IP Library › Granted Patent US 9,680,188
Granted Patent B2
US 9,680,188 · App. 15/225,620 · Granted Jun 13, 2017

Portable and modular energy storage for multiple applications and electric vehicles

Inventor: Gerard O'Hora (Brighton, MA)
Assignee: Gerard O'Hora
H01M10/425B60L11/1816H01G11/10H01G11/18H01G11/82H01M2/1005H01M2/1077H01M2/206H01M10/0525H01M10/44H01M10/441H01M10/486H01M10/613H01M10/617H01M10/625H01M10/6556H01M10/6568H01M10/6569H02J7/0021H02J7/0052H02J7/0063H01M2010/4271H01M2010/4278H01M2220/20Y02T10/7011
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Quick Facts
Patent No.
US 9,680,188
App. No.
15/225,620
Granted
Jun 13, 2017
Kind
B2
Abstract

A removable modular battery pack may include a first housing having a volume of at least 0.125 cubic feet, and a plurality of battery cells providing at least 1 kW of power. The modular battery pack may also include a processing system that aggregates power from the plurality of battery cells, and a first interface that communicates a status of the modular battery pack to a second housing. The modular battery pack may further include a second interface that transmits the aggregated power to the second housing, and a thermal material enclosed in the first housing. The thermal material may be arranged in the housing adjacent to the plurality of battery cells to transfer heat away from the plurality of battery cells and to transfer the heat to the second housing.

Claims (32)

1. A removable modular battery pack comprising:

a first housing having a volume of at least 0.125 cubic feet;

a plurality of battery cells enclosed in the first housing, wherein the plurality of battery cells provides at least 1 kW of power;

a processing system enclosed in the housing that aggregates power from the plurality of battery cells;

a first interface that communicates a status of the modular battery pack to a second housing, wherein the second housing is configured to removably receive a plurality of modular battery packs;

a second interface that transmits the aggregated power from the plurality of battery cells from the processing system to the second housing, wherein the aggregated power from the plurality of battery cells is transmitted from the second housing to power a motor of an electric or hybrid electric vehicle; and

a first thermally conductive fluid enclosed in the first housing, wherein the first thermally conductive fluid is arranged in the housing adjacent to the plurality of battery cells to transfer heat away from the plurality of battery cells and to transfer the heat to the second housing, wherein the second housing comprises a second thermally conductive fluid that is circulated around the removable modular battery pack to absorb the heat transferred from the removable modular battery pack and transfer the heat away from the removable modular battery pack.

2. The modular battery pack of claim 1 , wherein:

the processing system comprises a temperature sensor; and

the processing system controls a flow of the first thermally conductive fluid into the first housing based on temperature readings received from the temperature sensor.

3. The modular battery pack of claim 1 , wherein the first thermally conductive fluid further comprises a nonconductive extinguishing agent.

4. The modular battery pack of claim 1 , wherein the plurality of battery cells are grouped in a plurality of battery sub-modules that are individually packaged within the first enclosure.

5. The modular battery pack of claim 4 , wherein each of the plurality of battery sub-modules comprises a processor that communicates with the processing system of the modular battery pack.

6. The modular battery pack of claim 4 , wherein the modular battery pack comprises between 5 and 9 battery sub-modules, and wherein each of the plurality of battery sub-modules comprises between 10 and 16 lithium-ion 18650 battery cells.

7. The modular battery pack of claim 4 , further comprising tubing that is routed adjacent to each of the plurality of battery sub-modules, wherein the first thermally conductive fluid flows through the tubing.

8. A method of providing power through a modular battery pack, the method comprising:

inserting the modular battery pack into a second housing, wherein the modular battery pack comprises a first housing having a volume of at least 0.125 cubic feet, and wherein the second housing is configured to removably receive a plurality of modular battery packs;

communicating, through a first interface of the modular battery pack, a status of the modular battery pack to the second housing;

aggregating, through a processing system of the modular battery pack, power from a plurality of battery cells enclosed in the first housing, wherein the plurality of battery cells provides at least 1 kW of power;

providing, through a second interface of the modular battery pack, the aggregated power from the plurality of battery cells from the processing system to the second housing, wherein the aggregated power from the plurality of battery cells is transmitted from the second housing to power a motor of an electric or hybrid electric vehicle; and

transferring heat away from the plurality of battery cells using a first thermally conductive fluid enclosed in the first housing, wherein the thermal material is arranged in the housing adjacent to the plurality of battery cells to transfer heat away from the plurality of battery cells and to transfer the heat to the second housing, wherein the second housing comprises a second thermally conductive fluid that is circulated around the removable modular battery pack to absorb the heat transferred from the removable modular battery pack and transfer the heat away from the removable modular battery pack.

9. The method of claim 8 , wherein the modular battery pack further comprises a solid thermal material, and wherein the first housing of the modular battery pack is hermetically sealed.

10. The method of claim 8 , wherein the plurality of battery cells comprises a plurality of supercapacitors.

11. The method of claim 8 , wherein the first interface comprises a wireless communication system that communicates wirelessly with the second housing.

12. The method of claim 8 , wherein the second interface comprises a transmitter coil that wirelessly transmits the aggregated power from the plurality of battery cells to the second housing.

13. The method of claim 8 , wherein the second interface comprises a two-pole wired port that mates with a corresponding two-pole wired port of the second housing.

14. The method of claim 8 , wherein the volume of the first housing is at least 0.50 cubic feet, having dimensions of approximately 6″×6″×12″.

15. The method of claim 8 , further comprising communicating, through the first interface of the modular battery pack, a charge history of the modular battery pack to the second housing.

16. The method of claim 8 , wherein the aggregated power from the plurality of battery cells provided to the second housing comprises a signal of approximately 48 VDC and 45 A.

17. The method of claim 8 , further comprising:

receiving, through the second interface of the modular battery pack, charging power from the second housing, and

charging the plurality of battery cells of the modular battery pack using the charging power from the second housing.

Continuity (3)
Provisional Application 62199835 · Jul 31, 2015
Provisional Application 62368880 · Jul 29, 2016
Related Publication 20170033337A1 · Feb 2, 2017