Electrochemical cell
US-2024332559-A1 · Oct 3, 2024 · US
US2022059853A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2022059853-A1 |
| Application number | US-202016977007-A |
| Country | US |
| Kind code | A1 |
| Filing date | Mar 24, 2020 |
| Priority date | May 8, 2019 |
| Publication date | Feb 24, 2022 |
| Grant date | — |
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A flow-field plate is provided for distributing a reactant to an electrode or a gas diffusion layer of a fuel cell, the flow-field plate having a gas inlet, and having a plurality of channels defining a flow field. A pressure gradient is present between the gas inlet and the flow field given a state of throughflow, which leads to an intake of exhaust gas flowing in the channels in the direction of the gas inlet. Furthermore, there is a water/gas separator which is fluidically connected to the gas inlet for separating liquid water and/or water vapor from a gas which is connected to the flow field in order to supply the gas separated in the water/gas separator to the flow field. A flow cross-section at the gas inlet or at the gas inlet region is smaller than the flow cross-section at or in the region of the water/gas separator.
Opening claim text (preview).
1 . A flow-field plate for distributing a reactant to an electrode or a gas diffusion layer of a fuel cell, comprising: a gas inlet; a plurality of channels defining a flow field, wherein given a state of throughflow a pressure gradient is present between the gas inlet and the flow field which causes an exhaust gas flowing into the channels to be drawn toward the gas inlet and, and a water/gas separator fluidically connected to the gas inlet for removing liquid water and/or water vapor from a gas which is connected to the flow field in order to supply the flow field with the gas removed in the water/gas separator, wherein, a flow cross-section at the gas inlet or at the gas inlet region is smaller than the flow cross-section at or in the region of the water/gas separator. 2 . The flow-field plate according to claim 1 , wherein the flow cross-section between the gas inlet and the water/gas separator increases continuously. 3 . The flow-field plate according to claim 1 , wherein the increasing flow cross-section is formed by a wall running at an angle with respect to an extension direction of the channels. 4 . The flow-field plate according to claim 3 , wherein the wall is guided at an angle up to an edge-side channel assigned to the water/gas separator in such a way that the gas separated in the water/gas separator is guided exclusively into the edge-side channel in order to distribute it to the channels of the flow field. 5 . The flow-field plate according to claim 3 , wherein a second wall is provided in which the wall and the second wall are arranged facing each other, and a passage is formed between the wall and the second wall. 6 . The flow-field plate according to claim 3 , wherein the water/gas separator is assigned an outlet with an actuator for discharging liquid water temporarily stored in the water/gas separator, and a third wall is provided which is arranged between the outlet and the wall in such a way that the gas separated in the water/gas separator is guided to the flow field. 7 . The flow-field plate according to claim 1 , wherein the water/gas separator is formed as an impact separator with at least one baffle plate. 8 . The flow-field plate according to claim 1 , wherein the water/gas separator is formed as a knitted-fabric separator. 9 . The flow-field plate according to claim 1 , wherein the water/gas separator is formed as at least one hydrophilic or hygroscopic bar. 10 . The flow-field plate according to claim 1 , wherein an ejector is assigned to the gas inlet, and the ejector takes the form of a nozzle.
by condensers, gas-liquid separators or filters · CPC title
characterised by internal manifolds · CPC title
by adsorption · CPC title
characterised by the configuration of channels, e.g. by the flow field of the reactant or coolant · CPC title
Fuel cells · CPC title
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