IP Library › Granted Patent US 10,598,051
Granted Patent B2
US 10,598,051 · App. 16/067,163 · Granted Mar 24, 2020

Energy storage system

Inventors: Huashan Bao (Newcastle Upon Tyne, GB); Anthony Paul Roskilly (Newcastle Upon Tyne, GB)
Assignee: University of Newcastle Upon Tyne
F01K25/08F01K3/12F01K25/00F25B15/16F25B17/08F25B27/02F25B2400/14
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Quick Facts
Patent No.
US 10,598,051
App. No.
16/067,163
Granted
Mar 24, 2020
Kind
B2
Abstract

There is disclosed an energy storage system. In particular, there is disclosed a chemisorption based energy storage system, able to provide electricity, heating or cooling depending on the desired energy output. The energy storage system includes a first chemical reactor containing a first sorbent material and a second chemical reactor containing a second sorbent material. The first and second chemical reactors are in mutual fluid connection such that a refrigerant fluid can flow from the first chemical reactor to the second chemical reactor, and from the second chemical reactor to the first chemical reactor. The first and second chemical reactors are further provided with means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors. A heat exchanger module is also provided. The heat exchanger module is configured to select from a plurality of available heat sources, a heat source having the highest temperature and an expander module selectively connected to the first chemical reactor and the second chemical reactor via the heat exchanger module. The heat source is arranged to heat the refrigerant fluid prior to the refrigerant fluid passing through the expander module, and the heat exchanger is configured to recover a surplus heat from the highest temperature heat source. The expander module is configured to expand the refrigerant fluid. The means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors provides a flow of refrigerant fluid between the expander module and the first and second chemical reactors, and wherein the expander module is operable to expand the refrigerant fluid to provide a variable work output depending on energy storage requirements.

Claims (26)

1. A chemisorption based energy storage device comprising:

a first chemical reactor containing a first sorbent material and a second chemical reactor containing a second sorbent material, the first and second chemical reactors being in mutual fluid connection such that a refrigerant fluid can flow from the first chemical reactor to the second chemical reactor, and from the second chemical reactor to the first chemical reactor, the first and second chemical reactors being further provided with means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors;

a heat exchanger module, the heat exchanger module being configured to select from a plurality of available heat sources, a heat source having the highest temperature; and

an expander module selectively connected to the first chemical reactor and the second chemical reactor via the heat exchanger module;

wherein the heat source is arranged to heat the refrigerant fluid prior to the refrigerant fluid passing through the expander module, and

wherein the heat exchanger is configured to recover a surplus heat from the highest temperature heat source, and the expander module is configured to expand the refrigerant fluid;

wherein the means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors provides a flow of refrigerant fluid between the expander module and the first and second chemical reactors, and

wherein the expander module is operable to expand the refrigerant fluid to provide a variable work output depending on energy storage requirements.

2. An energy storage system according to claim 1 , wherein the first sorbent material is a salt, and preferably, the first sorbent material is a metal halide.

3. An energy storage system according to claim 2 , wherein the salt is a metal sulphide or a metal sulphate.

4. An energy storage system according to claim 1 , wherein the first sorbent material is selected from the group: NiCl 2 , CaCl 2 , SrCl 2 , FeCl 2 , FeCl 3 , ZnCl 2 , MgCl 2 , MgSO 4 and MnCl 2 .

5. An energy storage system according to claim 1 , wherein the second sorbent material is a salt, and preferably, the second sorbent material is a metal salt.

6. An energy storage system according to claim 5 , wherein the salt is a metal halide.

7. An energy storage system according to claim 5 , wherein the salt is a metal sulphide.

8. An energy storage system according to claim 5 , wherein the salt is a metal sulphate.

9. An energy storage system according to claim 1 , wherein the second sorbent material is selected from the group: CaCl 2 , SrCl 2 , BaCl 2 , NaBr, NH 4 Cl, PbCl 2 , LiCl, and Na 2 S.

10. An energy storage system according to claim 1 , wherein the refrigerant fluid is selected from the group: ammonia, methanol, and steam.

11. A method of operating an energy storage system according to the first aspect, the method comprising:

providing a first chemical reactor containing a first sorbent material and a second chemical reactor containing a second sorbent material, the first and second chemical reactors being in mutual fluid connection such that a refrigerant fluid can flow from the first chemical reactor to the second chemical reactor, and from the second chemical reactor to the first chemical reactor, the first and second chemical reactors being further provided with means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors;

providing a heat exchanger module, the heat exchanger module being configured to select from a plurality of available heat sources, a heat source having the highest temperature; and

selectively connecting an expander module to the first chemical reactor and the second chemical reactor via the heat exchanger module;

heating the refrigerant fluid via the selected highest temperature heat source and passing the refrigerant fluid through the expander module;

recovering a surplus heat from the highest temperature heat source; and

expanding the refrigerant fluid through the expander module;

wherein the means for putting heat in to, or taking heat out of, the first and/or the second chemical reactors provides a flow of refrigerant fluid between the expander module and the first and second chemical reactors, and wherein the expander module is operable to expand the refrigerant fluid to provide a variable work output depending on energy storage requirements.

12. An energy storage system according to claim 1 , wherein the refrigerant is selected from one of: ammonia, methanol or steam.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2021
From: UNIVERSITY OF NEWCASTLE UPON TYNE
To: THE UNIVERSITY OF DURHAM
Reel/Frame 057580/0462 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2019
From: BAO, HUASHAN; ROSKILLY, ANTHONY PAUL
To: UNIVERSITY OF NEWCASTLE UPON TYNE
Reel/Frame 048630/0315 →
Priority Claims (1)
GB 1600091.1 · Jan 4, 2016 · national
Continuity (1)
Related Publication 20190024539A1 · Jan 24, 2019