FUEL CELL HAVING AN ENERGY ATTENUATING BEAD
20230052796 · 2023-02-16
Inventors
Cpc classification
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M8/0267
ELECTRICITY
H01M2250/20
ELECTRICITY
International classification
Abstract
A fuel cell system includes a plurality of stacked bipolar plate assemblies. Each of the plurality of stacked bipolar plate assemblies includes a first subgasket including a first peripheral edge. The first subgasket supports a first membrane electrode assembly (MEA). A second subgasket including a second peripheral edge. The second subgasket supports a second MEA. A bipolar plate is disposed between the first subgasket and the second subgasket. The bipolar plate has a first side defining a first plurality of passages receptive of a cathode fluid, a second side defining a second plurality of passages receptive of an anode fluid, and a plurality of coolant passages defined between the first subgasket and the second subgasket. A seal bead extends around the bipolar plate. The seal bead seals against the first subgasket and the second subgasket. An energy attenuating bead extends about the bipolar plate spaced from the seal bead.
Claims
1. A fuel cell system comprising: a plurality of stacked bipolar plate assemblies, each of the plurality of stacked bipolar plate assemblies comprising: a first subgasket including a first peripheral edge, the first subgasket supporting a first membrane electrode assembly (MEA); a second subgasket including a second peripheral edge, the second subgasket supporting a second MEA; a bipolar plate disposed between the first subgasket and the second subgasket, the bipolar plate having a first side defining a first plurality of passages receptive of a cathode fluid, a second side defining a second plurality of passages receptive of an anode fluid, and a plurality of coolant passages defined between the first subgasket and the second subgasket; a seal bead extending around the bipolar plate, the seal bead sealing against the first subgasket and the second subgasket; and an energy attenuating bead extending about the bipolar plate spaced from the seal bead.
2. The fuel cell system according to claim 1, wherein the energy attenuating bead includes a first section extending about a first portion of the bipolar plate and a second section extending about a second portion of the bipolar plate.
3. The fuel cell system according to claim 2, wherein the first section is not connected to the second section.
4. The fuel cell system according to claim 1, wherein the seal bead is continuous about the bipolar plate.
5. The fuel cell system according to claim 1, wherein the seal bead includes a first stiffness and the energy attenuating bead includes a second stiffness that is distinct from the first stiffness.
6. The fuel cell system according to claim 5, wherein the second stiffness is between about one half that of the first stiffness and about 5 times greater than the first stiffness.
7. The fuel cell system according to claim 1, wherein the bipolar plate is formed from a metal.
8. The fuel cell system according to claim 1, wherein the bipolar plate is formed from a non-metal.
9. A power system comprising: an electric motor; and a fuel cell system including a plurality of stacked bipolar plate assemblies, each of the plurality of stacked bipolar plate assemblies comprising: a first subgasket including a first peripheral edge, the first subgasket supporting a first membrane electrode assembly (MEA); a second subgasket including a second peripheral edge, the second subgasket supporting a second MEA; a bipolar plate disposed between the first subgasket and the second subgasket, the bipolar plate having a first side defining a first plurality of passages receptive of a cathode fluid, a second side defining a second plurality of passages receptive of an anode fluid, and a plurality of coolant passages defined between the first subgasket and the second subgasket; a seal bead extending around the bipolar plate, the seal bead sealing against the first subgasket and the second subgasket; and an energy attenuating bead extending about the bipolar plate spaced from the seal bead.
10. The power system according to claim 9, wherein the energy attenuating bead includes a first section extending about a first portion of the bipolar plate and a second section extending about a second portion of the bipolar plate.
11. The power system according to claim 10, wherein the first section is not connected to the second section.
12. The power system according to claim 9, wherein the seal bead includes a first stiffness and the energy attenuating bead includes a second stiffness that is distinct from the first stiffness.
13. The power system according to claim 12, wherein the second stiffness is between about one half that of the first stiffness and about 5 times greater than the first stiffness.
14. The power system according to claim 9, wherein the bipolar plate is formed from a metal.
15. A vehicle comprising: a body; a power system arranged in the body, the power system comprising: an electric motor; and a fuel cell system including a plurality of stacked bipolar plate assemblies, each of the plurality of stacked bipolar plate assemblies comprising: a first subgasket including a first peripheral edge, the first subgasket supporting a first membrane electrode assembly (MEA); a second subgasket including a second peripheral edge, the second subgasket supporting a second MEA; a bipolar plate disposed between the first subgasket and the second subgasket, the bipolar plate having a first side defining a first plurality of passages receptive of a cathode fluid, a second side defining a second plurality of passages receptive of an anode fluid, and a plurality of coolant passages defined between the first subgasket and the second subgasket; a seal bead extending around the bipolar plate, the seal bead sealing against the first subgasket and the second subgasket; and an energy attenuating bead extending about the bipolar plate spaced from the seal bead.
16. The fuel cell system according to claim 15, wherein the energy attenuating bead includes a first section extending about a first portion of the bipolar plate and a second section extending about a second portion of the bipolar plate.
17. The fuel cell system according to claim 16, wherein the first section is not connected to the second section.
18. The fuel cell system according to claim 15, wherein the seal bead includes a first stiffness and the energy attenuating bead includes a second stiffness that is distinct from the first stiffness.
19. The fuel cell system according to claim 18, wherein the second stiffness is between about half that of the first stiffness and about 5 times greater than the first stiffness.
20. The fuel cell system according to claim 15, wherein the bipolar plate is formed from a metal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Other features, advantages and details appear, by way of example only, in the following detailed description, the detailed description referring to the drawings in which:
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] The following description is merely exemplary in nature and is not intended to limit the present disclosure, its application or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0033] A vehicle, in accordance with a non-limiting example, is indicated generally at 10 in
[0034] Reference will now follow to
[0035] First bipolar plate assembly 34 includes a first subgasket 41 having a first peripheral edge 43 and a first membrane electrode assembly (MEA) 45. First bipolar plate assembly 34 also includes a second subgasket 48 having a second peripheral edge 50. Second subgasket 48 includes a second MEA 52. As shown in
[0036] Bipolar plate 56 includes a plurality of corrugations (not separately labeled) that form a first plurality of passages 62 on first side 58. First plurality of passages 62 may contain a first reactant or cathode fluid (not shown) that would be in contact with a surface (not separately labeled) of first MEA 45. The corrugations also form a second plurality of passages 64 at second side 60. Second plurality of passages 64 may contain a second reactant or anode fluid (not shown) that is in contact with a surface (also not separately labeled) of second MEA 52. Bipolar plate 56 also includes a plurality of coolant passages 69 that may contain a coolant that absorbs heat from fuel cell system 30.
[0037] In further accordance with a non-limiting example, bipolar plate 56 includes a plurality of headers 70 that fluidically communicate with first plurality of passages 62, second plurality of passages 64, and coolant passages 69. More specifically, plurality of headers 70 include a first reactant inlet 72 and a first reactant outlet 74. Plurality of headers 70 also includes a second reactant inlet 76 and a second reactant outlet 78. Further, plurality of headers may include a coolant inlet 80 and a coolant outlet 82.
[0038] Bipolar plate 56 is further shown to include a perimeter seal bead 90 that extends entirely around first MEA 45, second MEA 52, as well as first plurality of passages 62, second plurality of passages 64, and coolant passages 69. Further each of the plurality of headers 70 includes an associated header seal bead such as shown at 94, 96, and 98 in connection with first reactant inlet 72, coolant inlet 80, and second reactant inlet 76. For example, seal bead 94 extends entirely about first reactant inlet 72, seal bead 96 extends entirely about coolant inlet 80, and seal bead 98 extends entirely about second reactant inlet 76. Seal beads 90, 94, 96, and 98 are disposed between first subgasket 41 and second subgasket 48. Seal bead 90 extends about first bipolar plate assembly 34. In this manner, seal bead 90 fluidically isolates bipolar plate assembly 34 from ambient. Seal beads 90, 94, 96, and 98 ensure fluid isolation between the first reactant, the second reactant, and coolant and/or ambient.
[0039] During a crash event, seal bead integrity may be compromised. A change of seal force during the crash event can be expressed as
ΔF_leading∝(αN m a)/L; and Equation 1
ΔF_trailing∝−(αN m a)/L Equation 2 [0040] where ΔF_leading is the change of seal force [N/mm] in the leading cells; [0041] ΔF_trailing is the change of seal force [N/mm] in the trailing cells; N is the number of cell within the stack; [0042] m is the mass per cell [g]; [0043] a is the peak acceleration during crash [mm/s.sup.2]; [0044] α is the mass fraction of the cell applying over the seal area; and [0045] L is the total seal length.
[0046] In order to reduce the absolute values of ΔF_trailing and ΔF_leading, one can either reduce the product (α N m a) or increase L. However, the quantity, (α N m a), is typically a fixed value predetermined by the power and power density of fuel cell stack while increasing seal length L would increase the probability of seal defect which adversely increases the risk of leaks. Based on the understanding of seal behavior during a crash event, it is desirable to provide a fuel cell with an energy attenuating seal bead to improve sealing integrity and crash resistance of fuel cell seal by having the same effect of increasing L without actually changing the dimensions and the design of fuel cell seal.
[0047] Therefore, in accordance with a non-limiting example, bipolar plate assembly 34 also includes an energy attenuating bead 100 that is designed to absorb acceleration forces so that seal beads 90, 94, 96, and 98 maintain sealing integrity during, for example, a crash event. In a non-limiting example, energy attenuating bead 100 may include a first section 108 that extends about a first portion (not separately labeled) of first peripheral edge 43 and a second section 110 that extends about a second portion (also not separately labeled) of first peripheral edge 43. In a non-limiting example, first section 108 is not connected to second section 110. However, it should be understood that energy attenuating seal bead 100 may extend about an entire periphery of bipolar plate assembly 34.
[0048] It should be further understood that while shown as being disposed outwardly of seal beads 90, 94, 96, and 98, the particular location of energy attenuating bead 100 may vary. For example, energy attenuating bead 100 could be disposed inwardly of seal bead 90, or between any one of seal beads 90, 94, 96, and 98. It should also be understood that while shown as being integrally formed with bipolar plate 56, seal beads 90, 94, 96, and 98 may be formed from different materials. For example, seal beads 90, 94, 96, and/or 98 may be formed from metal, non-metal, or any combination thereof. Thus, it should be understood that in a non-limiting example, the materials used to form seal beads 90, 94, 96, and 98 may be different from the material used to form bipolar plate 56 and/or different from the materials used to form each seal bead 90, 94, 96, and 98.
[0049] In a non-limiting example, seal beads 90, 94, 96, and 98 are formed from a first material having a first stiffness and energy attenuating bead 100 is formed from a second material having a second stiffness that is distinct from the first stiffness. Stiffness should be understood to be defined as an amount of vertically applied compressive force [N] required for unit displacement [nm] of seal bead deformation per unit length of seal bead [mm]. The second material may be identical to the first material with the differences in stiffness being attributed to manufacturing techniques, geometry, thickness, and the like. In a non-limiting example, the second stiffness may be half that of the first stiffness and as much as five (5) times greater than the first stiffness. In a non-limiting example, the second stiffness may be between one (1) and two (2) times greater than the first stiffness.
[0050] The amount of stiffness may determine to what extent energy attenuating bead 100 extends about first bipolar plate assembly 34. The greater the stiffness, the shorter the extent at which energy attenuating bead 100 extends about first bipolar plate assembly 34. Energy attenuating bead 100 is designed and positioned to realize acceleration forces before seal beads 90, 94, 96, and 98. In this manner, energy attenuating bead 100 may deform, and deflect thereby absorbing those acceleration forces so as to protect seal beads 90, 94, 96, and 98 and ensure an overall integrity of fuel cell system 30. It should be understood that the energy attenuating bead 100 is designed such that it would be under compressive force before a crash event. The compressive force establishes an unloading force range that accommodates a decrease in seal force in a trailing cells during a crash event and a loading force range that accommodates an increase of seal force in leading cells during the crash event.
[0051] It should be understood that, in accordance with a non-limiting example, seal beads 90, 94, 96, and 98 actually seal against first subgasket 41 and second subgasket 48 and prevent reactant egress. In contrast, energy attenuating bead 100 exerting a force on first subgasket 41 and second subgasket 48 is not designed to perform a sealing function. Further, it should be understood, that energy attenuating bead 100 exerts a force on first subgasket 41 and second subgasket 48 both under normal operation and during a crash event.
[0052] While the above disclosure has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from its scope. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the disclosure without departing from the essential scope thereof. Therefore, it is intended that the present disclosure not be limited to the particular embodiments disclosed, but will include all embodiments falling within the scope thereof