IP Library › Granted Patent US 12,519,121
Granted Patent B2
US 12,519,121 · App. 17/363,269 · Granted Jan 6, 2026

Sealed aqueous flow battery systems with in-tank electrolyte rebalancing

Inventors: Steven Selverston (Cleveland Heights, OH); Jesse S. Wainright (Willoughby Hills, OH); Robert Savinell (Solon, OH)
Assignee: CASE WESTERN RESERVE UNIVERSITY
H01M8/188H01M4/36H01M8/0662H01M8/20Y02E60/50
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Quick Facts
Patent No.
US 12,519,121
App. No.
17/363,269
Granted
Jan 6, 2026
Kind
B2
Abstract

A battery system comprising a sealed aqueous flow battery that employs a passive, in-tank electrolyte recombination system. The recombination system allows for electrolyte stabilization in batteries where hydrogen evolution may occur as a side reaction without the need to use any externally-supplied rebalancing reactants. The system is a passive system that does not require a control system, additional pumps, or pumping energy.

Claims (28)

1 . A sealed flow battery system connected to an electrical load, the system comprising:

a negative electrolyte reservoir supplying negative electrolyte to a first half cell of a flow battery reaction cell by way of a negative flow path connection;

a positive electrolyte reservoir supplying positive electrolyte to a second half cell of the flow battery reaction cell by way of a positive flow path connection;

a self-contained, rebalancing reactor: i) positioned completely within the positive electrolyte reservoir, ii) configured to be wetted by the positive electrolyte, and iii) adapted to receive hydrogen gas generated by the flow battery reaction cell while supplying protons thereto, said rebalancing reactor having a first electrode material configured to convert hydrogen to protons and a second electrode material configured to reduce metal ions in the positive electrolyte;

wherein the flow battery reaction cell comprises the first half cell and the second half cell and includes a separator disposed between positive electrode that is in communication with the positive flow path connection and negative electrode that is in communication with the negative flow path connection;

wherein: i) the flow battery reaction cell, the negative electrolyte reservoir, the negative electrolyte flow path connection, the positive electrolyte reservoir, and the positive flow path connection all form a closed loop in which negative electrolyte circulates between the negative electrolyte reservoir and the first half cell and positive electrolyte circulates between the positive electrolyte reservoir and the second half cell; ii) the positive flow path connection and the negative flow path connection each represent discrete flow paths within the closed loop; and iii) the closed loop prevents introduction of any additional fluids thereto during operation of the sealed flow battery system; and

wherein the rebalancing reactor is a membrane-electrode assembly includes a wicking material selected from an ionomer membrane or a porous and electrically conductive carbon felt.

2 . The system of claim 1 wherein the membrane-electrode assembly is positioned perpendicular to a fluid line within the positive electrolyte reservoir so that a first end is submerged in the positive electrolyte and a second end is disposed in a head space portion of the positive electrolyte reservoir.

3 . The system of claim 2 wherein catalyst is disposed at both ends of the membrane-electrode assembly.

4 . The system of claim 1 wherein an array of membrane-electrode assemblies are provided.

5 . A sealed flow battery system connected to an electrical load, the system comprising:

a negative electrolyte reservoir supplying negative electrolyte to a first half cell of a flow battery reaction cell by way of a negative flow path connection;

a positive electrolyte reservoir supplying positive electrolyte to a second half cell of the flow battery reaction cell by way of a positive flow path connection;

a self-contained, rebalancing reactor: i) positioned completely within the positive electrolyte reservoir, ii) configured to be wetted by the positive electrolyte, and iii) adapted to receive hydrogen gas generated by the flow battery reaction cell while supplying protons thereto, said rebalancing reactor having a first electrode material configured to convert hydrogen to protons and a second electrode material configured to reduce metal ions in the positive electrolyte;

wherein the flow battery reaction cell comprises the first half cell and the second half cell and includes a separator disposed between positive electrode that is in communication with the positive flow path connection and negative electrode that is in communication with the negative flow path connection;

wherein: i) the flow battery reaction cell, the negative electrolyte reservoir, the negative electrolyte flow path connection, the positive electrolyte reservoir, and the positive flow path connection all form a closed loop in which negative electrolyte circulates between the negative electrolyte reservoir and the first half cell and positive electrolyte circulates between the positive electrolyte reservoir and the second half cell; ii) the positive flow path connection and the negative flow path connection each represent discrete flow paths within the closed loop; and iii) the closed loop prevents introduction of any additional fluids thereto during operation of the sealed flow battery system; and

wherein the rebalancing reactor is a capillary-action galvanic reactor.

6 . The system of claim 5 wherein the rebalancing reactor includes porous carbon felt.

7 . The system of claim 5 wherein the sealed flow battery system comprises an iron-based flow battery and wherein, in the rebalancing reactor, the first electrode material is a hydrogen electrode and the second electrode material is an iron electrode.

8 . The system of claim 6 wherein an array of capillary-action galvanic reactors are provided.

9 . The system of claim 5 wherein the system is passive so that no pumps or pressurized gases are provided in connection with recombining the positive and/or the negative electrolyte(s).

10 . The system of claim 5 wherein at least one catalyst selected from platinum, palladium, iridium, and ruthenium is contained within the rebalancing reactor.

11 . The system of claim 5 wherein a proton diffusion cell is coupled to the flow battery reaction cell, said proton diffusion cell is positioned within the closed loop so as to receive the negative electrolyte from the negative electrolyte reservoir and, separately, the positive electrolyte from the positive electrolyte reservoir so that protons from the positive electrolyte diffuse back into the negative electrolyte before each of the negative and positive electrolytes circulate from the negative electrolyte reservoir and the positive electrolyte reservoir into the flow battery reaction cell.

12 . The system of claim 5 further comprising a headspace connection between a headspace portion of the negative electrolyte reservoir and a headspace portion of the positive electrolyte reservoir and wherein: i) the flow battery reaction cell, the headspace connector, the negative electrolyte reservoir, the negative electrolyte flow path connection, the positive electrolyte reservoir, and the positive flow path connection all form a closed loop in which negative electrolyte circulates between the negative electrolyte reservoir and the first half cell and positive electrolyte circulates between the positive electrolyte reservoir and the second half, and ii) the headspace connection, the positive flow path connection, and the negative flow path connection each represent discrete flow paths within the closed loop.

13 . The system of claim 1 wherein the system is passive so that no pumps or pressurized gases are provided in connection with recombining the negative and/or the positive electrolyte(s).

14 . The system of claim 1 wherein at least one catalyst selected from platinum, palladium, iridium, and ruthenium is contained within the rebalancing reactor.

15 . The system of claim 1 wherein a proton diffusion cell is coupled to the flow battery reaction cell, said proton diffusion cell is positioned within the closed loop so as to receive the negative electrolyte from the negative electrolyte reservoir and, separately, the positive electrolyte from the positive electrolyte reservoir so that protons from the positive electrolyte diffuse back into the negative electrolyte before each of the negative and positive electrolytes circulate from the negative electrolyte reservoir and the positive electrolyte reservoir into the flow battery reaction cell.

16 . The system of claim 1 further comprising a headspace connection between a headspace portion of the negative electrolyte reservoir and a headspace portion of the positive electrolyte reservoir and wherein: i) the flow battery reaction cell, the headspace connector, the negative electrolyte reservoir, the negative electrolyte flow path connection, the positive electrolyte reservoir, and the positive flow path connection all form a closed loop in which negative electrolyte circulates between the negative electrolyte reservoir and the first half cell and positive electrolyte circulates between the positive electrolyte reservoir and the second half, and ii) the headspace connection, the positive flow path connection, and the negative flow path connection each represent discrete flow paths within the closed loop.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 30, 2021
From: SELVERSTON, STEVEN; WAINRIGHT, JESSE S.; SAVINELL, ROBERT
To: CASE WESTERN RESERVE UNIVERSITY
Reel/Frame 056716/0730 →
Continuity (3)
Continuation 15766121
Provisional Application 62239469 · Oct 9, 2015
Related Publication 20210344030A1 · Nov 4, 2021
References Cited (29)
US 4159366A · Thaller · 1979 [cited by applicant]
US 4576878A · Gahn · 1986 [cited by applicant]
US 7572546B2 · Karamanev · 2009 [cited by applicant]
US 7820321B2 · Horne et al. · 2010 [cited by applicant]
US 7909982B2 · Glass et al. · 2011 [cited by applicant]
US 8916281B2 · Chang et al. · 2014 [cited by applicant]
US 8980454B2 · Pham et al. · 2015 [cited by applicant]
US 9225031B2 · Whitehead et al. · 2015 [cited by applicant]
US 9363491B2 · Kawai et al. · 2016 [cited by applicant]
US 9509011B2 · Evans et al. · 2016 [cited by applicant]
US 10230125B2 · Evans et al. · 2019 [cited by applicant]
US 10249897B2 · Reece et al. · 2019 [cited by applicant]
US 20140272483A1 · Pham · 2014 [cited by examiner]
US 20150255824A1 · Evans · 2015 [cited by examiner]
US 20160248109A1 · Esswein et al. · 2016 [cited by applicant]
CN 103339775 · 2017 [cited by applicant]
JP 2013037856A · 2013 [cited by applicant]
JP 2014137946 · 2014 [cited by applicant]
JP 5802858 · 2015 [cited by applicant]
JP 600661 · 2016 [cited by applicant]
WO 2015048074 · 2015 [cited by applicant]
WO 2015095555 · 2015 [cited by applicant]
European Patent Office, Extended European Search Report , EP 16854529, mailed Mar. 22, 2019. [cited by applicant]
Patent Cooperation Treaty (PCT), International Search Report and the Written Opinion for Application PCT/US2016/056230 filed on Oct. 10, 2016, mailed Dec. 19, 2016, International Searching Authority, US. [cited by applicant]
L. W. Hruska and R. F. Savinell, “Investigation of Factors Affecting Performance of the Iron-Redox Battery,” Journal of the Electrochemical Society, vol. 423, No. 1976, pp. 18-25, 1981. [cited by applicant]
L. H. Thaller, “Redox Flow Cell Energy Storage Systems,” tech. rep., NASA, 1979. [cited by applicant]
S. Corcuera and M. Skyllas-Kazacos, “State-of-Charge Monitoring and Electrolyte Rebalancing Methods for the Vanadium Redox Flow Battery,” European Chemical Bulletin, vol. 1, No. 1, pp. 511-519, 2012. [cited by applicant]
J. S. Symanski, “Defining a Recombination Efficiency for Sealed, Lead-Acid Batteries,” Journal of The Electrochemical Society, vol. 135, p. 548, 1988. [cited by applicant]
M. Maja and N. Penazzi, “Sealed Gas Recombining Lead-Acid Batteries Part I: a Simple Theoretical Approach,” Journal of Power Sources, vol. 25, pp. 99-109, 1989. [cited by applicant]