FUEL CELL WITH STRUCTURAL ELEMENT INTEGRALLY BONDED TO A GAS DIFFUSION ELEMENT
20240282977 ยท 2024-08-22
Assignee
Inventors
Cpc classification
H01M4/886
ELECTRICITY
H01M2250/20
ELECTRICITY
International classification
Abstract
A description is given of a fuel cell comprising an electrode-membrane unit comprising a cathode and an anode, a cathodal gas diffusion element, an anodal gas diffusion element, the electrode-membrane unit being accommodated between the gas diffusion elements; a cathodal bipolar plate, and an anodal bipolar plate. Provision is made here for the cathodal gas diffusion element or/and the anodal gas diffusion element to have at least one structural element facing the respective bipolar plate and integrally bonded to the relevant gas diffusion element.
Claims
1. A fuel cell having an electrode-membrane unit with a cathode and an anode, a cathodal gas diffusion element, an anodal gas diffusion element, wherein the electrode-membrane unit is accommodated between the gas diffusion elements; a cathodal bipolar plate, and an anodal bipolar plate, wherein the cathodal gas diffusion element or/and the anodal gas diffusion element comprises at least one structural element facing toward the respective bipolar plate and being integrally bonded to the respective gas diffusion element.
2. The fuel cell according to claim 1, wherein the at least one structural element is an at least partial coating of the respective gas diffusion element.
3. The fuel cell according to claim 1, wherein the structural element is configured for at least a portion as a rib or strip.
4. The fuel cell according to claim 2, wherein the at least one structural element is made from a material not permeable to gas and/or water.
5. The fuel cell according to claim 4, wherein the permeability of the respective gas diffusion element is established by multiple structural elements and their relative positioning to each other as a function of a main flow direction of gas in gas flow ducts of the respective bipolar plate.
6. The fuel cell according to claim 5, wherein the permeability increases along the main flow direction in a linear manner.
7. The fuel cell according to claim 1, wherein the at least one structural element is sprayed onto the respective gas diffusion element.
8. A fuel cell stack having multiple fuel cells configured and arranged in accordance with claim 1.
9. An electrical aviation propulsion drive with a propeller or/and an aviation gas turbine, wherein the aviation propulsion drive is connected to at least one fuel cell stack according to claim 8.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
[0022] In the following, the invention shall be described as an example, but is not limited to this example, making reference to the enclosed figures.
[0023]
[0024]
[0025]
DESCRIPTION OF THE INVENTION
[0026] The fuel cell 10 here is represented, for example, as a so-called polymer electrolyte membrane fuel cell (PEM fuel cell). The fuel cell 10 comprises a bipolar plate 12 at the anode side and a bipolar plate 14 at the cathode side. Gas ducts 16 carrying process gas, such as air or hydrogen, are indicated in the bipolar plates 12, 14. Further, the fuel cell comprises a gas diffusion element 18 at the anode side and a gas diffusion element 20 at the cathode side. Between the two gas diffusion elements 18, 20 there is accommodated or arranged an electrode-membrane unit 22. For sake of completeness, sealing elements 24 are also indicated. Moreover, end plates 26 are also shown, which hold together the fuel cell components. In an assembled state of the fuel cell 10, the end plates 26 are joined together or tensioned by a fastening device, not shown here.
[0027] By means of the fuel cell 10, an electrical consumer 28 can be supplied electrically with electrical energy in known manner. The electrical consumer 28 here stands for an electrically driven motor, for example, an electrical storage unit (battery), or the like.
[0028] The cathodal gas diffusion element 20 comprises on its side facing toward the bipolar plate 14 at the cathode side at least one structural element 30. The at least one structural element 30 or the multiple structural elements 30 is or are integrally bonded to the gas diffusion element 20. In particular, the structural elements 30 can be sprayed or sputtered onto the gas diffusion element 20. The gas diffusion element 20 and the structural element 30 thus form an integral component with the fuel cell 10.
[0029] What has been said above in regard to the cathodal gas diffusion element 20 and the structural elements 30 can also be applied to an anodal gas diffusion element 18. In particular, a structural element 30 can also be provided on an anodal gas diffusion element 18, even when this is not explicitly described or shown.
[0030]
[0031] The structural elements 30 form a partial coating on the gas diffusion element 20. In particular, the structural elements 30 form regions that are impenetrable to gas or water. In the example of
[0032] In the example of
[0033] The sprayed or sputtered structural elements 30 in the example of
[0034]
[0035] In
[0036] In
[0037]
[0038]
[0039]
[0040] The examples shown in
[0041] Several of the fuel cells 10 shown in
[0042] Such a fuel cell stack can be used for the energy supply in an aviation propulsion drive. The fuel cell stack can be connected electrically, directly or indirectly (via a battery storage), to the aviation propulsion drive.