FUEL CELL STACK
20220278348 Ā· 2022-09-01
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
H01M8/2485
ELECTRICITY
International classification
H01M8/2485
ELECTRICITY
H01M8/04014
ELECTRICITY
Abstract
A fuel cell stack includes a plurality of fuel cells received between two end plates, at least one end plate of which has flow channels formed therein with ports for the anode fresh gas and the anode exhaust gas as well as ports for the cathode fresh gas and the cathode exhaust gas, wherein a hygroscopic material forms the wall between the ports for the anode exhaust gas and the cathode fresh gas.
Claims
1. A fuel cell stack, comprising: a first end plate and a second end plate; and a plurality of fuel cells received between the first end plate and the second end plate; wherein the first end plate includes flow channels with a first port for an anode fresh gas, a second port for an anode exhaust gas, a third port for a cathode fresh gas, and a fourth port for a cathode exhaust gas; and wherein a hygroscopic material forms a wall between the second port for the anode exhaust gas and the third port for the cathode fresh gas.
2. The fuel cell stack according to claim 1, wherein the wall formed by the hygroscopic material is gas-tight.
3. The fuel cell stack according to claim 1, wherein the hygroscopic material is thermally coupled to the first end plate.
4. The fuel cell stack according to claim 1, wherein the third port for the cathode fresh gas and the second port for the anode exhaust gas are routed through the hygroscopic material.
5. The fuel cell stack according to claim 1, wherein, in the first end plate having the ports, a flow channel with associated ports for a coolant is formed.
6. The fuel cell stack according to claim 1, wherein flow channels for the anode exhaust gas and/or the cathode fresh gas are formed in part of the cross section of the hygroscopic material.
7. The fuel cell stack according to claim 1, wherein the first end plate is associated with a cover supporting the ports.
8. The fuel cell stack according to claim 1, wherein the hygroscopic material is sealed to the first end plate by a seal.
9. The fuel cell stack according to claim 1, wherein the third port for the cathode fresh gas and the fourth port for the cathode exhaust gas are formed on opposite longitudinal sides of the first end plate, in that wherein the hygroscopic material extends parallel to a longitudinal side with the third port for the cathode fresh gas and at least partially fills a recycle channel going from the second port for the anode exhaust gas to the first port for the anode fresh gas.
10. The fuel cell stack according to claim 9, wherein a jet pump is associated with the recycle channel.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0017] Further advantages, features and details will be apparent from the claims, the following description, and the drawings.
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DETAILED DESCRIPTION
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[0030] Each of the fuel cells 3 comprises an anode and a cathode as well as a proton-conducting membrane separating the anode from the cathode. The membrane is formed out of an ionomer, such as a sulfonated polytetrafluoroethylene (PTFE) or a perfluorinated sulfonic acid (PFSA) polymer. Alternatively, the membrane may be formed as a sulfonated hydro-carbon membrane.
[0031] The anodes and/or the cathodes may additionally be admixed with a catalyst, wherein the membranes may be coated on their first side and/or on their second side with a catalyst layer of a noble metal or of mixtures comprising noble metals such as platinum, palladium, ruthenium or the like, which serve as reaction accelerators in the reaction of the respective fuel cell.
[0032] Fuel (for example hydrogen) is supplied to the anodes via anode chambers within the fuel cell stack 2. In a polymer electrolyte membrane fuel cell (PEM fuel cell), fuel or fuel molecules are split into protons and electrons at the anode. The membrane allows the protons (for example H.sup.+) to pass through, but it is impermeable to the electrons (e.sup.ā). In so doing, the following reaction takes place at the anode: 2H.sub.2.fwdarw.4H++4eā (oxidation/electron release). Whereas the protons pass through the membrane to the cathode, the electrons are routed to the cathode or to an energy storage device via an external circuit. Cathode gas (for example, oxygen or oxygen-containing air) can be supplied to the cathodes via cathode chambers within the fuel cell stack 2, such that the following reaction occurs on the cathode side: O.sub.2+4H.sup.++4e.sup.ā .fwdarw.2H.sub.2O (reduction/electron capture).
[0033] Due to the plurality of fuel cells 3 combined in a fuel cell stack 2, there is a high demand for oxygen, such that the ambient air is compressed by a compressor 4, whereby strongly heated, dry air is present as a result of the given compression. The conditioning of this air to the requirements of the fuel cell 3 occurs in an intercooler 5 and in a humidifier 6 in order to keep the membrane in the fuel cell 3 at the required level of humidity. Humidity is fed to the humidifier 6 from the cathode exhaust gas, wherein the water produced in an anode circuit 7 can also be collected in a water separator 8 and, if necessary, fed to the humidifier 6.
[0034] The humidifier 6 is an expensive component requiring a large installation space, such that the intention is to be able to make the humidifier 6 smaller or to dispense with it.
[0035] An end plate 10 is shown in
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[0041] Aspects of various embodiments described above can be combined to provide further embodiments. These and other changes can be made to the embodiments in light of the above-detailed description. In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled.