IP Library Granted Patent US 10,598,407
Granted Patent B2
US 10,598,407 · App. 15/803,090 · Granted Mar 24, 2020

Gas powered water heater controller and related methods

Inventors: Saad A. Chaudry (St. Louis, MO); Donald L. Blessing (Manchester, MO); Juan G. Renteria (El Paso, TX)
Assignee: Emerson Electric Co.
F24H9/2035F16K31/082F24H1/181F24H9/2021F23K2900/05001F23N2229/02F23N2235/14F23N2237/02F23N2241/04
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Quick Facts
Patent No.
US 10,598,407
App. No.
15/803,090
Granted
Mar 24, 2020
Kind
B2
Abstract

A gas flow controller for use with a gas powered water heater includes a first gas flow valve, and a first gas flow valve actuator assembly connected to the first gas flow valve and configured to hold the first gas flow valve in an open position. The first gas flow valve actuator assembly includes a first electromagnetic actuator, a corrosion resistant material encapsulating the first electromagnetic actuator, a first wire lead connected to the first electromagnetic actuator at a first solder joint, a corrosion resistant material encapsulating the first solder joint, a second wire lead connected to the first electromagnetic actuator at a second solder joint, and a corrosion resistant material encapsulating the second solder joint.

Claims (68)

1. A gas powered water heater comprising:

a first gas flow valve;

a pilot burner arranged to receive a flow of combustible gas from the first gas flow valve;

a first gas flow valve actuator assembly connected to the first gas flow valve and configured to hold the first gas flow valve in an open position upon completion of an ignition sequence, the first gas flow valve actuator assembly including:

a first electromagnetic actuator encapsulated by a corrosion resistant material;

a first wire lead electrically connected to the first electromagnetic actuator and encapsulated by a corrosion resistant material; and

a second wire lead electrically connected to the first electromagnetic actuator and encapsulated by a corrosion resistant material;

a second gas flow valve;

a main burner arranged to receive a flow of combustible gas from the second gas flow valve; and

a second gas flow valve actuator assembly connected to the second gas flow valve and configured to open and close the second gas flow valve in response to a call for heat, the second gas flow valve actuator assembly including:

a second electromagnetic actuator encapsulated by a corrosion resistant material;

a first wire lead electrically connected to the second electromagnetic actuator and encapsulated by a corrosion resistant material; and

a second wire lead electrically connected to the second electromagnetic actuator and encapsulated by a corrosion resistant material.

2. The gas powered water heater of claim 1 , wherein the first gas flow valve actuator assembly further comprises a first terminal assembly configured to supply power to the first electromagnetic actuator, the first terminal assembly comprising:

an input terminal arranged to receive an electrical current; and

an overmolded sleeve connected over the input terminal and to protect the input terminal from corrosion.

3. The gas powered water heater of claim 1 , wherein the second gas flow valve actuator assembly further comprises a second terminal assembly configured to supply power to the second electromagnetic actuator, the second terminal assembly comprising:

an input terminal arranged to receive an electrical current; and

an overmolded sleeve connected over the input terminal and to protect the input terminal from corrosion.

4. The gas powered water heater of claim 1 , wherein the first gas flow valve actuator assembly further comprises:

a screw; and

a screw boss comprising a receiving channel formed on an interior surface of the screw boss, the screw boss arranged to clamp the second wire lead electrically connected to the first electromagnetic actuator within the receiving channel between the screw and the receiving channel.

5. The gas powered water heater of claim 1 , wherein the second gas flow valve actuator assembly further comprises:

a screw; and

a screw boss comprising a receiving channel formed on an interior surface of the screw boss, the screw boss arranged to clamp the second wire lead electrically connected to the second electromagnetic actuator within the receiving channel between the screw and the receiving channel.

6. The gas powered water heater of claim 1 , wherein the corrosion resistant material encapsulating the first electromagnetic actuator comprises an overmold bonded over the first electromagnetic actuator, and wherein the corrosion resistant material encapsulating the second electromagnetic actuator comprises an overmold bonded over the second electromagnetic actuator.

7. A gas flow controller for use with a gas powered water heater, the gas flow controller comprising:

a first gas flow valve; and

a first gas flow valve actuator assembly mechanically connected to the first gas flow valve and configured to hold the first gas flow valve in an open position, the first gas flow valve actuator assembly comprising:

a first electromagnetic actuator;

a corrosion resistant material encapsulating the first electromagnetic actuator;

a first wire lead electrically connected to the first electromagnetic actuator at a first solder joint;

a corrosion resistant material encapsulating the first solder joint;

a second wire lead electrically connected to the first electromagnetic actuator at a second solder joint;

a corrosion resistant material encapsulating the second solder joint;

a screw; and

a screw boss comprising a receiving channel formed on an interior surface of the screw boss, the screw boss arranged to clamp the second wire lead within the receiving channel between the screw and the receiving channel.

8. The gas flow controller of claim 7 , further comprising:

a second gas flow valve; and

a second gas flow valve actuator assembly mechanically connected to the second gas flow valve and configured to open and close the second gas flow valve, the second gas flow valve actuator assembly comprising:

a second electromagnetic actuator;

a corrosion resistant material encapsulating the second electromagnetic actuator;

a first wire lead electrically connected to the second electromagnetic actuator at a first solder joint;

a corrosion resistant material encapsulating the first solder joint;

a second wire lead electrically connected to the second electromagnetic actuator at a second solder joint; and

a corrosion resistant material encapsulating the second solder joint.

9. The gas flow controller of claim 7 , further comprising a terminal assembly electrically connected to the first wire lead, the terminal assembly configured to supply power to the first electromagnetic actuator, the terminal assembly comprising:

an input terminal arranged to receive an electrical current; and

an overmolded sleeve connected over the input terminal and arranged to protect the input terminal from corrosion.

10. The gas flow controller of claim 7 , wherein the corrosion resistant material encapsulating the first electromagnetic actuator comprises an overmold bonded over the first electromagnetic actuator.

11. The gas flow controller of claim 7 , wherein the corrosion resistant material encapsulating the first solder joint comprises an overmold bonded over the first solder joint, and wherein the corrosion resistant material encapsulating the second solder joint comprises an overmold bonded over the second solder joint.

12. The gas flow controller of claim 7 , wherein the corrosion resistant material encapsulating the first solder joint comprises a corrosion resistant coating, and wherein the corrosion resistant material encapsulating the second solder joint comprises a corrosion resistant coating.

13. A gas flow valve actuator assembly for use with a gas powered water heater, the gas flow valve actuator assembly comprising:

an electromagnetic actuator;

a corrosion resistant material encapsulating at least a portion of the electromagnetic actuator;

a first wire lead electrically connected to the electromagnetic actuator at a first solder joint;

a corrosion resistant material encapsulating at least a portion of the first solder joint;

a second wire lead electrically connected to the electromagnetic actuator at a second solder joint; and

a corrosion resistant material encapsulating at least a portion of the second solder joint;

a screw; and

a screw boss comprising a receiving channel formed on an interior surface of the screw boss, the screw boss arranged to clamp the second wire lead within the receiving channel between the screw and the receiving channel.

14. The gas flow valve actuator assembly of claim 13 , further comprising a terminal assembly electrically connected to the first wire lead, the terminal assembly configured to supply power to the electromagnetic actuator, the terminal assembly comprising:

an input terminal arranged to receive an electrical current; and

an overmolded sleeve connected over the input terminal and arranged to protect the input terminal from corrosion.

15. The gas flow valve actuator assembly of claim 13 , wherein the corrosion resistant material encapsulating the electromagnetic actuator comprises an overmold bonded over the electromagnetic actuator.

16. The gas flow valve actuator assembly of claim 13 , wherein the corrosion resistant material encapsulating the first solder joint comprises an overmold bonded over the first solder joint, and wherein the corrosion resistant material encapsulating the second solder joint comprises an overmold bonded over the second solder joint.

17. The gas flow valve actuator assembly of claim 13 , wherein the corrosion resistant material encapsulating the first solder joint comprises a corrosion resistant coating, and wherein the corrosion resistant material encapsulating the second solder joint comprises a corrosion resistant coating.

18. The gas flow valve actuator assembly of claim 17 , wherein the corrosion resistant coating encapsulating the first and second solder joints is one of LOCTITE 3554 and LOCTITE 3555.

Assignments (6)
SECURITY INTEREST Recorded Jul 9, 2024
From: COPELAND COMFORT CONTROL LP
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 068255/0466 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND COMFORT CONTROL LP
To: ROYAL BANK OF CANADA, AS COLLATERAL AGENT
Reel/Frame 064278/0165 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND COMFORT CONTROL LP
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS NOTES COLLATERAL AGENT
Reel/Frame 064280/0333 →
SECURITY INTEREST Recorded Jul 17, 2023
From: COPELAND COMFORT CONTROL LP
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 064286/0001 →
SUPPLEMENTAL IP ASSIGNMENT AGREEMENT Recorded May 30, 2023
From: EMERSON ELECTRIC CO.
To: COPELAND COMFORT CONTROL LP
Reel/Frame 063804/0611 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2017
From: CHAUDRY, SAAD A.; BLESSING, DONALD L.; RENTERIA, JUAN G.
To: EMERSON ELECTRIC CO.
Reel/Frame 044329/0267 →
Continuity (1)
Related Publication 20190137141A1 · May 9, 2019