print current readings"));
Serial.println(F(" log on|off CSV data stream"));
Serial.println(F(" help show this message"));
}
void refreshThermalSensorMax() {
const float maxTemp = maxValidTemperature();
if (!isnan(maxTemp)) {
thermal.noteSensorMax(maxTemp);
}
}
void processSerialLine(const char *line) {
while (*line == ' ' || *line == '\t') {
++line;
}
if (*line == '\0') {
return;
}
if (strncmp(line, "target ", 7) == 0) {
const float targetC = atof(line + 7);
if (targetC < TARGET_MIN_C || targetC > TARGET_MAX_C) {
Serial.print(F("ERR target must be "));
Serial.print(TARGET_MIN_C, 0);
Serial.print(F("-"));
Serial.print(TARGET_MAX_C, 0);
Serial.println(F(" C"));
return;
}
refreshThermalSensorMax();
thermal.setTarget(targetC);
if (targetC <= 0.0f) {
Serial.println(F("OK idle — heater off, fan auto-off when max < 40C"));
} else {
Serial.print(F("OK target="));
Serial.print(targetC, 1);
Serial.print(F("C cutoff="));
Serial.print(thermal.cutoffThreshold(), 1);
Serial.println(F("C"));
}
return;
}
if (strcmp(line, "fan off") == 0) {
refreshThermalSensorMax();
if (!thermal.setFanOff()) {
Serial.println(F("ERR fan off requires target 0 first (send: target 0)"));
return;
}
if (thermal.isIdleCooling()) {
Serial.println(F("OK cooling — fans stay on until max < 40C"));
} else {
Serial.println(F("OK fans off"));
}
return;
}
if (strcmp(line, "fan on") == 0) {
refreshThermalSensorMax();
if (!thermal.isIdle()) {
Serial.println(F("ERR fan on only when target is 0"));
return;
}
if (thermal.isIdleCooling()) {
Serial.println(F("ERR fan on blocked — still cooling (max >= 40C)"));
return;
}
thermal.setFanIdle();
Serial.println(F("OK fans at idle 30%"));
return;
}
if (strcmp(line, "status") == 0) {
const float avgTemp = averageValidTemperature();
const float minTemp = minValidTemperature();
const float maxTemp = maxValidTemperature();
if (!isnan(avgTemp) && !isnan(minTemp) && !isnan(maxTemp)) {
printStatus(avgTemp, minTemp, maxTemp);
} else {
Serial.println(F("WARN: no valid sensor readings"));
}
return;
}
if (strncmp(line, "autotune", 8) == 0) {
if (strcmp(line, "autotune stop") == 0) {
thermal.stopAutotune();
Serial.println(F("OK autotune cancelled"));
return;
}
float tuneTarget = thermal.target();
if (line[8] == ' ') {
tuneTarget = atof(line + 9);
} else if (tuneTarget <= 0.0f) {
tuneTarget = AUTOTUNE_DEFAULT_TEMP_C;
}
if (tuneTarget <= 0.0f || tuneTarget > TARGET_MAX_C) {
Serial.println(F("ERR autotune temperature must be 25-80 C"));
return;
}
thermal.setTarget(tuneTarget);
if (!thermal.startAutotune(tuneTarget)) {
Serial.println(F("ERR autotune already running"));
return;
}
Serial.println(F("OK autotune started — keep chamber closed, wait ~10-20 min"));
return;
}
if (strcmp(line, "pid") == 0 || strcmp(line, "pid show") == 0) {
thermal.printTuning();
return;
}
if (strcmp(line, "pid default") == 0) {
thermal.clearTuning();
return;
}
if (strcmp(line, "help") == 0) {
printHelp();
return;
}
if (strcmp(line, "log on") == 0) {
csvLogEnabled = true;
printCsvHeader();
Serial.println(F("OK csv logging on"));
return;
}
if (strcmp(line, "log off") == 0) {
csvLogEnabled = false;
Serial.println(F("OK csv logging off"));
return;
}
if (strcmp(line, "log") == 0) {
Serial.println(csvLogEnabled ? F("OK csv logging on") : F("OK csv logging off"));
return;
}
Serial.println(F("ERR unknown command (try help)"));
}
void pollSerial() {
while (Serial.available() > 0) {
const char c = static_cast<char>(Serial.read());
if (c == '\n' || c == '\r') {
if (serialLineLen > 0) {
serialLine[serialLineLen] = '\0';
processSerialLine(serialLine);
serialLineLen = 0;
}
} else if (serialLineLen < sizeof(serialLine) - 1) {
serialLine[serialLineLen++] = c;
}
}
}
void setup() {
// Claim outputs before anything else — fan on, heater off (fail-safe)
thermal.begin();
Serial.begin(115200);
while (!Serial && millis() < 3000) {
delay(10);
}
Wire.begin();
if (!mux.begin()) {
Serial.println(F("ERROR: TCA9548A not found on I2C bus"));
} else {
Serial.println(F("TCA9548A detected"));
}
Serial.print(F("Filament dryer ready. "));
if (thermal.isIdle()) {
Serial.println(F("Idle — send target <C> to start drying"));
} else {
Serial.print(F("Target "));
Serial.print(thermal.target(), 1);
Serial.print(F(" C, hard cutoff at "));
Serial.print(thermal.cutoffThreshold(), 1);
Serial.println(F(" C"));
}
printHelp();
}
void loop() {
const uint32_t now = millis();
pollSerial();
if (now - lastSensorReadMs >= SENSOR_READ_INTERVAL_MS) {
lastSensorReadMs = now;
readAllSensors();
}
if (now - lastControlMs >= CONTROL_INTERVAL_MS) {
lastControlMs = now;
const float avgTemp = averageValidTemperature();
const float maxTemp = maxValidTemperature();
const float spread = cornerTemperatureSpread();
if (!isnan(avgTemp) && !isnan(maxTemp) && !isnan(spread)) {
thermal.update(avgTemp, maxTemp, spread, now);
} else {
thermal.enterFailSafe();
Serial.println(F("WARN: no valid sensor readings — heater off"));
}
}
if (now - lastReportMs >= SERIAL_REPORT_INTERVAL_MS) {
lastReportMs = now;
const float avgTemp = averageValidTemperature();
const float minTemp = minValidTemperature();
const float maxTemp = maxValidTemperature();
if (!isnan(avgTemp) && !isnan(minTemp) && !isnan(maxTemp)) {
printStatus(avgTemp, minTemp, maxTemp);
if (csvLogEnabled) {
printCsvRow(now, thermal, sensors, SENSOR_COUNT, avgTemp, minTemp, maxTemp);
}
}
}
}