Fuel cell
10050279 ยท 2018-08-14
Assignee
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
International classification
H01M4/86
ELECTRICITY
H01M8/0273
ELECTRICITY
Abstract
A fuel cell has a membrane electrode assembly including an electrolyte membrane, catalyst layers disposed on both sides of the electrolyte membrane, and three or more layers of porous bodies disposed on a front surface side of the catalyst layer, a frame body surrounding an outer periphery of the electrolyte membrane, and a separator that partitions and forms a gas passage between the membrane electrode assembly and the separator. Extended portions are provided at an outer edge of a first porous body adjacent to the separator among the three layers of the porous bodies, and at an outer edge of a second porous body adjacent to the first porous body, respectively, so as to extend to be superimposed over the frame body. The extended portions of the first and second porous bodies intervene between the frame body and the separator.
Claims
1. A fuel cell, comprising: a membrane electrode assembly including an electrolyte membrane, catalyst layers disposed on both sides of the electrolyte membrane, and three or more layers of porous bodies disposed on a front surface side of each of the catalyst layers; a frame body surrounding an outer periphery of the electrolyte membrane; a separator that partitions and forms a gas passage between the membrane electrode assembly and the separator; and a seal member intervened between the membrane electrode assembly and the separator, wherein the three or more layers of the porous bodies include a first porous body adjacent to the separator, a second porous body adjacent to the first porous body, and a third porous body adjacent to the second porous body, wherein extended portions are provided at an outer edge of the first porous body and at an outer edge of the second porous body, wherein the extended portions of the first and second porous bodies are superimposed over the frame body at a position beyond an outer periphery of the third porous body, wherein the extended portions are disposed on an inner side of the seal member, and wherein the extended portions intervene between the frame body and the separator.
2. The fuel cell according to claim 1, wherein a compressive elastic modulus of the first porous body is larger than that of the other porous bodies.
3. The fuel cell according to claim 1, wherein the first porous body is formed of one or more metals selected from iron, stainless steel, aluminum, an aluminum alloy, titanium, a titanium alloy, chromium, a chromium alloy, a nickel, a nickel alloy, a magnesium, and a magnesium alloy.
4. The fuel cell according to claim 1, wherein the second porous body and the third porous body are formed of carbon material.
5. The fuel cell according to claim 4, wherein the carbon material is a sheet-shaped carbon material.
6. The fuel cell according to claim 1, wherein the third porous body includes a plurality of layers, and wherein a thickness of the frame body (tg) satisfies the following formula when k+1 to 1(k2) indicate the layers included in the third porous body, Ei (i=k+1 to 1) is an elastic modulus of each of the layers included in the third porous body, ti (i=k+1 to 1) is a thickness of each of the layers included in the third porous body, and P is a surface pressure
7. The fuel cell according to claim 6, wherein the second porous body includes a plurality of layers, and wherein a relationship between the elastic modulus Eh of each of the layers included in the second porous body, and the elastic modulus Ei of each of the layers included in the third porous body satisfies: EiEh.
8. The fuel cell according to claim 7, wherein a relationship between an electron conductivity h of each of the layers included in the second porous body and an electron conductivity i of each of the layers included in the third porous body satisfies: ih.
9. A fuel cell stack formed by stacking a plurality of the fuel cells according to claim 1.
10. The fuel cell according to claim 2, wherein the first porous body is formed of one or more metals selected from iron, stainless steel, aluminum, an aluminum alloy, titanium, a titanium alloy, chromium, a chromium alloy, a nickel, a nickel alloy, a magnesium, and a magnesium alloy.
11. The fuel cell according to claim 2, wherein the second porous body and the third porous body are formed of carbon material.
12. The fuel cell according to claim 3, wherein the second porous body and the third porous body are formed of carbon material.
13. The fuel cell according to claim 2, wherein the third porous body includes a plurality of layers, and wherein a thickness of the frame body (tg) satisfies the following formula when k+1 to 1 (k2) indicate the layers included in the third porous body, Ei (i=k+1 to 1) is an elastic modulus of each of the layers included in the third porous body, ti (i=k+1 to 1) is a thickness of each of the layers included in the third porous body, and P is a surface pressure.
14. The fuel cell according to claim 3, wherein the third porous body includes a plurality of layers, and wherein a thickness of the frame body (tg) satisfies the following formula when k +1 to 1 (k2) indicate the layers included in the third porous body, Ei (i =k +1 to 1) is an elastic modulus of each of the layers included in the third porous body, ti (i =k +1 to 1) is a thickness of each of the layers body included in the third porous body, and P is a surface pressure
15. The fuel cell according to claim 4, wherein the third porous body includes a plurality of layers, and wherein a thickness of the frame body (tg) satisfies the following formula when k+1 to 1 (k2) indicate the layers included in the third porous body, Ei (i=k+1 to 1) is an elastic modulus of each of the layers included in the third porous body, ti (i=k+1 to 1) is a thickness of each of the layers included in the third porous body, and P is a surface pressure
16. The fuel cell according to claim 5, wherein the third porous body includes a plurality of layers, and wherein a thickness of the frame body (tg) satisfies the following formula when k+1 to 1 (k2) indicate the layers included in the third porous body, Ei (i=k+1 to 1) is an elastic modulus of each of the layers included in the third porous body, ti (i=k+1 to 1) is a thickness of each of the layers included in the third porous body, and P is a surface pressure
17. A fuel cell stack formed by stacking a plurality of the fuel cells according to claim 2.
18. A fuel cell stack formed by stacking a plurality of the fuel cells according to claim 3.
19. A fuel cell stack formed by stacking a plurality of the fuel cells according to claim 4.
20. A fuel cell stack formed by stacking a plurality of the fuel cells according to claim 5.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
DESCRIPTION OF EMBODIMENTS
(4) In the following, a fuel cell according to one embodiment of the present invention will be described based on the accompanying drawings.
(5) A fuel cell C shown in
(6) The membrane electrode assembly M is the so-called MEA (Membrane Electrode Assembly). In this embodiment, the membrane electrode assembly M includes a gas diffusion layer. That is, each of the cathode layer 2 and anode layer 3 of the membrane electrode assembly M includes a catalyst layer 6 adjacent to the electrolyte membrane 1, as well as three or more layered porous body disposed on the front surface side of the catalyst layer and serving as the gas diffusion layer. The details of the porous body will be described later.
(7) The frame body 4 is a member formed of resin and serving as a frame or gasket. As shown in
(8) The frame body 4 has supply holes H1 to H3 for cathode gas (oxygen-containing gas), coolant, and anode gas (hydrogen-containing gas) on one short side thereof, that is, on the left side shown in
(9) The separator 5 also serves as a current collector, has a rectangular planar shape corresponding to the frame body 4, and is provided with supply holes and discharge holes (not shown) similar to those formed in the frame body 4. Each separator 5 is adapted to form the gas passages G described above by being superimposed on the membrane electrode assembly M. In stacking a plurality of pieces of the fuel cells C of this embodiment, the respective supply holes (H1 to H3) and the discharge holes (H4 to H6) are continuously stacked on each other in the stacking direction to form flow passages, through which coolant flows between the fuel cells C adjacent thereto (between the separators 5).
(10) A seal member 7, whose part is shown in
(11) The above fuel cell C includes at least three layers of porous bodies 11, 12, and 13 on the front surface side of the electrode layer (the cathode layer 2 and the anode layer 3) as mentioned above. The first porous body 11 adjacent to the separator 5 and the second porous body 12 adjacent to the first porous body, among the porous bodies 11, 12, and 13 forming three layers, have extended portions 11A and 12A extending from the outer edges of the respective bodies so as to be superimposed on the inner edge of the frame body 4. In the fuel cell C, the extended portions 11A and 12A of the first and second porous bodies 11 and 12 intervene between the frame body 4 and the separator 5.
(12) The extended portion 11A of the first porous body 11 extends to be superimposed on the inner edge of the frame body 4, which prevents the end of the first porous body 11 from being brought into contact with the electrolyte membrane 1 to break the electrolyte membrane 1. The extended portion 11A of the first porous body can suppress the difference in pressure between the cathode and the anode, or the fluctuations in the frame body 4 due to swelling and contraction of the electrolyte membrane 1, which relaxes the concentration of stress onto the electrolyte membrane 1 at a boundary surface between the catalyst layer 6 and the frame body 4.
(13) In this embodiment, the second porous body 12 has the extended portion 12A having the same thickness as that of a main body of the porous body 12. Alternatively, when the second porous body 12 may be formed of a laminate of a plurality of layers, only one of which may be provided with the extended portion 12A.
(14) In the above fuel cell C, a compressive elastic modulus of the first porous body 11 is set larger than that of each of other porous bodies 12 and 13.
(15) In a preferred embodiment, the first porous body 11 can be formed using one or more kinds of metals selected from iron, stainless steel, aluminum, an aluminum alloy, titanium, a titanium alloy, chromium, a chromium alloy, nickel, a nickel alloy, magnesium, and a magnesium alloy. The first porous body 11 is formed of a wire fabric, a punching metal, an etching metal, an expanding metal, or the like.
(16) In the fuel cell C of a preferred embodiment, the second porous body 12 and the third porous body 13 adjacent thereto are formed of carbon material, and in a more preferred embodiment, can be formed using a sheet-like carbon material. The second porous body 12 and the third porous body 13 are formed integrally with each other using the same material.
(17) A plurality of pieces of the fuel cells with the configuration described above is stacked on each other with end plates placed on both sides of the fuel cells. Both end plates are coupled together by applying a predetermined load on the fuel cells in the stacking direction to produce a fuel cell stack. In this state, each fuel cell C receives a predetermined surface pressure.
(18) At this time, in the fuel cell C, the second porous body 12, specifically, the second porous body 12 with the extended portion 12A directly contacting the frame body 14 serves as an elastic member to receive the surface pressure acting between the extended portion 11A of the first porous body 11 and the frame body 4.
(19) More specifically, as shown in
(20) Thus, the fuel cell C can prevent the excessive surface pressure from being applied to between the extended portion 11A of the first porous body 11 and the frame body 4, thereby optimizing the surface pressure applied to the power generation region (region where the catalyst layer 6 is formed) of the membrane electrode assembly M. Accordingly, in the fuel cell stack including a laminate of the above fuel cells C, the appropriate surface pressure is applied to the power generation region of each fuel cell C to efficiently perform the power generation, thereby enhancing the power generation performance as a whole.
(21) The above fuel cell C sets a compressive elastic modulus of the first porous body 11 larger than that of the other porous bodies 12 and 13. In this way, the first porous body 11 is formed of a rigid member as compared to the other members, which can further enhance the elastic functions of the surface pressure absorption and fluctuation absorption by means of the second porous body 12.
(22) The above fuel cell C uses the metal described above as the material for the first porous body 11, thereby allowing the second porous body 12 to effectively absorb the surface pressure and the fluctuations.
(23) Further, the above fuel cell C can use carbon material as the material for the second and third porous bodies 12 and 13 to further increase the elastic functions of the absorption of the surface pressure and fluctuation by means of the second porous body 12. In particular, the sheet-like carbon is used as the above carbon material, which can facilitate the manufacture of the fuel cell in addition to the improvement of the elastic function of the second porous body 12.
(24) An elastic modulus of the second porous body 12 may be smaller than that of the third porous body 13. The second porous body 12 is made softer than the third porous body 13, which can further enhance the surface pressure absorption function of the second porous body 12 with the extended portion 12A, thereby optimizing the surface pressure applied to the power generation region of the membrane electrode assembly M, while preventing the unbalanced surface pressure between the extended portion 11A of the first porous body 11 and the frame body 4.
(25)
(26) In the fuel cell C of this embodiment shown in the figure, each of the second and third porous bodies 12 and 13 is illustrated in the form of a plurality of layers for easy explanation of various parameters. That is to say, in the fuel cell C, among the porous bodies 11 to 13, respective porous bodies k constitute the second porous body 12, while respective porous bodies k+1 to 1 (k2) constitute the third porous body 13 which does not have the extended portions 11A and 12A.
(27) Referring to
(28) In the fuel cell C, when Ei (i=k+1 to 1) is an elastic modulus of each porous body included in the third porous body 13, ti (i=k+1 to 1) is a thickness of each porous body included in the third porous body 13, and P is a surface pressure, a thickness tg of the frame body is set to satisfy the following formula.
(29)
(30) The fuel cell C is designed to have a thickness and an elastic modulus of the porous body without the extended portions 11A and 12A among the respective porous bodies 11 to 13, that is, each porous body included in the third porous body 13 in the example shown in the figure, as well as a thickness of the frame body 4 based on the above-mentioned formula. Thus, the fuel cell C can optimize the surface pressure applied to the power generation region of the membrane electrode assembly M while preventing the excessive surface pressure from being applied to between the expanded portion 11A of the first porous body 11 and the frame body 4.
(31) When the respective porous bodies 2 to k (k2) constitute the second porous body 12 in the fuel cell C, the relationship between the elastic coefficient Eh of each porous body included in the second porous body 12 (h=2 to k) and the elastic coefficient Ei of each porous body included in the third porous body 13 (i=k+1 to 1) is set as follows: EiEh.
(32) In the above fuel cell C, the second porous body 12 is softer than the third porous bodies 13, which can further enhance the absorption function of the surface pressure by the second porous body 12 with the extended portion 12A, while preventing the unbalanced surface pressure between the extended portion 11A of the first porous body 11 and the frame body 4. Thus, the fuel cell C can optimize the surface pressure applied to the power generation region of the membrane electrode assembly M.
(33) Further, in the above fuel cell C, the relationship between an electron conductivity ah of each of the respective porous bodies included in the second porous body 12 and an electron conductivity i of the respective porous bodies included in the first porous body 13 is set as follows: ih.
(34) In the above fuel cell C, each of the respective porous bodies included in the third porous body 13 has a large electron conductivity i (generally, has a high elastic modulus), whereas each of the respective porous bodies included in the second porous body 12 has a small electron conductivity h (generally, has a low elastic modulus). Thus, the fuel cell C can decrease the resistance while ensuring the function of optimizing the surface pressure, thereby achieving the improvement of the cell performance.
(35) The fuel cell configuration of the present invention is not limited to that of each of the embodiments described above. The configuration described in one embodiment can be applied or used in another embodiment, and the details of the configuration can be changed as appropriate.
REFERENCE SIGNS LIST
(36) C FUEL CELL G GAS PASSAGE M MEMBRANE ELECTRODE ASSEMBLY 1 electrolyte membrane 2 cathode layer (electrode layer) 3 anode layer (electrode layer) 4 frame body 5 separator 11 first porous body 11A extended portion 12 second porous body 12A extended portion 13 third porous body