IP Library Granted Patent US 9,634,345
Granted Patent B2
US 9,634,345 · App. 13/901,642 · Granted Apr 25, 2017

Convective flow field for fuel cell stack

View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,634,345
App. No.
13/901,642
Granted
Apr 25, 2017
Kind
B2
Abstract

The reactant distribution in a gas diffusion layer adjacent the landings of a solid polymer electrolyte fuel cell can be improved by using a flow field plate in which suitable sequential protrusions have been incorporated in the channels. The reactant flow field in the plate comprises a plurality of parallel channels in which protrusions are arranged in a sequence along each channel's length and the sequential protrusions in any given channel are offset with respect to the sequential protrusions in the channels immediately adjacent thereto.

Claims (64)

1. A flow field plate for a fuel cell comprising:

a major surface for distribution of a reactant;

an inlet reactant port for the inlet of the reactant;

an outlet reactant port for the outlet of the reactant; and

a reactant flow field formed in the major surface of the plate, the reactant flow field including a reactant flow field inlet fluidly connected to the inlet reactant port, the reactant flow field including a reactant flow outlet fluidly connected to the outlet reactant port, the reactant flow field comprising a parallel channel region comprising a plurality of essentially parallel channels and landings separating the channels, and the parallel channel region comprising at least one protrusion region wherein each channel of the plurality of parallel channels respectively comprises a sequence of protrusions, each protrusion partially obstructing flow in the channels;

wherein the protrusions in each channel are arranged in a regular sequence along the length of each channel, wherein the regular sequence is

a recurring periodic sequence or

a regular but not periodic sequence wherein spacings are harmonics of the shortest spacing;

wherein the reactant flow field is an oxidant flow field, wherein said oxidant includes oxygen;

wherein, in a protrusion region near the outlet port, protrusions having bigger dimensions or more protrusions are provided, and

wherein the protrusions in each channel in the protrusion region are offset along the channel length with respect to the protrusions in each immediately adjacent channel.

2. The flow field plate of claim 1 wherein the parallel channels in the parallel channel region are essentially linear.

3. The flow field plate of claim 1 wherein the protrusions in each channel are arranged in a recurring periodic sequence, and wherein the protrusions in any given channel in the protrusion region are offset by essentially half a period with respect to the periodic protrusions in the channels immediately adjacent the any given channel.

4. The flow field plate of claim 1 wherein the parallel channel region occupies greater than 50% of the major surface of the flow field plate.

5. The flow field plate of claim 4 wherein the protrusion region occupies greater than 50% of the parallel channel region.

6. The flow field plate of claim 1 wherein the protrusions in each channel are arranged in a recurring periodic sequence, and wherein the period of the protrusions arranged in each channel in the protrusion region is about 20 mm to 30 mm.

7. The flow field plate of claim 1 wherein the protrusions occupy between about 0.4 and 0.6 of the depth of the channel.

8. The flow field plate of claim 1 wherein the protrusions occupy the width of the channel.

9. The flow field plate of claim 1 wherein the width of the landings is greater than 0.3 mm.

10. A method of improving reactant distribution in a solid polymer electrolyte fuel cell, the fuel cell comprising a solid polymer electrolyte, a catalyst electrode adjacent the solid polymer electrolyte, a gas diffusion layer adjacent the catalyst electrode, and a flow field plate adjacent the gas diffusion layer, the method comprising:

incorporating the flow field plate of claim 1 for the flow field plate adjacent the gas diffusion layer.

11. The method of claim 10 comprising arranging the protrusions in each channel in a recurring periodic sequence and offsetting the protrusions in any given channel in the protrusion region by essentially half a period with respect to the periodic protrusions in the channels immediately adjacent the any given channel.

12. The method of claim 10 comprising:

determining, in a flow field plate prior to provision of protrusions, the portion of the oxidant flow field in which the oxygen concentration is greater than 15% during normal operation, and

arranging protrusions in the flow field plate to form the flow field plate of claim 10 , wherein the protrusion region does not occupy that portion of the reactant flow field adjacent the oxidant flow field inlet wherein the oxygen concentration is greater than 15% during normal operation in the flow field plate prior to provision of protrusions.

13. A flow field plate for a fuel cell comprising:

a major surface for distribution of a reactant;

an inlet reactant port for the inlet of the reactant;

an outlet reactant port for the outlet of the reactant; and

a reactant flow field formed in the major surface of the plate, the reactant flow field including a reactant flow field inlet fluidly connected to the inlet reactant port, the reactant flow field including a reactant flow outlet fluidly connected to the outlet reactant port, the reactant flow field comprising a parallel channel region comprising a plurality of essentially parallel channels and landings separating the channels, and the parallel channel region comprising at least one protrusion region wherein each channel of the plurality of parallel channels respectively comprises a plurality of protrusions, each protrusion partially obstructing flow in the channels;

wherein the protrusions in each channel are arranged in a regular sequence along the length of each channel, wherein the regular sequence is

a recurring periodic sequence or

a regular but not periodic sequence wherein spacings are harmonics of the shortest spacing;

wherein the reactant flow field is an oxidant flow field, wherein said oxidant includes oxygen;

wherein the protrusions in each channel in the protrusion region are offset along the channel length with respect to the protrusions in each immediately adjacent channel; and

wherein the height of the protrusions varies over the sequence and the protrusions near the outlet of each said channel are greater in height than protrusions in the middle of channel.

14. A flow field plate for a fuel cell comprising:

a major surface for distribution of a reactant;

an inlet reactant port for the inlet of the reactant;

an outlet reactant port for the outlet of the reactant; and

a reactant flow field formed in the major surface of the plate, the reactant flow field including a reactant flow field inlet fluidly connected to the inlet reactant port, the reactant flow field including a reactant flow outlet fluidly connected to the outlet reactant port, the reactant flow field comprising a parallel channel region comprising a plurality of essentially parallel channels and landings separating the channels, and the parallel channel region comprising at least one protrusion region wherein each channel of the plurality of parallel channels respectively comprises a plurality of protrusions, each protrusion partially obstructing flow in the channels;

wherein the protrusions in each channel are arranged in a regular sequence along the length of each channel, wherein the regular sequence is

a recurring periodic sequence or

a regular but not periodic sequence wherein spacings are harmonics of the shortest spacing;

wherein the reactant flow field is an oxidant flow field, wherein said oxidant includes oxygen;

wherein, in a protrusion region near the outlet port, protrusions having bigger dimensions or more protrusions are provided;

wherein the protrusions in each channel in the protrusion region are offset along the channel length with respect to the protrusions in each immediately adjacent channel; and

wherein the protrusions are between about 1 mm to 2 mm in length.

15. A solid polymer electrolyte fuel cell comprising

a solid polymer electrolyte,

a catalyst electrode adjacent the solid polymer electrolyte,

a gas diffusion layer adjacent the catalyst electrode, and

a flow field plate adjacent the gas diffusion layer, wherein the flow field plate comprises:

a major surface for distribution of a reactant;

an inlet reactant port for the inlet of the reactant;

an outlet reactant port for the outlet of the reactant; and

a reactant flow field formed in the major surface of the plate, the reactant flow field including a reactant flow field inlet fluidly connected to the inlet reactant port, the reactant flow field including a reactant flow outlet fluidly connected to the outlet reactant port, the reactant flow field comprising a parallel channel region comprising a plurality of essentially parallel channels and landings separating the channels, and the parallel channel region comprising at least one protrusion region wherein each channel of the plurality of parallel channels respectively comprises a sequence of protrusions, each protrusion partially obstructing flow in the channels;

wherein the protrusions in each channel are arranged in a regular sequence along the length of each channel, wherein the regular sequence is

a recurring periodic sequence or

a regular but not periodic sequence wherein spacings are harmonics of the shortest spacing;

wherein the protrusions in each channel have the same width and length,

wherein the reactant flow field is an oxidant flow field, wherein said oxidant includes oxygen;

wherein, in a protrusion region near the outlet port, protrusions having bigger dimensions or more protrusions are provided, and

wherein the protrusions in each channel in the protrusion region are offset along the channel length with respect to the protrusions in each immediately adjacent channel.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2024
From: FORD MOTOR COMPANY
To: CELLCENTRIC GMBH & CO. KG
Reel/Frame 069072/0867 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 14, 2021
From: DAIMLER AG
To: CELLCENTRIC GMBH & CO. KG
Reel/Frame 058386/0706 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2013
From: AUTOMOTIVE FUEL CELL COOPERATION, CORP.
To: DAIMLER AG; FORD MOTOR COMPANY
Reel/Frame 030669/0797 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2013
From: ROSHANZAMIR, ALIREZA; ARTIBISE, ROBERT HENRY
To: AUTOMOTIVE FUEL CELL COOPERATION, CORP.
Reel/Frame 030650/0298 →