IP Library Granted Patent US 12680179
Granted Patent B2
US 12680179 · App. 17/984,504 · Granted Jul 14, 2026

Electrolysis stack

Inventors: Nicolas Richet (Fontenay-le-Fleury, FR); Olivier Debellemaniere (Bures-sur-Yvette, FR); Guillaume Lodier (Senlisse, FR); Anh Thao Thieu (Saint Cloud, FR); Hakim Maazaoui (Longjumeau, FR); Florent Beille (Lans-en-Vercors, FR)
Assignee: L'Air Liquide, Societe Anonyme Pour l'Etude et l'Exploitation des Procedes Georges Claude
C25B9/23C25B1/04C25B11/032C25B15/08
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Quick Facts
Patent No.
US 12680179
App. No.
17/984,504
Granted
Jul 14, 2026
Kind
B2
Abstract

Electrolysis stack, including multiple layers that are stacked along a stacking direction, wherein each of the layers includes an anode space with an anode, a cathode space with a cathode and a membrane that separates the anode space and the cathode space from each other, wherein the anode space, the membrane and the cathode space are arranged adjacent to each other in the stated order along the stacking direction, and wherein each of the layers further includes a respective electrically insulating shell that surrounds the anode space and the cathode space so as to enclose the anode space and the cathode space radially with respect to the stacking direction, wherein the shell includes a groove on at least one of its end faces in the stacking direction, wherein the groove surrounds the anode space and the cathode space at least partially.

Claims (15)

1 . An electrolysis stack, comprising multiple layers that are stacked along a stacking direction, wherein each of the layers comprises an anode space with an anode, a cathode space with a cathode and a membrane that separates the anode space and the cathode space from each other, wherein the anode space, the membrane and the cathode space are arranged adjacent to each other in the stated order along the stacking direction, and wherein each of the layers further comprises a respective electrically insulating shell that surrounds the anode space and the cathode space so as to enclose the anode space and the cathode space radially with respect to the stacking direction, wherein the shell comprises a groove on at least one of its end faces in the stacking direction, wherein the groove surrounds the anode space and the cathode space at least partially, and wherein the groove forms a respective first drainage path between adjacent layers.

2 . The electrolysis stack according to claim 1 , wherein the first drainage paths are connected to each other by a second drainage path.

3 . The electrolysis stack according to claim 2 , wherein the second drainage path is formed within the shells.

4 . The electrolysis stack according to claim 2 , wherein the second drainage path is inclined by less than 20° with respect to the stacking direction.

5 . The electrolysis stack according to claim 1 , wherein a third drainage path is connected with its first end to one of the first drainage paths and/or to the second drainage path and forms with its second end an opening in the shell.

6 . The electrolysis stack according to claim 1 , wherein the groove fully surrounds the anode space and the cathode space.

7 . The electrolysis stack according to claim 1 , wherein the groove is shaped to contribute to a frictional connection between adjacent layers.

8 . The electrolysis stack according to claim 3 , wherein the first drainage paths have a diameter that increases towards the second drainage path.

9 . The electrolysis stack according to claim 1 , further comprising a first electrode connected to the anode of the layer that is the first in the stacking direction, wherein the first electrode passes through the shell of this layer, and/or

further comprising a second electrode connected to the cathode of the layer that is the last in the stacking direction, wherein the second electrode passes through the shell of this layer.

10 . The electrolysis stack according to claim 1 , wherein for at least one of the layers the respective anode space comprises a gas diffusion region that is arranged between the membrane and the anode of the respective layer), and/or wherein for at least one of the layers the cathode space comprises a gas diffusion region that is arranged between the membrane and the cathode of the respective layer.

11 . The electrolysis stack according to claim 1 , wherein at least one of the anodes forms a bipolar plate together with the cathode of one of the neighboring layers.

12 . The electrolysis stack according to claim 1 , wherein an electrolyte supply conduit and/or an electrolyte drain conduit passes through the shell of at least one of the layers.

13 . The electrolysis stack according to claim 1 , wherein for at least one of the layers the respective membrane is an anion exchange membrane.

14 . A method for performing water electrolysis using an electrolysis stack according to claim 1 , wherein for each of the layers a respective electrical voltage is applied between the anode and the cathode.