IP Library › Granted Patent US 12,631,331
Granted Patent B2
US 12,631,331 · App. 18/262,501 · Granted May 19, 2026

Method and controller for operating a gas burner appliance

Inventors: Wim Munsterhuis (Dalen, NL); Gerrit Jan Baarda (Emmen, NL); Andreas Kammerahl (Lemfoerde, DE); Martin Petersmann (Osnabrueck, DE); Anton Quatmann (Vechta, DE); Ulrich Oldehus (Lohne, DE); Clemens Metker (Bad Iburg, DE)
Assignee: Pittway Sarl
F23N1/022F23D14/60F23N1/025F23N5/126F23N5/184F23N2005/181F23N2005/185F23N2221/10F23N2225/06F23N2227/02F23N2227/20F23N2233/08F23N2235/16
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Quick Facts
Patent No.
US 12,631,331
App. No.
18/262,501
Granted
May 19, 2026
Kind
B2
Abstract

Method for operating a gas burner appliance ( 10 ) comprising: a combustion chamber ( 11 ), an ignition device ( 27 ), a fan ( 14 ), a gas safety valve unit ( 19 ) assigned to the gas duct ( 16 ), an electric gas flow modulator ( 18 ) assigned to the gas duct ( 16 ), a sensor ( 21 ) positioned between the gas safety valve unit ( 19 ) and the gas flow modulator ( 18 ), wherein the gas burner appliance ( 10 ) is operated to determine the gas family of the gas of the gas/air mixture by the following steps: Before the gas burner appliance becomes started measuring the ambient air pressure by the sensor ( 21 ), wherein the ambient air pressure is measured when the safety valve unit ( 19 ) is closed, the gas flow modulator ( 18 ) is opened and the fan ( 14 ) is stopped. When the gas burner appliance ( 10 ) becomes started running the fan ( 14 ) at a defined fan speed, increasing the opening of the gas flow modulator ( 18 ) while activating the ignition device ( 27 ) trying to ignite the gas/air mixture until the activation of ignition device results into a combustion of the gas/air mixture. Determining from the fan speed of the fan ( 14 ) and from the measured ambient air pressure an air volume flow. Measuring the gas pressure by the sensor ( 21 ) when the safety valve unit ( 19 ) is opened, the gas flow modulator ( 18 ) is opened and the fan ( 14 ) is running. Determining from the opening of the gas flow modulator ( 18 ) at which the combustion started and from the measured gas pressure a gas volume flow. Determining a ratio between the gas volume flow and the air volume and from said ratio the gas family of the combusted gas.

Claims (53)

1 . A method for operating a gas burner appliance, the gas burner appliance comprising:

a combustion chamber in which a gas/air mixture having a defined mixing ratio of gas and air or a defined λ-value is combusted,

an ignition device to ignite the gas/air mixture for the combustion of the gas/air mixture within the combustion chamber,

a combustion monitoring device to monitor if combustion takes place withing the combustion chamber,

a mixing device to provide said gas/air mixture by mixing an air flow provided by an air duct with a gas flow provided by a gas duct,

a fan to provide the air flow or the flow of the gas/air mixture, namely in such a way that a fan speed of the fan depends on a nominal burner-load of the gas burner appliance,

a gas safety valve unit having at least one gas safety valve assigned to the gas duct to open or close the gas duct,

an electric gas flow modulator assigned to the gas duct to keep the defined mixing ratio of gas and air or the defined λ-value of the gas/air mixture constant over the modulation range of the gas burner appliance,

a sensor positioned between the gas safety valve unit and the gas flow modulator configured to provide at least a pressure measurement,

the method comprising:

before the gas burner appliance becomes started, measuring ambient air pressure by the sensor,

wherein the ambient air pressure is measured when the safety valve unit is closed, the gas flow modulator is opened, and the fan is stopped,

when the gas burner appliance becomes started:

running the fan at a defined fan speed,

increasing the opening of the gas flow modulator or decreasing a flow resistance of the gas flow modulator while activating the ignition device trying to ignite the gas/air mixture until the activation of ignition device results into a combustion of the gas/air mixture monitored by the combustion monitoring device,

determining from the fan speed of the fan and from the measured ambient air pressure an air volume flow or an air mass flow,

measuring the gas pressure by the sensor when the safety valve unit is opened, the gas flow modulator is opened, and the fan is running,

determining from the opening of the gas flow modulator or the flow resistance of the gas flow modulator at which the combustion started upon activation of the ignition device and from the measured gas pressure a gas volume flow or a gas mass flow,

determining a ratio between the gas volume flow and the air volume flow or a ratio between the gas mass flow and the air mass flow, and

determining from the respective ratio a gas family of the combusted gas, including determining if the combusted gas belongs to a liquefied gas family or a natural gas family or a town gas family.

2 . The method of claim 1 , comprising:

measuring ambient air temperature, and

determining the air mass flow based on the air volume flow and the ambient air temperature.

3 . The method of claim 2 , wherein the ambient air temperature is measured when the safety valve unit is closed, and the gas flow modulator is opened.

4 . The method of claim 1 , comprising:

measuring a gas temperature, and

determining the gas mass flow based on the gas volume flow and the gas temperature.

5 . The method of claim 4 , wherein the gas temperature is measured when the safety valve unit is opened, the gas flow modulator is opened, and the fan is running.

6 . The method of claim 2 , wherein

the ambient air temperature is measured by a sensor positioned between the gas safety valve unit and the gas flow modulator, said sensor being integrated into the sensor providing the pressure measurement.

7 . The method of claim 1 , comprising:

determining a preliminary gas family of the gas to be combusted on a preliminary basis from the gas pressure, which is measured when the safety valve unit is opened, when the gas flow modulator is opened, and when the fan is running; and

determining a preliminary parameter set to start the gas burner appliance based on the preliminary gas family of the gas to be combusted.

8 . The method of claim 1 , comprising:

determining an operating parameter set to control combustion of the gas/air mixture within the combustion chamber of the gas burner appliance based on the gas family of the combusted gas.

9 . The method of claim 8 , comprising:

operating the gas burner appliance based on the operating parameter set to control the mixing ratio of gas and air or the λ-value of the gas/air mixture at a constant value;

determining the opening of the gas flow modulator or the flow resistance of the gas flow modulator to keep the mixing ratio of gas and air or a λ-value of the gas/air mixture at the constant value, and

verifying the gas family of the combusted gas based on said opening of the gas flow modulator or said flow resistance of the gas flow modulator.

10 . The method of claim 1 , wherein the electric gas flow modulator controls said defined mixing ratio of gas and air or said λ-value of the gas/air mixture in such a way that a flame ionization current is measured by the combustion monitoring device monitoring flames resulting from the combustion of the gas/air mixture within the combustion chamber, and a control variable for the electric gas flow modulator is generated based on the flame ionization current, or a pressure difference between the gas pressure and the air pressure is measured by an electric or electronic sensor of the gas burner appliance, and a control variable for the electric gas flow modulator is generated based on an output signal provided by the electric or electronic sensor.

11 . The method of claim 2 , comprising:

operating the electric gas flow modulator of a gas armature by energizing an electric coil of the gas armature,

operating the at least one safety gas valve of the gas armature by energizing at least one electric coil of the gas armature,

determining at least one electric coil resistance of at least one of the electric coils,

determining at least one temperature offset as a function of the at least one electric coil resistance and as a function of at least one time interval for which the respective electric coil becomes energized,

compensating the measured ambient air temperature and/or compensating the measured gas temperature by the at least one temperature offset thereby providing a compensated ambient air temperature and/or a compensated gas temperature, and

determining the air mass flow based on the ambient air pressure and based on the compensated ambient air temperature and/or determining the gas mass flow based on the gas pressure and/or based on the compensated gas temperature.

12 . A controller for a gas burner appliance configured to operate the gas burner appliance, the controller being configured to:

determine a nominal burner-load based on a heat demand, wherein the nominal burner-load is a load within a modulation range of the gas burner appliance; and

determine a fan speed of a fan of the gas burner appliance which is needed to provide the burner load based on the nominal burner-load, wherein a fan speed range of the fan defines the modulation range of the gas burner appliance,

wherein the controller is further configured to operate the gas burner appliance according to the method of claim 1 .

13 . The method of claim 4 , wherein the gas temperature is measured by a sensor positioned between the gas safety valve unit and the gas flow modulator, said sensor being integrated into the sensor providing the pressure measurement.

14 . The method of claim 1 , wherein the combustion monitoring device is a flame ionization sensor of the gas burner appliance.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 23, 2026
From: MUNSTERHUIS, WIM; KAMMERAHL, ANDREAS; PETERSMANN, MARTIN; QUATMANN, ANTON; OLDEHUS, ULRICH; METKER, CLEMENS
To: PITTWAY SARL
Reel/Frame 074456/0046 →
Priority Claims (1)
EP 21153258 · Jan 25, 2021 · regional
Continuity (1)
Related Publication 20240093868A1 · Mar 21, 2024
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