IP Library Granted Patent US 9,276,266
Granted Patent B1
US 9,276,266 · App. 13/724,012 · Granted Mar 1, 2016

Perforated electrode plate

Inventors: Derek C. Tarrant (Kalispell, MT); Paul A. Trudeau, Jr. (Kalispell, MT)
Assignee: VIZN ENERGY SYSTEMS, INCORPORATED
H01M4/8626H01M8/184H01M4/742H01M4/762
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Quick Facts
Patent No.
US 9,276,266
App. No.
13/724,012
Granted
Mar 1, 2016
Kind
B1
Abstract

An energy storage includes a cell that defines a flow chamber for receiving electrolyte, and an electrode arrangement positioned in the cell. The electrode arrangement includes a plate having first and second sides. The plate further has multiple openings that vary in size to facilitate electrolyte flow on both sides of the plate.

Claims (34)

1. An energy storage system comprising:

a cell that defines a flow chamber for receiving electrolyte;

an electrode arrangement positioned in the cell and including a plate having first and second sides, and a barrier layer attached to the plate, the plate further having multiple openings that vary in size to facilitate electrolyte flow on both sides of the plate, wherein the plate and the barrier layer define a cavity, and wherein the plate is positioned between the flow chamber and the cavity; and

an electrolyte supply arrangement for supplying the electrolyte to the flow chamber of the cell and on the first side of the plate such that a portion of the electrolyte flows through one or more of the openings in the plate and into the cavity and then from the cavity back through the plate.

2. The energy storage system of claim 1 wherein the electrode arrangement further comprises a flow resistive feature associated with the plate, the flow resistive feature being configured to encourage electrolyte flow through the plate.

3. The energy storage system of claim 2 wherein the flow resistive feature comprises a flow screen positioned adjacent the plate.

4. The energy storage system of claim 2 wherein the flow resistive feature comprises metal foam.

5. The energy storage system of claim 2 wherein the flow resistive feature comprises expanded metal.

6. The energy storage system of claim 5 wherein the flow resistive feature is corrugated.

7. The energy storage system of claim 2 further comprising a separator disposed in the cell adjacent the flow resistive feature, wherein the separator is configured to contact the flow resistive feature during operation of the system to thereby inhibit electrolyte flow between the separator and the flow resistive feature, such that a portion of the electrolyte is urged to pass through the plate of the electrode arrangement.

8. The energy storage system of claim 1 wherein the system is configured such that, during operation, a flow resistive feature develops on the plate.

9. The energy storage system of claim 1 wherein the plate has a width and a length that extends perpendicular to the width and generally in a flow direction of the electrolyte, wherein the openings are generally arranged in rows that extend across the width of the plate, and, for each row, the openings generally have the same size.

10. The energy storage system of claim 9 wherein the openings of one row vary in size compared to openings of an adjacent row.

11. The energy storage system of claim 1 wherein the electrode arrangement further comprises an additional plate attached to the plate such that the barrier layer is disposed between the additional plate and the plate, the additional plate having multiple openings that vary in size to facilitate flow of an additional electrolyte on both sides of the additional plate, wherein the barrier layer is configured to inhibit commingling of the electrolyte and the additional electrolyte, and wherein the plate is configured to function as a cathode, and the additional plate is configured to function as an anode.

12. An energy storage system comprising:

a cell that defines a flow chamber for receiving electrolyte, the cell having an inlet for introducing the electrolyte into the flow chamber, an outlet for allowing the electrolyte to exit the flow chamber, and a central portion disposed between the inlet and the outlet; and

an electrode arrangement positioned in the cell and including a plate having first and second sides, and a flow screen positioned adjacent the plate, the plate further having multiple openings that are tailored to facilitate electrolyte flow from one side of the plate to the other side of the plate to thereby reduce electrolyte concentration gradient from the inlet to the outlet of the cell, wherein the openings proximate the inlet are smaller than the openings proximate the central portion of the cell, and wherein the flow screen is configured to encourage electrolyte flow through the plate.

13. The energy storage system of claim 12 wherein the electrode arrangement further comprises a barrier layer attached to the plate, wherein the plate and the barrier layer define a cavity for receiving a portion of the electrolyte, and wherein the plate is positioned between the flow chamber and the cavity.

14. The energy storage system of claim 13 wherein the barrier layer comprises an additional plate, wherein the plate is configured to function as one of an anode and a cathode, and the additional plate is configured to function as the other of the anode and the cathode.

15. The energy storage system of claim 13 further comprising an electrolyte supply arrangement for supplying the electrolyte to the flow chamber of the cell and on the first side of the plate such that a portion of the electrolyte flows through one or more of the openings in the plate and into the cavity and then from the cavity back through the plate.

16. The energy storage system of claim 12 further comprising an electrolyte supply arrangement for supplying the electrolyte to the flow chamber, wherein the system is configured such that, during operation, a flow resistive feature develops on the plate.

17. The energy storage system of claim 16 wherein the flow resistive feature comprises metal.

18. An electrode arrangement for use with an energy storage system having a cell that defines a flow chamber for receiving electrolyte, the electrode arrangement comprising:

a plate that is positionable in the cell, the plate having first and second sides and multiple openings that vary in size such that the plate is configured to facilitate electrolyte flow on both sides of the plate when the plate is positioned in the cell; and

a barrier layer attached to the plate and comprising an additional plate;

wherein the plate and the barrier layer define a cavity for receiving a portion of the electrolyte, the plate is positioned between the flow chamber and the cavity, the plate is configured to function as one of an anode and a cathode, and the additional plate is configured to function as the other of the anode and the cathode.

19. The electrode arrangement of claim 18 further comprising a flow resistive feature associated with the plate, the flow resistive feature being configured to encourage electrolyte flow through the plate.

20. The electrode arrangement of claim 19 wherein the flow resistive feature comprises a flow screen positioned adjacent the plate.

21. The electrode arrangement of claim 19 wherein the flow resistive feature comprises metal foam.

22. The electrode arrangement of claim 19 wherein the flow resistive feature comprises expanded metal.

23. The electrode arrangement of claim 22 wherein the flow resistive feature is corrugated.

24. An energy storage system comprising:

a cell that defines a flow chamber for receiving electrolyte, the cell having an inlet for introducing the electrolyte into the flow chamber, an outlet for allowing the electrolyte to exit the flow chamber, and a central portion disposed between the inlet and the outlet; and

an electrode arrangement positioned in the cell and including a plate having first and second sides, and a flow resistive feature associated with the plate and comprising metal foam, the plate further having multiple openings that are tailored to facilitate electrolyte flow from one side of the plate to the other side of the plate to thereby reduce electrolyte concentration gradient from the inlet to the outlet of the cell, wherein the openings proximate the inlet are smaller than the openings proximate the central portion of the cell, and wherein the flow resistive feature is configured to encourage electrolyte flow through the plate.

Assignments (6)
SECURITY INTEREST Recorded May 13, 2020
From: MNR CAPITAL, LLC
To: WEVIEW ENERGY STORAGE TECHNOLOGY (U.S.A.), LLC C/O FOX ROTHSCHILD LLP
Reel/Frame 052651/0216 →
ASSIGNMENT AND ASSUMPTION OF SECURITY INTEREST IN PATENTS Recorded Jun 15, 2018
From: GRAYHAWK GLOBAL GROWTH POOL
To: MNR CAPITAL, LLC
Reel/Frame 046369/0390 →
SECURITY INTEREST Recorded Apr 27, 2018
From: VIZN ENERGY SYSTEMS, INCORPORATED
To: GRAYHAWK GLOBAL GROWTH POOL
Reel/Frame 045658/0617 →
CHANGE OF NAME Recorded May 27, 2015
From: ZINC AIR INCORPORATED
To: VIZN ENERGY SYSTEMS, INCORPORATED
Reel/Frame 035722/0912 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2012
From: TARRANT, DEREK C.; TRUDEAU, PAUL A., JR.
To: ZINC AIR INCORPORATED
Reel/Frame 029519/0123 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2012
From: TARRANT, DEREK C.; TRUDEAU, PAUL A., JR.
To: ZINC AIR INCORPORATED
Reel/Frame 029520/0050 →