IP Library Granted Patent US 12,631,090
Granted Patent B2
US 12,631,090 · App. 18/484,695 · Granted May 19, 2026

Multi-well pad storage of H

Inventor: Mariel Taylor Schottenfeld (Houston, TX)
Assignee: Air Products and Chemicals, Inc.
E21B41/0064B65G5/00
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Quick Facts
Patent No.
US 12,631,090
App. No.
18/484,695
Granted
May 19, 2026
Kind
B2
Abstract

Disclosed herein are systems and methods of gas sequestration of carbon dioxide from a fossil-fueled hydrogen production plant. The method includes producing at least hydrogen and carbon dioxide above ground from a fossil-fueled hydrogen production plant, injecting at least a portion of the hydrogen and carbon dioxide produced from the fossil-fueled hydrogen production plant into a geological hydrogen storage unit and a geological carbon dioxide storage unit, respectively, wherein the portion of the carbon dioxide is injected concurrently with the portion of the hydrogen. The injection of the portion of carbon dioxide and hydrogen underground are performed through carbon dioxide injection well(s) and hydrogen injection well(s), respectively, wherein a hydrogen injection wellhead(s) and a carbon dioxide injection wellhead(s) are located on a multi-well pad proximate the fossil-fueled hydrogen production plant.

Claims (39)

1 . A method of gas sequestration comprising:

producing at least hydrogen and carbon dioxide above ground from a fossil-fueled hydrogen production plant;

separating the at least hydrogen from carbon dioxide produced from the fossil-fueled hydrogen production plant;

injecting at least a portion of the hydrogen into a geological hydrogen storage unit by way of a hydrogen injection well located proximate the fossil-fueled hydrogen production plant; and

injecting at least a portion of the carbon dioxide into a geological carbon dioxide storage unit by way of a carbon dioxide injection well located proximate the fossil-fueled hydrogen production plant;

wherein the at least a portion of the carbon dioxide is injected concurrently with the at least a portion of the hydrogen; and

wherein a hydrogen injection wellhead and a carbon dioxide wellhead are located on a multi-well pad;

wherein the geological hydrogen storage unit utilizes a salt dome cavern storage facility.

2 . The method of claim 1 , wherein the hydrogen injection well is a vertical well and the carbon dioxide injection well is a deviated well.

3 . The method of claim 1 , wherein the geological hydrogen storage unit is adjacent to a subterranean formation containing the geological carbon dioxide storage unit, and wherein the geological carbon dioxide storage unit is disposed in a saline aquifer or a coal seam.

4 . The method of claim 1 , wherein the geological hydrogen storage unit is at least partially above or adjacent to a subterranean formation containing the geological carbon dioxide storage unit.

5 . The method of claim 1 , wherein the geological hydrogen storage unit utilizes a subterranean formation that is at least partially above or adjacent to a subterranean formation containing the geological carbon dioxide storage unit.

6 . The method of claim 1 , wherein the fossil-fueled hydrogen production plant is located less than 2 km from the multi-well pad.

7 . The method of claim 1 , wherein hydrogen comprises hydrogen gas.

8 . The method of claim 1 , wherein the hydrogen is injected in ammonia form.

9 . A method of gas sequestration comprising:

producing at least ammonia, hydrogen gas, and carbon dioxide above ground from a fossil-fueled ammonia production plant;

injecting at least a portion of the ammonia from the fossil-fueled ammonia production plant into an ammonia storage unit by way of an ammonia injection well located proximate the fossil-fueled ammonia production plant;

injecting at least a portion of the hydrogen gas from the fossil-fueled ammonia production plant into a hydrogen storage unit by way of a hydrogen injection well located proximate the fossil-fueled ammonia production plant; and

injecting at least a portion of the carbon dioxide from the fossil-fueled ammonia production plant into a carbon dioxide storage unit by way of a carbon dioxide injection well located proximate the fossil-fueled ammonia production plant;

wherein the at least portion of the ammonia is injected concurrently with the at least portion of the carbon dioxide; and

wherein an ammonia injection wellhead, a hydrogen injection wellhead, and a carbon dioxide wellhead are located on a multi-well pad.

10 . The method of claim 9 , wherein the ammonia injection well is a vertical well, the hydrogen injection well is a vertical well, and the carbon dioxide injection well is a deviated well.

11 . The method of claim 9 , wherein the ammonia storage unit and the hydrogen storage unit are stored in a salt dome that is adjacent to a subterranean formation containing the carbon dioxide storage unit, and wherein the carbon dioxide storage unit is disposed in a saline aquifer or a coal seam.

12 . The method of claim 9 , wherein the ammonia storage unit and the hydrogen storage unit are stored in a salt dome that is at least partially above or adjacent to a subterranean formation containing the carbon dioxide storage unit.

13 . The method of claim 9 , wherein the ammonia storage unit and the hydrogen storage unit are stored in a subterranean formation that is at least partially above or adjacent to a subterranean formation containing the carbon dioxide storage unit.

14 . The method of claim 9 , wherein the fossil-fueled ammonia production plant is located less than 2 km from the multi-well pad.

15 . The method of claim 9 , wherein the fossil-fueled ammonia production plant is located less than 500 m from the multi-well pad.

16 . A gas sequestration system comprising:

a fossil-fueled hydrogen production plant;

a separator in fluid communication with the fossil-fueled hydrogen production plant that receives a mixture of hydrogen gas and carbon dioxide from the fossil-fueled hydrogen production plant;

a hydrogen injection well in fluid communication with the separator and proximate to the fossil-fueled hydrogen production plant that extends into a geological hydrogen storage unit located underground;

a carbon dioxide injection well in fluid communication with the separator and proximate to the fossil-fueled hydrogen production plant that extends into a geological carbon dioxide storage unit located underground, wherein a hydrogen injection wellhead and a carbon dioxide injection wellhead are located on a multi-well pad; and

one or more compressors located on the multi-well pad;

wherein the geological hydrogen storage unit utilizes a salt dome cavern storage facility.

17 . The gas sequestration system of claim 16 , wherein the hydrogen injection well is a vertical well and the carbon dioxide injection well is a deviated well.

18 . The gas sequestration system of claim 16 , wherein the fossil-fueled hydrogen production plant is located less than 500 m from the multi-well pad.

19 . The gas sequestration system of claim 16 , wherein the fossil-fueled hydrogen production plant is configured to further produce ammonia, and wherein the separator receives the ammonia from the fossil-fueled hydrogen production plant, and wherein the gas sequestration system further comprises an ammonia injection well in fluid communication with the separator and proximate to the fossil-fueled hydrogen production plant that extends into an ammonia storage unit located underground, wherein an ammonia injection wellhead is located on the multi-well pad with the hydrogen injection wellhead and the carbon dioxide injection wellhead.

20 . The gas sequestration system of claim 19 , wherein the ammonia storage unit and the hydrogen storage unit are stored in a subterranean formation that is at least partially above or adjacent to a subterranean formation containing the carbon dioxide storage unit.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 3, 2023
From: SCHOTTENFELD, MARIEL TAYLOR
To: AIR PRODUCTS AND CHEMICALS, INC.
Reel/Frame 065442/0596 →
Continuity (1)
Related Publication 20250122779A1 · Apr 17, 2025
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