IP Library Granted Patent US 11,735,756
Granted Patent B2
US 11,735,756 · App. 17/362,610 · Granted Aug 22, 2023

Redox flow battery systems and methods utilizing a temporal energy profile

Inventors: Liyu Li (Bellevue, WA); Qingtao Luo (Mukilteo, WA)
Assignee: COUGAR CREEK TECHNOLOGIES, LLC
H01M8/188C22C1/00C22C27/06H01M4/38H01M8/04186H01M8/04276H01M8/04544H01M8/04611H01M8/04932H01M8/08H01M16/003H01M8/0693H01M2004/8694H01M2300/0002H01M2300/0005
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Quick Facts
Patent No.
US 11,735,756
App. No.
17/362,610
Granted
Aug 22, 2023
Kind
B2
Abstract

A redox flow battery system includes an anolyte; a catholyte; a first half-cell including a first electrode in contact with the anolyte; a second half-cell including a second electrode in contact with the catholyte; a separator separating the anolyte in the first half-cell from the catholyte in the second half-cell; at least one state measurement device configured for intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte or the catholyte before entering or after leaving the first half-cell or second half-cell, respectively; and a controller coupled to the at least one state measurement device for generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements.

Claims (50)

1. A redox flow battery system, comprising

an anolyte;

a catholyte;

a first half-cell comprising a first electrode in contact with the anolyte;

a second half-cell comprising a second electrode in contact with the catholyte;

an anolyte tank in fluid communication with the first half-cell;

a catholyte tank in fluid communication with the second half-cell;

an anolyte pump configured for pumping anolyte between the first half-cell and the anolyte tank;

a catholyte pump configured for pumping catholyte between the second half-cell and the catholyte tank;

a separator separating the anolyte in the first half-cell from the catholyte in the second half-cell;

at least one state measurement device configured for intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte or the catholyte before entering or after leaving the first half-cell or second half-cell, respectively; and

a controller coupled to the at least one state measurement device for generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements, wherein the controller is configured to use the temporal energy profile to vary pumping speed of the anolyte and catholyte pumps.

2. The redox flow battery system of claim 1 , wherein the at least one state measurement device comprises an anolyte state measurement device configured for intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte before entering or after leaving the first half-cell and a catholyte state measurement device configured for intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the catholyte before entering or after leaving the second half-cell.

3. The redox flow battery system of claim 1 , wherein the at least one state measurement device is configured to measure a voltage of the anolyte or catholyte.

4. The redox flow battery system of claim 1 , wherein the controller is configured to determine a state of charge of the anolyte or catholyte from the measurement made by the at least one state measurement device and to use the state of charge in the temporal energy profile.

5. The redox flow battery system of claim 1 , wherein the controller is configured to determine an average oxidation state of the anolyte or catholyte from the measurement made by the at least one state measurement device and to use the average oxidation state in the temporal energy profile.

6. A redox flow battery system, comprising

an anolyte;

a catholyte;

a first half-cell comprising a first electrode in contact with the anolyte;

a second half-cell comprising a second electrode in contact with the catholyte;

a separator separating the anolyte in the first half-cell from the catholyte in the second half-cell;

at least one state measurement device configured for intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte or the catholyte before entering or after leaving the first half-cell or second half-cell, respectively; and

a controller coupled to the at least one state measurement device for generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements, wherein the controller is configured to generate the temporal energy profile using the measurements and an estimate of diffusion of charged species within the anolyte or catholyte.

7. The redox flow battery system of claim 6 , further comprising an anolyte pump configured for pumping anolyte into and out of the first half-cell and a catholyte pump configured for pumping catholyte into or out of the second half-cell.

8. The redox flow battery system of claim 7 , wherein the controller is configured to use the temporal energy profile to vary pumping speed of the anolyte and catholyte pumps.

9. A method of operating the redox flow battery system of claim 1 , the method comprising:

intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte or the catholyte before entering or after leaving the first half-cell or second half-cell, respectively; and

generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements.

10. The method of claim 9 , wherein the redox flow battery system further comprises an anolyte pump configured for pumping anolyte into and out of the first half-cell and a catholyte pump configured for pumping catholyte into or out of the second half-cell;

the method further comprising using the temporal energy profile to vary pumping speed of the anolyte and catholyte pumps.

11. The method of claim 9 , wherein making a measurement comprises making a measurement of a voltage of the anolyte or catholyte.

12. The method of claim 9 , wherein generating the temporal energy profile comprises determining a state of charge of the anolyte or catholyte from the measurement made by the at least one state measurement device and using the state of charge in the temporal energy profile.

13. The method of claim 9 , wherein generating the temporal energy profile comprises determining an average oxidation state of the anolyte or catholyte from the measurement made by the at least one state measurement device and using the average oxidation state in the temporal energy profile.

14. The method of claim 9 , wherein generating the temporal energy profile comprises generating the temporal energy profile using the measurements and an estimate of diffusion of charged species within the anolyte or catholyte.

15. A non-transitory computer-readable medium having processor-executable instructions for operating the redox flow battery system of claim 1 , the processor-executable instructions when installed onto a device enable the device to perform actions, the actions comprising:

intermittently, periodically, or continuously making a measurement of a value indicative of a state of charge of the anolyte or the catholyte before entering or after leaving the first half-cell or second half-cell, respectively; and

generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements.

16. The non-transitory computer-readable medium of claim 15 , the actions further comprise using the temporal energy profile to vary pumping speed of anolyte and catholyte pumps of the redox flow battery system.

17. The non-transitory computer-readable medium of claim 15 , wherein making a measurement comprises making a measurement of a voltage of the anolyte or catholyte.

18. The non-transitory computer-readable medium of claim 15 , wherein generating the temporal energy profile comprises determining a state of charge or average oxidation state of the anolyte or catholyte from the measurement made by the at least one state measurement device and using the state of charge or average oxidation state in the temporal energy profile.

19. The non-transitory computer-readable medium of claim 15 , wherein generating the temporal energy profile comprises generating the temporal energy profile using the measurements and an estimate of diffusion of charged species within the anolyte or catholyte.

20. A redox flow battery system, comprising

an anolyte;

a catholyte;

a first half-cell comprising a first electrode in contact with the anolyte;

a second half-cell comprising a second electrode in contact with the catholyte;

a separator separating the anolyte in the first half-cell from the catholyte in the second half-cell;

at least one charging measurement device configured for intermittently, periodically, or continuously making a measurement of power supplied by a charging source, wherein each of the at least one charging measurement device is coupled to either the first electrode or the second electrode and configured to be disposed between the charging source and either the first electrode or the second electrode; and

a controller coupled to the at least one charging measurement device for generating a temporal energy profile of the anolyte or the catholyte, respectively, using the measurements.

Assignments (2)
CHANGE OF NAME Recorded Sep 20, 2021
From: COUGAR CREEK ELECTROLYSED WATER, LLC
To: COUGAR CREEK TECHNOLOGIES, LLC
Reel/Frame 057542/0695 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 2, 2021
From: LI, LIYU; LUO, QINGTAO
To: COUGAR CREEK ELECTROLYSED WATER, LLC
Reel/Frame 057377/0644 →
Continuity (9)
Provisional Application 63174352 · Apr 13, 2021
Provisional Application 63154547 · Feb 26, 2021
Provisional Application 63147182 · Feb 8, 2021
Provisional Application 63131738 · Dec 29, 2020
Provisional Application 63127048 · Dec 17, 2020
Provisional Application 63126408 · Dec 16, 2020
Provisional Application 63120204 · Dec 2, 2020
Provisional Application 63114160 · Nov 16, 2020
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