Metal Pole Plate Sealing Structure for Fuel Cell and Fuel Cell Using Same
20230089972 · 2023-03-23
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
H01M8/0273
ELECTRICITY
International classification
H01M8/0273
ELECTRICITY
Abstract
A metal pole plate sealing structure for a fuel cell is disclosed, as well as a fuel cell using this structure. The metal pole plate sealing structure for a fuel cell includes a metal pole plate, a membrane electrode assembly and a sealing rubber body. The metal pole plate has a sealing rubber groove. The sealing rubber body is accommodated in the sealing rubber groove. The sealing rubber groove, the sealing rubber body and a frame of the membrane electrode assembly cooperate with each other to seal an internal space enclosed when the metal pole plate and the membrane electrode assembly are pressed together. An inner surface of the sealing rubber groove has a positioning unit which makes it easier to fix an installation position of the sealing rubber body in the sealing rubber groove.
Claims
1. A metal pole plate sealing structure for a fuel cell, comprising: a metal pole plate having a sealing rubber groove; a membrane electrode assembly having a frame; and a sealing rubber body that is accommodated in the sealing rubber groove, wherein the sealing rubber groove, the sealing rubber body and the frame cooperate with each other to seal an internal space enclosed when the metal pole plate and the membrane electrode assembly are pressed together, and wherein an inner surface of the sealing rubber groove has a positioning unit configured to fix an installation position of the sealing rubber body in the sealing rubber groove.
2. The sealing structure as claimed in claim 1, wherein the positioning unit is formed at the bottom of the sealing rubber groove.
3. The sealing structure as claimed in claim 2, wherein the height of the positioning unit is ⅕ of the height of the sealing rubber body.
4. The sealing structure as claimed in claim 2, wherein the positioning unit includes a protrusion extending from the bottom of the sealing rubber groove towards the top, the protrusion being formed by stamping the metal pole plate.
5. The sealing structure as claimed in claim 4, wherein the sealing rubber groove has an isosceles trapezoidal cross section in the thickness direction of the metal pole plate, and a junction of a bottom and a sidewall of the sealing rubber groove is separated from the positioning unit by a gap.
6. The sealing structure as claimed in claim 1, wherein: the metal pole plate defines a gas inlet hole and a gas outlet hole, and the sealing rubber groove is arranged around the periphery of the metal pole plate and the peripheries of the gas inlet and the gas outlet hole.
7. The sealing structure as claimed in claim 1, wherein: the positioning unit includes a first protrusion and a second protrusion, the first protrusion and the second protrusion are disposed at two sides in the width direction of the sealing rubber body, and are separated by a gap that is larger than the width of the sealing rubber body.
8. The sealing structure as claimed in claim 1, wherein the metal pole plate is a bipolar plate.
9. The sealing structure as claimed in claim 1, wherein the sealing rubber body has a rectangular cross section in the thickness direction of the metal pole plate.
10. A fuel cell comprising the metal pole plate sealing structure as claimed in claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] A more complete understanding of the abovementioned and other aspects of the present disclosure will be gained through the following detailed description which refers to the drawings, in which:
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] To help those skilled in the art to gain a precise understanding of the subject matter the present disclosure, particular embodiments of the present disclosure are described in detail below with reference to the drawings.
[0022] Referring to
[0023] The metal pole plate 100 has a sealing rubber groove 110, and the sealing rubber body 300 is accommodated and fixed in the sealing rubber groove 110. The sealing rubber groove 110, the sealing rubber body 300 and the frame of the membrane electrode assembly 200 cooperate with each other to seal an internal space enclosed when the metal pole plate 100 and the membrane electrode assembly 200 are pressed together. An inner surface of the sealing rubber groove 110 has a positioning unit 111 which makes it easier to fix the position of the sealing rubber body 300 in the sealing rubber groove 110 in a horizontal direction (i.e. the width direction W of the sealing rubber body 300). Once the position of the sealing rubber body 300 is fixed, the sealing rubber body 300 is generally further fixed to the sealing rubber groove by means of a bottom adhesive. Thus, the fixed sealing rubber body 300 hermetically separates its own two sides in the horizontal direction.
[0024] In this particular embodiment, the positioning unit 111 is formed at the bottom of the sealing rubber groove 110. It will be understood that in other embodiments, the position of the positioning unit 111 is not limited to being at the bottom of the sealing rubber groove 110; it may also be located at other positions, such as a sidewall of the sealing rubber groove 110, as long as it can abut the sealing rubber body 300, to ensure that no deviation occurs in the approximate position thereof in the width direction W of the sealing rubber body 300.
[0025] For ease of implementation from a process point of view, the positioning unit 111 may be a protrusion extending from the bottom of the sealing rubber groove 110 towards the top, the protrusion being formed by subjecting the metal pole plate 100 to a stamping process. The applicant has discovered that the height of the positioning unit 111 formed by stamping is about ⅕ of the height of the sealing rubber body 300, and has high stability and a low cost.
[0026] As shown in
[0027] To ensure the sealing result, the sealing rubber groove 110 is arranged around the periphery of the metal pole plate 100 and the peripheries of gas inlet and outlet holes (not shown) at two ends of the metal pole plate 100.
[0028] When assembling the cell, taking into account the deformation of the sealing rubber body 300 caused by the metal pole plate 100 applying pressure in the direction of the membrane electrode assembly 200, the positioning units 111 are disposed at two sides in the width direction W of the sealing rubber body, and are separated by a gap that is slightly larger than the width of the sealing rubber body 300. Thus, when the sealing rubber body 300 is compressed, it will not suffer misalignment and hence impaired sealing performance due to deformation. As shown in the figure, in this particular embodiment, the sealing rubber body 300 has a rectangular cross section in the thickness direction h of the metal pole plate 100. In other embodiments, the cross section of the sealing rubber body 300 might also be another shape depending on needs.
[0029] It will be understood that when the present disclosure is used for a stack of fuel cells, the metal pole plate 100 may be a bipolar plate. A single fuel cell or a fuel cell stack using the metal pole plate sealing structure as described above can achieve the abovementioned sealing result.
[0030] Although the present disclosure has been shown and described based on specific embodiments, it is not limited to the details shown. On the contrary, various details of the present disclosure can be modified within the scope of the claims and their equivalent substitutes.