IP Library Granted Patent US 12,203,436
Granted Patent B2
US 12,203,436 · App. 17/732,748 · Granted Jan 21, 2025

Vehicle heater and controls therefor

Inventors: Kenneth Strang (Coquitlam, CA); Bruce Wilnechenko (Burnaby, CA); Korbin Thomas (Langley, CA); Daine Strankman (Red Deer, CA)
Assignee: Dometic Marine Canada Inc.
F02N19/10F23D11/10F23N5/006F23N5/26F23N5/265F24H1/009F24H9/1836F01P2060/18F23D2900/21002F23N2239/06F23N2241/14
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Quick Facts
Patent No.
US 12,203,436
App. No.
17/732,748
Granted
Jan 21, 2025
Kind
B2
Abstract

A heater comprises a combustion chamber and a jacket extending about the combustion chamber. There is a fan having an output which communicates with the combustion chamber to provide combustion air. There is also a fuel delivery system having a variable delivery rate. A burner assembly is connected to the combustion chamber. The burner assembly has a burner mounted thereon adjacent the combustion chamber. The burner receives fuel from the fuel delivery system. There is an exhaust system extending from the combustion chamber. An oxygen sensor is positioned in the exhaust system to detect oxygen content of exhaust gases. There is a control system operatively coupled to the oxygen sensor and the fuel delivery system. The control system controls the delivery rate of the fuel delivery system according to the oxygen content of the exhaust gases.

Claims (52)

1. A heater for a liquid, the heater comprising:

a fuel-delivery system including a fuel pump;

a burner operable to receive fuel from the fuel delivery system and to heat the liquid in response to combustion of the fuel; and

a control system operable to control at least one of the fuel delivery system and the burner by, at least:

in response to the liquid having at least a predetermined cycle-off temperature before expiry of a predetermined minimum period of time since the burner most recently began heating the liquid, causing the burner to continue heating the liquid; and

in response to the liquid having at least the predetermined cycle-off temperature after expiry of the predetermined minimum period of time since the burner most recently began heating the liquid, causing the burner to cease heating the liquid.

2. The heater of claim 1 , wherein the predetermined minimum period of time is ten minutes.

3. The heater of claim 1 , wherein the control system is further operable to control at least the fuel delivery system and the burner by, at least, in response to the liquid having at least the predetermined cycle-off temperature before expiry of the predetermined minimum period of time since the burner most recently began heating the liquid, controlling heat output of the burner to maintain the liquid at the predetermined cycle-off temperature.

4. The heater of claim 1 , further comprising a combustion chamber, wherein:

the burner comprises a nozzle connected to the fuel delivery system to receive fuel from the fuel delivery system; and

the nozzle is operable to receive compressed air and to utilize the compressed air to deliver an atomized spray of the fuel into the combustion chamber.

5. The heater of claim 4 , wherein the control system is further operable to control at least a pressure of the compressed air independently of a fuel delivery rate of the fuel from the fuel delivery system to the nozzle.

6. The heater of claim 5 , wherein the control system is operable to control the pressure of the compressed air at least according to a desired output level of the heater.

7. The heater of claim 4 , further comprising an air compressor, wherein the nozzle is connected to the air compressor to receive the compressed air from the air compressor.

8. The heater of claim 7 wherein the air compressor has an electric drive motor operable to cause the air compressor to produce the compressed air in response to rotation of an output shaft of the electric drive motor, wherein the output shaft of the electric drive motor is rotationally coupled to the fuel pump by a magnetic coupling operable to transfer a torque from the output shaft of the electric drive motor to the fuel pump to power the fuel pump in response to the rotation of the output shaft of the electric drive motor.

9. The heater of claim 8 , wherein the magnetic coupling includes:

a drive cup coupled to the output shaft of the electric drive motor of the air compressor for rotation in response to the rotation of the output shaft of the electric drive motor of the air compressor; and

a shaft follower within and magnetically coupled to the drive cup and connected to the fuel pump by a shaft such that the rotation of the output shaft of the electric drive motor powers the fuel pump.

10. The heater of claim 1 , wherein the fuel-delivery system comprises a chamber positioned to receive the fuel before the fuel is received by the burner, and wherein the chamber is in fluid communication with a passage above the chamber to allow any gas bubbles in the chamber to float up into the passage.

11. The heater of claim 10 , wherein a second passage is in a fluid-flow path between the chamber and the passage, and wherein the second passage has a smaller cross-sectional area than the chamber to cause the fuel flowing through the chamber to have a lower average velocity than the fuel flowing through the second passage.

12. The heater of claim 10 , further comprising a fuel inlet, wherein:

the fuel pump is operable to pump, at least:

a first portion of the fuel from the fuel inlet into the chamber; and

a second portion, separate from the first portion, of the fuel from the fuel inlet into the passage; and

the passage is in fluid communication with the fuel inlet such that the passage is operable to carry the gas bubbles from the chamber to a fuel tank connected to the fuel inlet.

13. The heater of claim 12 , wherein the fuel-delivery system further comprises a pressure-relief valve in a fluid-flow path between the passage and the fuel inlet and operable to maintain a pressure of the fuel in the chamber.

14. The heater of claim 10 , wherein the fuel pump is positioned to receive the fuel from a fuel inlet and to pump, at least:

a first portion of the fuel from the fuel inlet into the chamber; and

a second portion, separate from the first portion, of the fuel from the fuel inlet into the passage.

15. The heater of claim 10 , wherein the fuel-delivery system further comprises a proportional-control valve in a fluid-flow path between the chamber and the burner, wherein the control system is operable to control a fuel delivery rate of the fuel from the fuel delivery system to the burner via the proportional control valve.

16. The heater of claim 1 , wherein:

the burner comprises a nozzle having an outlet and a disparager assembly;

the disparager assembly includes an outer barrel having a threaded inner wall portion and an inner rod having a threaded outer wall portion;

the threaded inner wall portion of the outer barrel and the threaded outer wall portion of the inner rod have different thread pitches and define a tortuous flow path on an outer side of the threaded outer wall portion of the inner rod;

the outer side of the threaded outer wall portion of the inner rod faces the threaded inner wall portion of the outer barrel;

the tortuous flow path is between the threaded inner wall portion of the outer barrel and the threaded outer wall portion of the inner rod; and

the tortuous flow path is positioned to convey the fuel from the fuel-delivery system to the outlet of the nozzle.

17. The heater of claim 1 , further comprising:

a combustion chamber, the burner operable to cause combustion of the fuel in the combustion chamber; and

a jacket operable to receive the liquid, the jacket extending about the combustion chamber.

18. The heater of claim 1 , further comprising:

a combustion chamber, the burner operable to cause combustion of the fuel in the combustion chamber; and

a blower assembly having an output communicating with the combustion chamber, the blower assembly operable to provide combustion air to the combustion chamber.

19. The heater of claim 18 , further comprising:

an exhaust system extending from the combustion chamber and operable to discharge, from the heater, exhaust gases produced by combustion in the combustion chamber; and

an oxygen sensor positioned in the exhaust system and operable to detect oxygen content of the exhaust gases; and

wherein the control system is operatively coupled to the oxygen sensor, the blower assembly, and the fuel delivery system, and wherein the control system is operable to control at least:

a variable combustion air delivery rate of the combustion air from the blower assembly according to a desired heat output level of the heater and independently of the oxygen content of the exhaust gases, the desired heat output level selected from a plurality of different selectable heat output levels of the heater; and

a variable fuel delivery rate of the fuel delivery system according to the oxygen content of the exhaust gases.

20. The heater of claim 19 , wherein:

the blower assembly comprises a blower and a blower motor operable to power the blower; and

the control system is operable to control at least a speed of the blower motor according to the desired output level of the heater and independently of the oxygen content of the exhaust gases.

Assignments (2)
CHANGE OF NAME Recorded Mar 6, 2023
From: MARINE CANADA ACQUISITION INC.
To: DOMETIC MARINE CANADA INC.
Reel/Frame 062893/0416 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 5, 2022
From: STRANG, KENNETH; WILNECHENKO, BRUCE; THOMAS, KORBIN; STRANKMAN, DAINE
To: MARINE CANADA ACQUISITION INC.
Reel/Frame 061319/0967 →
Continuity (3)
Continuation 16089320
Provisional Application 62315527 · Mar 30, 2016
Related Publication 20230009411A1 · Jan 12, 2023
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