IP Library › Granted Patent US 11,791,489
Granted Patent B2
US 11,791,489 · App. 17/643,466 · Granted Oct 17, 2023

Reverse polarity refresh method and redox flow battery system

Inventor: William T. Kender (Chicago, IL)
Assignee: UOP LLC
H01M8/188H01M2300/0091
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Quick Facts
Patent No.
US 11,791,489
App. No.
17/643,466
Granted
Oct 17, 2023
Kind
B2
Abstract

A redox flow battery system comprising a catholyte in fluid communication with a cathode, an anolyte in fluid communication with an anode, a membrane in fluid communication with the catholyte and the anolyte, and positive and negative terminals in contact with a power supply and a load. The positive and negative terminals configured to charge the redox flow battery in an opposite direction such that the anolyte is oxidized and the catholyte is reduced. The anolyte and the catholyte are kept separate and never mixed.

Claims (40)

1. A process for refreshing a redox flow battery system, the process comprising:

providing a redox flow battery, the redox flow battery comprising:

a set of terminals connectable to a power supply and a load;

a catholyte in fluid communication with a cathode;

an anolyte in fluid communication with an anode; and

a membrane in fluid communication with the catholyte and the anolyte;

partially discharging the redox flow battery;

reversing polarity of the set of terminals of the redox flow battery; and

charging the redox flow battery in an opposite direction such that the anolyte is oxidized and the catholyte is reduced; and

wherein discharging occurs when a pH of the anolyte reaches 5.0 and wherein the step of charging the redox flow battery in an opposite direction is conducted until the pH of the anolyte reaches 1.0.

2. The process of claim 1 , wherein the redox flow battery system comprises an all-iron redox flow battery, an iron-chromium redox flow battery, or an all-vanadium redox flow battery.

3. The process of claim 1 , wherein discharging occurs when a state of charge imbalance of the battery reaches 20% difference from a starting condition and wherein the step of charging the redox flow battery in an opposite direction is conducted until this difference is less than 5%.

4. The process of claim 1 , wherein the redox flow battery comprises ascorbic acid in the catholyte only.

5. The process of claim 1 , wherein the catholyte comprises Fe 2+ , Fe 3+ , V 4+ , or V 5+ .

6. The process of claim 5 , wherein the anolyte and the catholyte are kept separate and never mixed.

7. The process of claim 1 , wherein the anolyte comprises Fe 0 particles, Fe 2+ , Cr 2+ , Cr 3+ , Sn 2+ , Sn 4+ , Mn 2+ , Mn 4+ , Ce 2+ , Ce 3+ , or V 3+ .

8. The process of claim 1 , wherein discharging occurs when a coulombic efficiency of the redox flow battery is below 80%.

9. A process for refreshing a redox flow battery system, the process comprising:

providing a redox flow battery, the redox flow battery comprising:

a set of terminals connectable to a power supply and a load;

a catholyte in fluid communication with a cathode;

an anolyte in fluid communication with an anode; and

a membrane in fluid communication with the catholyte and the anolyte;

partially discharging the redox flow battery; and

charging the redox flow battery in an opposite direction such that the anolyte is oxidized and the catholyte is reduced, and wherein the anolyte and the catholyte are kept separate and never mixed; and

wherein discharging occurs when a pH of the anolyte reaches 5.0 and wherein the step of charging the redox flow battery in an opposite direction is conducted until the pH of the anolyte reaches 1.0.

10. The process of claim 9 , wherein discharging occurs when a coulombic efficiency of the redox flow battery is below 80%.

11. The process of claim 9 , wherein the redox flow battery is an all-iron redox flow battery, an iron-chromium redox flow battery, or an all-vanadium redox flow battery.

12. The process of claim 9 , wherein the catholyte comprises Fe 2+ , Fe 3+ , V 4+ , or V 5+ .

13. The process of claim 9 , wherein the anolyte comprises Fe 0 particles, Fe 2+ , Cr 2+ , Cr 3+ Sn 2+ , Sn 4+ , Mn 2+ , Mn 4+ , Ce 2+ , or Ce 3+ .

14. The process of claim 9 , wherein a current density of charging the redox flow battery in the opposite direction is between ¼ to about ⅓ of a current density of charging the redox flow battery in a forward direction.

15. A redox flow battery system comprising:

a catholyte in fluid communication with a cathode;

an anolyte in fluid communication with an anode;

a membrane in fluid communication with the catholyte and the anolyte; and

positive and negative terminals in contact with a power supply and a load, the positive and negative terminals configured to charge the redox flow battery in an opposite direction such that the anolyte is oxidized and the catholyte is reduced, and wherein the anolyte and the catholyte are kept separate and never mixed;

wherein the redox flow battery is configured to be discharged when a pH of the anolyte reaches 5.0 and wherein charging the redox flow battery in the opposite direction lowers the pH of the anolyte to 1.0.

16. The redox flow battery system of claim 15 , wherein the redox flow battery system is an all-iron redox flow battery system or an all-vanadium redox flow battery system.

17. The redox flow battery system of claim 16 , wherein the anolyte or the catholyte comprises ascorbic acid.

18. The redox flow battery system of claim 15 , wherein the redox flow battery is configured to be discharged when a state of charge difference of the anolyte reaches 20% of the starting condition and wherein charging the redox flow battery in the opposite direction is conducted until the concentration of Fe 3+ in the catholyte is within about 5% of the initial condition.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2021
From: KENDER, WILLIAM T.
To: UOP LLC
Reel/Frame 058345/0353 →
Continuity (2)
Provisional Application 63129036 · Dec 22, 2020
Related Publication 20220200035A1 · Jun 23, 2022