High-temperature, low-temperature—gradient methods for (CO-)electrolysis of water (SOEC) or for producing electricity within a reactor or fuel-cell stack (SOFC) respectively

US10480082B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10480082-B2
Application numberUS-201615751319-A
CountryUS
Kind codeB2
Filing dateAug 12, 2016
Priority dateAug 12, 2015
Publication dateNov 19, 2019
Grant dateNov 19, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

The invention essentially consists in supplying fuel (either steam or a mixture of steam with CO2 or H2 or CH4) to distinct zones of a cell or a group of stacked cells and of an adjacent cell or group of adjacent stacked cells within a given (co-)electrolysis reactor or a SOFC fuel-cell stack.

First claim

Opening claim text (preview).

The invention claimed is: 1. A method for high-temperature electrolysis of steam, or for co-electrolysis of steam and of carbon dioxide, implemented in a reactor comprising: a stack of individual electrolysis cells of a solid oxide type, each comprising a cathode, an anode and an electrolyte inserted between the cathode and the anode, and a plurality of electrical and fluid interconnectors, each arranged between two adjacent individual electrolysis cells with one face thereof in electrical contact with the anode of one of the two adjacent individual electrolysis cells and the other face thereof in electrical contact with the cathode of the other of the two adjacent individual electrolysis cells, the method comprising: supplying a first zone of each electrical and fluid interconnector of a first group with steam or with a mixture of steam and of carbon dioxide, and distributing it to a cathode of each individual electrolysis cell of the first group, then recovering hydrogen produced or a synthesis gas, which is a mixture of carbon monoxide and of hydrogen in a second zone of the each electrical and fluid interconnector of the first group, and supplying a first zone of each electrical and fluid interconnector of a second group, at least one of which is adjacent to the electrical and fluid interconnector of the first group, with steam or with a mixture of steam and of carbon dioxide, and distributing it to a cathode of each individual electrolysis cell of the second group, at least one of which is adjacent to the electrolysis cell of the first group, then recovering hydrogen produced or a synthesis gas, which is a mixture of carbon monoxide and of hydrogen in a second zone of the each electrical and fluid interconnector of the second group, the first and second zones of the electrical and fluid interconnectors of the second group not being located vertically in line respectively with the first and second zones of the electrical and fluid interconnectors of the first, group, wherein, within the stack, the supplying and a circulation respectively to the electrical and fluid interconnectors and to the electrolysis cells of the first group are carried out independently relative to the supplying and a circulation respectively to the electrical and fluid interconnectors and to the electrolysis cells of the second group. 2. The method of claim 1 , wherein the first and second zones of the electrical and fluid interconnectors of the first and second groups are arranged such that the distributing the steam or of the mixture of steam and of carbon dioxide to the cathode of the electrolysis cells of the first group is carried out in co-current to the to the electrolysis cells of the second group. 3. The method of claim 1 , wherein the first and second zones of the first and second groups of the electrical and fluid interconnectors are arranged such that the distributing the steam or of the mixture of steam and of carbon dioxide to the cathode of the electrolysis cells of the first group is carried out in counter-current to the distributing to the electrolysis cells of the second group. 4. The method of claim 1 , the method further comprising: supplying a third zone of the each electrical and fluid interconnector of the first group with a draining gas, and distributing it to the anode of the each electrolysis cell of the first group, then recovering oxygen produced and, where appropriate, the draining gas in a fourth zone of the each electrical and fluid interconnector of the first group, and supplying a third zone of the each electrical and fluid interconnector of the second group with a draining gas, and distributing it to the anode of the each electrolysis cell of the second group, then recovering oxygen produced and, where appropriate, the draining gas in a fourth zone of the each electrical and fluid interconnector of the second group, the third and fourth zones of the electrical and fluid interconnectors of the second group being located vertically in line respectively with the third and fourth zones of the electrical and fluid interconnectors of the first group, so as to have a supply of draining gas and a recovery of oxygen produced which are common to the first and second groups. 5. The method of claim 1 , the method further comprising: supplying a third zone of the each electrical and fluid interconnector of the first group with a draining gas, and distributing it to the anode of the each electrolysis cell f the first group, then recovering oxygen produced and, where appropriate, the draining gas in a fourth zone of the each electrical and fluid interconnector of the first group, and supplying a third zone of the each electrical and fluid interconnector of the second group with a draining gas, and distributing it to the anode of the each electrolysis cell of the second group, then recovering oxygen produced and, where appropriate, the draining gas in a fourth zone of the each electrical and fluid interconnector of the second group, the third and fourth zones of the electrical and fluid interconnectors of the second group not being located vertically in line respectively with the third and fourth zones of the electrical and fluid interconnectors of the first group, so as to have a supply of draining gas and a recovery of oxygen produced which are separate between the first group and the second group. 6. The method of claim 5 , wherein the third and fourth zones of the electrical and fluid interconnectors of the first and second groups are arranged such that the distributing the draining gas and of the oxygen produced by electrolysis at the anode of the electrolysis cells of the first group is carried out in counter-current to the distributing the electrolysis cells of the second group. 7. A method for producing electricity a high temperature, implemented in a solid oxide fuel cell comprising: a stack of individual electrochemical cells of an SOFC type, each comprising a cathode, an anode and an electrolyte inserted between the cathode and the anode, and a plurality of electrical and fluid interconnectors, each arranged between two adjacent individual electrochemical cells with one face thereof in electrical contact with the anode of one of the two adjacent individual electrochemical cells and the other face thereof in electrical contact with the cathode of the other of the two adjacent individual electrochemical cells, the method comprising: supplying a first zone of each electrical and fluid interconnector of a first group with fuel, and distributing it to an anode of each individual electrochemical cell of the first group, then recovering surplus fuel and water produced in a second zone of the each electrical and fluid interconnector of the first group, and supplying a first zone of each electrical and fluid interconnector of a second group, at least one of which is adjacent to the each electrical and fluid interconnector of the first group, with fuel, and distributing it to an anode of each individual electrochemical cell of the second group, at least one of which is adjacent to the electrochemical cell of the first group, then recovering surplus fuel and ater produced in a second zone of the each electrical and fluid interconnector of the second group, the first and second zones of the electrical and fluid interconnectors of the second group not being located vertically in line respectively with the first and second zones of the electrical and fluid interconnectors of the first group, wherein, within the stack, the supplying and a circulation respectively to the electrical and fluid interconnectors and to the electrochemical cells of the first group are carried out independently relative to the supplying and circulation respectively to the electrical and fluid interconnectors and to t

Assignees

Inventors

Classifications

  • Electrolytic production of inorganic compounds or non-metals · CPC title

  • Processes for controlling fuel cells or fuel cell systems · CPC title

  • H01M8/12Primary

    operating at high temperature, e.g. with stabilised ZrO2 electrolyte · CPC title

  • Supplying or removing reactants or electrolytes; Regeneration of electrolytes · CPC title

  • comprising two or more groupings of fuel cells, e.g. modular assemblies · CPC title

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Frequently asked questions

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What does patent US10480082B2 cover?
The invention essentially consists in supplying fuel (either steam or a mixture of steam with CO2 or H2 or CH4) to distinct zones of a cell or a group of stacked cells and of an adjacent cell or group of adjacent stacked cells within a given (co-)electrolysis reactor or a SOFC fuel-cell stack.
Who is the assignee on this patent?
Commissariat Energie Atomique
What technology area does this patent fall under?
Primary CPC classification H01M8/12. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Nov 19 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).