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@ -1210,24 +1210,24 @@ void temp_runaway_check(int _heater_id, float _target_temperature, float _curren
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static int __preheat_errors[2] = { 0,0};
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#ifdef TEMP_RUNAWAY_BED_TIMEOUT
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if (_isbed)
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{
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__hysteresis = TEMP_RUNAWAY_BED_HYSTERESIS;
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__timeout = TEMP_RUNAWAY_BED_TIMEOUT;
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}
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#endif
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#ifdef TEMP_RUNAWAY_EXTRUDER_TIMEOUT
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if (!_isbed)
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{
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__hysteresis = TEMP_RUNAWAY_EXTRUDER_HYSTERESIS;
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__timeout = TEMP_RUNAWAY_EXTRUDER_TIMEOUT;
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}
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#endif
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if (millis() - temp_runaway_timer[_heater_id] > 2000)
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{
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#ifdef TEMP_RUNAWAY_BED_TIMEOUT
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if (_isbed)
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{
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__hysteresis = TEMP_RUNAWAY_BED_HYSTERESIS;
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__timeout = TEMP_RUNAWAY_BED_TIMEOUT;
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}
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#endif
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#ifdef TEMP_RUNAWAY_EXTRUDER_TIMEOUT
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if (!_isbed)
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{
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__hysteresis = TEMP_RUNAWAY_EXTRUDER_HYSTERESIS;
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__timeout = TEMP_RUNAWAY_EXTRUDER_TIMEOUT;
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}
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#endif
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temp_runaway_timer[_heater_id] = millis();
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if (_output == 0)
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{
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@ -1251,39 +1251,36 @@ void temp_runaway_check(int _heater_id, float _target_temperature, float _curren
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}
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}
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if (temp_runaway_status[_heater_id] == TempRunaway_PREHEAT)
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if ((_current_temperature < _target_temperature) && (temp_runaway_status[_heater_id] == TempRunaway_PREHEAT))
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{
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if (_current_temperature < ((_isbed) ? (0.8 * _target_temperature) : 150)) //check only in area where temperature is changing fastly for heater, check to 0.8 x target temperature for bed
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__preheat_counter[_heater_id]++;
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if (__preheat_counter[_heater_id] > ((_isbed) ? 16 : 8)) // periodicaly check if current temperature changes
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{
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__preheat_counter[_heater_id]++;
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if (__preheat_counter[_heater_id] > ((_isbed) ? 16 : 8)) // periodicaly check if current temperature changes
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{
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/*SERIAL_ECHOPGM("Heater:");
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MYSERIAL.print(_heater_id);
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SERIAL_ECHOPGM(" T:");
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MYSERIAL.print(_current_temperature);
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SERIAL_ECHOPGM(" Tstart:");
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MYSERIAL.print(__preheat_start[_heater_id]);*/
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if (_current_temperature - __preheat_start[_heater_id] < 2) {
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__preheat_errors[_heater_id]++;
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/*SERIAL_ECHOPGM(" Preheat errors:");
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MYSERIAL.println(__preheat_errors[_heater_id]);*/
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}
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else {
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//SERIAL_ECHOLNPGM("");
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__preheat_errors[_heater_id] = 0;
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}
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if (__preheat_errors[_heater_id] > ((_isbed) ? 2 : 5))
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{
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if (farm_mode) { prusa_statistics(0); }
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temp_runaway_stop(true, _isbed);
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if (farm_mode) { prusa_statistics(91); }
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}
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__preheat_start[_heater_id] = _current_temperature;
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__preheat_counter[_heater_id] = 0;
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/*SERIAL_ECHOPGM("Heater:");
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MYSERIAL.print(_heater_id);
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SERIAL_ECHOPGM(" T:");
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MYSERIAL.print(_current_temperature);
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SERIAL_ECHOPGM(" Tstart:");
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MYSERIAL.print(__preheat_start[_heater_id]);*/
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if (_current_temperature - __preheat_start[_heater_id] < 2) {
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__preheat_errors[_heater_id]++;
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/*SERIAL_ECHOPGM(" Preheat errors:");
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MYSERIAL.println(__preheat_errors[_heater_id]);*/
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}
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else {
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//SERIAL_ECHOLNPGM("");
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__preheat_errors[_heater_id] = 0;
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}
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if (__preheat_errors[_heater_id] > ((_isbed) ? 2 : 5))
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{
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if (farm_mode) { prusa_statistics(0); }
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temp_runaway_stop(true, _isbed);
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if (farm_mode) { prusa_statistics(91); }
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}
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__preheat_start[_heater_id] = _current_temperature;
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__preheat_counter[_heater_id] = 0;
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}
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}
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@ -1293,7 +1290,7 @@ void temp_runaway_check(int _heater_id, float _target_temperature, float _curren
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temp_runaway_check_active = false;
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}
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if (!temp_runaway_check_active && _output > 0)
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if (_output > 0)
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{
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temp_runaway_check_active = true;
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}
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@ -1302,7 +1299,7 @@ void temp_runaway_check(int _heater_id, float _target_temperature, float _curren
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if (temp_runaway_check_active)
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{
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// we are in range
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if (_target_temperature - __hysteresis < _current_temperature && _current_temperature < _target_temperature + __hysteresis)
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if ((_current_temperature > (_target_temperature - __hysteresis)) && (_current_temperature < (_target_temperature + __hysteresis)))
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{
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temp_runaway_check_active = false;
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temp_runaway_error_counter[_heater_id] = 0;
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