IP Library Granted Patent US 10,396,416
Granted Patent B2
US 10,396,416 · App. 15/312,345 · Granted Aug 27, 2019

Passive insulation materials

Inventors: Ricky Edward Bowersock (Augusta, GA); Gary Eugene Gayman (Augusta, GA); Jason Peter Street (Augusta, GA); Tord Per Onnerud (Wilton, CT); Jay Jie Shi (Acton, MA)
Assignee: Thermal Ceramics, Inc.
H01M10/658A62C3/16A62C99/0018C09K5/18H01G11/06H01G11/10H01G11/66H01G11/74H01G11/78H01M2/02H01M2/0267H01M2/1016H01M2/1094H01M2/127H01M2/1258H01M10/0525H01M10/0587H01M10/617H01M10/653H01M2200/20Y02T10/7011
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Quick Facts
Patent No.
US 10,396,416
App. No.
15/312,345
Granted
Aug 27, 2019
Kind
B2
Abstract

A material consisting of an insulating, ceramic-based matrix into which an endothermic gas-generating material is incorporated for the intended purpose of protecting electrical energy storage devices from cascading thermal runaway.

Claims (59)

1. An energy storage device housing for an energy storage device, comprising

(a) a plurality of electrical cells;

(b) a material for limiting thermal runaway in the device, the cells having an upper normal operating temperature and a higher threshold temperature above which the cells are liable to thermal runaway, the material comprising a ceramic matrix that incorporates an inorganic gas-generating endothermic material, and in which:

the ceramic matrix is capable of providing thermal insulation properties at and above the upper normal operating temperature;

the gas-generating endothermic material is selected to undergo one or more endothermic reactions between the upper normal operating temperature and the higher threshold temperature;

one or more of said reactions results in the evolution of gases;

the ceramic matrix has sufficient porosity to permit said gases to vent from the material and thereby remove heat from the material; and

(c) a venting system forcibly openable by the generation of the gases, wherein the venting system forms part of the housing, with evolution of gases from an incident cell being releasable through the vent so as to prevent neighboring cells from reaching a critical ignition temperature,

wherein the material for limiting thermal runaway in the device comprises a formulation of:

Ceramic Oxide: 0-60 wt %

Opacifier: 0-30 wt %

Endothermic material: 10-90 wt %

Dry Binder: 0-10 wt %

Liquid Binder: 0-60 wt %

Fibre: 0-60 wt %

with the above formulation amounting to greater than 60%, greater than 70%, greater than 80%, or greater than 90% of the composition.

2. The device as claimed in claim 1 , in which the material has a ratio of ceramic matrix to endothermic material in the range 1:19 to 9:1 by weight.

3. The device as claimed in claim 2 , in which the materials has a ratio of ceramic matrix to endothermic material in the range 1:9 to 6:4 by weight.

4. The device as claimed in claim 1 , in which the ceramic matrix comprises inorganic fibers, inorganic particulate materials and binders.

5. The device as claimed in claim 4 , in which the inorganic particulate materials are selected from the group of fumed ceramics, opacifiers, and mixtures thereof.

6. The device as claimed in claim 1 , in which the gas-generating endothermic material comprises a mixture of two or more endothermic materials.

7. The device claimed in claim 6 , in which two or more of the two or more endothermic materials are gas-generating endothermic materials.

8. The device according to claim 1 , wherein the release of gases through the vent enables the neighboring cells to be maintained below a maximum temperature of 200° C.

9. The device according to claim 1 , wherein the neighboring cells have a 60% or more reduction in maximum temperature compared to the incident cell.

10. The device according to claim 1 , wherein the formulation comprises refractory inorganic fibres.

11. An energy storage device comprising:

(A) a plurality of electrical cells

(B) a material for limiting thermal runaway in the device, said cells having an upper normal operating temperature and a higher threshold temperature above which the cells are liable to thermal runaway, the material comprising a ceramic matrix that incorporates an inorganic gas-generating endothermic material, and in which:

the ceramic matrix is capable of providing thermal insulation properties at and above the upper normal operating temperature;

the gas-generating endothermic material is selected to undergo one or more endothermic reactions between the upper normal operating temperature and an higher temperature;

one or more of said reactions results in the evolution of gases;

the ceramic matrix has sufficient porosity to permit said gases to vent from the material and thereby remove heat from the material;

wherein the material wherein the material for limiting thermal runaway in the device has two or more regions having different concentrations of endothermic gas-generating material, and wherein the material comprises a formulation of:

Ceramic Oxide: 0-60 wt %

Opacifier: 0-30 wt %

Endothermic material : 10-90 wt %

Dry Binder: 0-10 wt %

Liquid Binder: 0-60 wt %

Fibre: 0-60 wt %

with the above named components amounting to greater than 60%, greater than 70%, greater than 80%, or greater than 90% of the composition.

12. The device as claimed in claim 11 , having a gradient of endothermic gas-generating material.

13. The device as claimed in claim 11 , comprising a surface region having a higher concentration of endothermic gas-generating material than a region within a body of the material.

14. The device as claimed in claim 11 , comprising a surface region having a higher concentration of endothermic gas-generating material than a different surface region of the material.

15. The device of claim 11 , wherein the material comprises 76% or more by weight endothermic gas-generating material.

16. An energy storage device housing for an energy storage device comprising:

(A) a plurality of electrical cells

(B) a material for limiting thermal runaway in the device, said cells having an upper normal operating temperature and a higher threshold temperature above which the cells are liable to thermal runaway, the material comprising a ceramic matrix that incorporates an inorganic gas-generating endothermic material, and in which:

the ceramic matrix is capable of providing thermal insulation properties at and above the upper normal operating temperature;

the gas-generating endothermic material is selected to undergo one or more endothermic reactions between the upper normal operating temperature and an higher temperature;

one or more of said reactions results in the evolution of gases;

the ceramic matrix has sufficient porosity to permit said gases to vent from the material and thereby remove heat from the material;

wherein the material wherein the material for limiting thermal runaway in the device has two or more regions having different concentrations of endothermic gas-generating material, and wherein the material comprises a formulation of:

Ceramic Oxide: 0-60 wt %

Opacifier: 0-30 wt %

Endothermic material: >-76-90 wt %

Dry Binder: 0-10 wt %

Liquid Binder: 0-60 wt %

Refractory inorganic fibre: >0-60 wt %

with the above named components amounting to greater than 60%, greater than 70%, greater than 80%, or greater than 90% of the composition.

Assignments (4)
CONFIRMATORY LICENSE Recorded Mar 8, 2023
From: THERMAL CERAMICS, INC.
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 062916/0627 →
CONFIRMATORY LICENSE Recorded Jul 8, 2020
From: THERMAL CERAMICS, INC.
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 053146/0476 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2019
From: ONNERUD, TORD PER; SHI, JAY JIE; BOWERSOCK, RICKY EDWARD; GAYMAN, GARY EUGENE; STREET, JASON PETER
To: CADENZA INNOVATION, LLC; THERMAL CERAMICS, INC.
Reel/Frame 049163/0789 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2019
From: CADENZA INNOVATION, LLC
To: THERMAL CERAMICS, INC.
Reel/Frame 049165/0453 →
Continuity (4)
Provisional Application 62107630 · Jan 26, 2015
Provisional Application 62107845 · Jan 26, 2015
Provisional Application 61997082 · May 21, 2014
Related Publication 20170098806A1 · Apr 6, 2017
Cited By (1)
US 12,567,648