IP Library Granted Patent US 10,101,238
Granted Patent B2
US 10,101,238 · App. 15/155,928 · Granted Oct 16, 2018

Integrated ventilation and leak detection system and method of assembly

Inventors: Rodolfo Bermudez (Queretaro, MX); Martin Lopez (Queretaro, MX); Heriberto Hernandez (Queretaro, MX)
Assignee: General Electric Company
G01M3/02F01D21/003
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Quick Facts
Patent No.
US 10,101,238
App. No.
15/155,928
Granted
Oct 16, 2018
Kind
B2
Abstract

A ventilation and leak detection system for use in an enclosure includes a ventilation duct extending at least partially through an interior chamber defined in the enclosure. The ventilation duct includes at least one inlet end positioned within a lower portion of the interior chamber and an outlet end. The at least one inlet end includes at least one opening defined therein and sized to enable air and fuel within the enclosure to be drawn into the ventilation duct to ventilate the enclosure. The system further includes a detection unit coupled in flow communication with the ventilation duct proximate to the outlet end for detecting fuel entrained within flow drawn into the ventilation duct.

Claims (34)

1. A ventilation and leak detection system for use in an enclosure, said system comprising:

a ventilation duct extending at least partially through an interior chamber defined in the enclosure, said ventilation duct comprising a plurality of inlet ends positioned within a lower portion of the interior chamber and an outlet end, wherein each of said plurality of inlet ends is adjacent to a respective corner of the interior chamber and comprises at least one opening defined therein and sized to enable air and fuel within the enclosure to be drawn into said ventilation duct to ventilate the enclosure; and

a detection unit coupled in flow communication with said ventilation duct proximate to said outlet end for detecting fuel entrained within flow drawn into said ventilation duct.

2. The system in accordance with claim 1 further comprising a fan assembly coupled in flow communication with said ventilation duct, said fan assembly is configured to:

create a negative pressure within the enclosure to draw the flow into said ventilation duct; and

exhaust the flow within said ventilation duct to an exterior location.

3. The system in accordance with claim 2 , wherein said fan assembly comprises a first fan and a second fan, each said fan is coupled to an enclosure roof.

4. The system in accordance with claim 1 , wherein said detection unit is configured to:

determine a concentration of fuel entrained in the flow; and

signal a potential fuel leak when the fuel concentration is greater than a predetermined threshold.

5. The system in accordance with claim 1 , wherein said detection unit comprises an infrared sensor.

6. The system in accordance with claim 1 , wherein said detection unit comprises a catalytic sensor.

7. The system in accordance with claim 1 , wherein at least a portion of said ventilation duct proximate to at least one of said plurality of inlet ends extends substantially parallel to a floor of the enclosure.

8. The system in accordance with claim 1 , wherein said ventilation duct further comprises at least one middle inlet extending within a middle portion of the interior chamber.

9. The system in accordance with claim 1 , wherein said ventilation duct further comprises at least one upper inlet defined within an upper portion of the interior chamber.

10. The system in accordance with claim 1 further comprising at least one inlet vent in flow communication with the interior chamber, said at least one inlet vent configured to channel ambient air into the interior chamber.

11. A gas fuel module comprising:

a gas fuel module enclosure defining an interior chamber;

a ventilation duct extending at least partially through said interior chamber, said ventilation duct comprising a plurality of inlet ends positioned within a lower portion of said interior chamber and an outlet end, wherein each of said plurality of inlet ends is adjacent to a respective corner of the interior chamber and comprises at least one opening defined therein and sized to enable air and fuel within said enclosure to be drawn into said ventilation duct to ventilate said enclosure; and

a detection unit coupled in flow communication with said ventilation duct, said detection unit located proximate to said outlet end and configured to detect fuel entrained within flow drawn into said ventilation duct.

12. The gas fuel module in accordance with claim 11 further comprising a fan assembly coupled in flow communication with said ventilation duct, said fan assembly is configured to:

create a negative pressure within said enclosure to draw the flow into said ventilation duct; and

exhaust the flow within said ventilation duct to an exterior location.

13. The gas fuel module in accordance with claim 11 , wherein said detection unit is configured to:

determine a concentration of fuel entrained in the flow; and

signal a potential fuel leak when the fuel concentration is greater than a predetermined threshold.

14. The gas fuel module in accordance with claim 11 further comprising at least one inlet vent coupled to an enclosure roof in flow communication with said interior chamber, said at least one inlet vent configured to channel ambient air into said interior chamber.

15. A method of assembling a ventilation and leak detection system for use in an enclosure, said method comprising:

coupling a ventilation duct within an interior chamber defined in the enclosure, the ventilation duct includes a plurality of inlet ends positioned within a lower portion of the interior chamber and an outlet end, wherein each of the plurality of inlet ends includes at least one opening defined therein and sized to enable air and fuel within the enclosure to be drawn into the ventilation duct to ventilate the enclosure;

positioning each of the plurality of inlet ends adjacent to a respective corner of the interior chamber; and

coupling a detection unit in flow communication with the ventilation duct proximate to the outlet end, wherein the detection unit is configured to detect fuel entrained within flow drawn into the ventilation duct.

16. The method in accordance with claim 15 further comprising coupling a fan assembly in flow communication with the ventilation duct, wherein the fan assembly is configured to create a negative pressure within the enclosure to draw the flow into the ventilation duct and to exhaust the flow within the ventilation duct to an exterior location.

17. The method in accordance with claim 15 , wherein coupling the detection unit comprises coupling the detection unit that is configured to determine a concentration of the fuel entrained in the flow and to signal a potential fuel leak when the fuel concentration is greater than a predetermined threshold.

18. The method in accordance with claim 15 further comprising coupling at least one inlet vent in flow communication with the interior chamber, the at least one inlet vent configured to channel ambient air into the interior chamber.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 065727/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 16, 2016
From: BERMUDEZ, RODOLFO; LOPEZ, MARTIN; HERNANDEZ, HERIBERTO
To: GENERAL ELECTRIC COMPANY
Reel/Frame 038607/0873 →
Continuity (1)
Related Publication 20170328805A1 · Nov 16, 2017
Cited By (1)
US 12,305,576