IP Library Granted Patent US 12,009,559
Granted Patent B2
US 12,009,559 · App. 17/335,238 · Granted Jun 11, 2024

Fuel cell stack

Inventor: Charles Carlstrom (Saratoga Springs, NY)
Assignee: PLUG POWER INC.
H01M8/1004H01M8/0286
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Quick Facts
Patent No.
US 12,009,559
App. No.
17/335,238
Granted
Jun 11, 2024
Kind
B2
Abstract

A method for use in manufacturing a fuel cell stack includes assembling a membrane electrode assembly to have a membrane between a first gas diffusion layer and a second gas diffusion layer. A bypass blocker is located at a space between a first gas diffusion layer of the membrane electrode assembly and a seal. The blocker is deformed on the seal and deformation is avoided of the blocker at the space such that the blocker inhibits a bypass flow of a reactant through the space between the gas diffusion layer and the seal in a direction of flow of the reactant during operation of the fuel cell. The membrane electrode assembly is located between a first fluid flow plate and a second fluid flow plate.

Claims (23)

1. A method for use in manufacturing a fuel cell stack:

assembling a membrane electrode assembly to have a membrane between a first gas diffusion layer and a second gas diffusion layer;

locating the membrane electrode assembly between a first fluid flow plate and a second fluid flow plate;

locating a bypass blocker at a space between the first gas diffusion layer of the membrane electrode assembly and a seal,

the space bounded vertically from a longitudinal axis of the membrane electrode assembly by a first fluid flow plate, the first fluid flow plate having a first height extending normal relative to the longitudinal axis defining a first surface and a second height extending normal relative to the longitudinal axis defining a second surface,

wherein the first height of the first surface and the second height of the second surface are different and the first height extends further normal relative to the longitudinal axis than the second height; and

deforming the blocker at the space within the length of the second surface and avoiding deforming the blocker at the space within the length of the first surface such that a first portion of the blocker at the space within the length of the first surface and a second portion of the blocker at the space within the length of the second surface have different heights such that the blocker inhibits a bypass flow of a reactant through the space from a first side of the first gas diffusion layer to a second side of the first gas diffusion layer in a direction of flow of the reactant during operation of the fuel cell.

2. The method of claim 1 wherein the space and the blocker are located peripherally outside the gas diffusion layer and peripherally inside the seal.

3. The method of claim 1 wherein the deforming the blocker comprises compressing the blocker by applying a force to the blocker by applying a force to the first flow plate in contact with the blocker in a direction about normal to a longitudinal dimension of the membrane electrode assembly.

4. The method of claim 1 wherein the blocker has a width dimension in a direction normal to a longitudinal dimension of the membrane electrode assembly about equal to a width dimension of the Gas diffusion layer in the direction normal to a longitudinal dimension of the membrane electrode assembly.

5. The method of claim 1 wherein the blocker comprises a first blocker and further comprising a second blocker located at a second space peripherally outside a second gas diffusion layer and peripherally inside a second seal on an opposite side of the membrane relative to the seal and the gas diffusion layer.

6. The method of claim 1 wherein the deforming the blocker comprises compressing the blocker by applying a force to the blocker in a direction about normal to a longitudinal dimension of the membrane electrode assembly to elastically deform the blocker.

7. The method of claim 1 wherein the deforming the blocker comprises compressing the blocker by applying a force to the blocker in a direction about normal to a longitudinal dimension of the membrane electrode assembly to plastically deform the blocker.

8. The method of claim 1 wherein the blocker is nonporous and elastically deformable.

9. The method of claim 1 further comprising laminating the membrane electrode assembly, the blocker and the seal to maintain the blocker on the seal.

10. The method of claim 1 wherein the locating the membrane electrode assembly between a first fluid flow plate and a second fluid flow plate comprises inside surfaces of the fluid flow plates being configured to maintain the blocker at the space undeformed and the blocker on the seal deformed.

11. The method of claim 1 , wherein the blocker can be compressed at a force less than 1 lb per linear inch.

12. The method of claim 1 , further comprising:

locating a second bypass blocker at a second space between the second gas diffusion layer of the membrane electrode assembly and a second seal,

the second space bounded vertically by a second fluid flow plate, the second fluid flow plate having a third height extending normal relative to the longitudinal axis defining a third surface and a fourth height extending normal relative to the longitudinal axis defining a fourth surface,

wherein the third height of the third surface and the fourth height of the fourth surface are different and the third height extends further normal relative to the longitudinal axis than the fourth height; and

deforming the second blocker at the space within the length of the third surface and avoiding deforming the second blocker at the space within the length of the fourth surface such that a first portion of the second blocker at the space within the length of the third surface and a second portion of the second blocker at the space within the length of the fourth surface have different heights such that the second blocker inhibits a bypass flow of a reactant through the space from a first side of the second gas diffusion layer to a second side of the second gas diffusion layer in a direction of flow of the reactant during operation of the fuel cell.

13. The method of claim 1 , wherein the first surface and the second surface extend parallel to each other.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Nov 25, 2025
From: YA II PN, LTD., IN ITS CAPACITY AS COLLATERAL AGENT
To: PLUG POWER, INC.; PLUG POWER HYDROGEN HOLDINGS, INC.; UNITED HYDROGEN GROUP INC.; PLUG PROJECT HOLDING CO., LLC; PEACHTREE RENEWABLES, LLC; JOULE PROCESSING LLC; APPLIED CRYO TECHNOLOGIES, INC.; ALLOY CUSTOM PRODUCTS, LLC; HYPULSION U.S. HOLDING, INC.
Reel/Frame 073036/0448 →
SECURITY INTEREST Recorded Apr 28, 2025
From: PLUG POWER INC.; APPLIED CRYO TECHNOLOGIES, INC.; PLUG POWER HYDROGEN HOLDINGS, INC.; UNITED HYDROGEN GROUP INC.; ALLOY CUSTOM PRODUCTS, LLC; JOULE PROCESSING LLC; PEACHTREE RENEWABLES, LLC; PLUG PROJECT HOLDING CO., LLC; HYPULSION U.S. HOLDING, INC.
To: YA II PN, LTD., IN ITS CAPACITY AS COLLATERAL AGENT
Reel/Frame 071084/0264 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 1, 2021
From: CARLSTROM, CHARLES
To: PLUG POWER INC.
Reel/Frame 056400/0904 →
Continuity (1)
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