IP Library Granted Patent US 11,876,195
Granted Patent B1
US 11,876,195 · App. 17/669,147 · Granted Jan 16, 2024

Mitigating distribution of debris associated with a catastrophic failure of a battery cell

Inventors: James Bruce Carlson (Durham, NC); Nathan Herbert Hillery (Durham, NC)
Assignee: NDSL, Inc.
H01M10/54H01M10/0525H02J9/061H02J9/062
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Quick Facts
Patent No.
US 11,876,195
App. No.
17/669,147
Granted
Jan 16, 2024
Kind
B1
Abstract

Disclosed herein are methods, systems, and devices for mitigating distribution of metallic debris associated with a catastrophic failure of a battery pack. According to one embodiment, a battery pack includes a first lithium-ion battery cell; a first magnetic surface; and an enclosure. The first magnetic surface may be configured (e.g. positioned) to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell. The catastrophic failure may be a result of thermal runaway of the first lithium-ion battery cell.

Claims (128)

1. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure having a vent, wherein:

the first magnetic surface is positioned in proximity to the vent; and

the first magnetic surface is magnetized from a proximity of a permanent magnet.

2. The battery pack of claim 1 , wherein the first magnetic surface is configured to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell.

3. The battery pack of claim 2 , wherein the catastrophic failure is a result of thermal runaway of the first lithium-ion battery cell.

4. The battery pack of claim 1 , wherein the permanent magnet comprises at least one rare earth element.

5. The battery pack of claim 1 , wherein the permanent magnet is at least one of a Neodymium (NdFeB) magnet, a samarium cobalt (SmCo) magnet, and an alnico magnet.

6. The battery pack of claim 1 further comprising a controller electrically coupled with battery monitoring circuitry, and the controller is configured to detect a catastrophic failure of the first lithium-ion battery cell via the battery monitoring circuitry.

7. The battery pack of claim 6 further comprising a communication interface electrically coupled with the controller and the controller is further configured to transmit a failure message upon detecting the catastrophic failure of the first lithium-ion battery cell.

8. The battery pack of claim 6 further comprising a fan electrically coupled with the controller, and the controller is further configured to adjust a speed of the fan upon detecting the catastrophic failure of the first lithium-ion battery cell.

9. The battery pack of claim 6 further comprising an indicator electrically coupled with the controller, and the controller is further configured to activate the indicator upon detecting the catastrophic failure of the first lithium-ion battery cell.

10. The battery pack of claim 9 , wherein the indicator is at least one of a light emitting diode and a liquid crystal display.

11. The battery pack of claim 6 , wherein the controller is further configured to record a timestamp in non-volatile memory upon detecting the catastrophic failure of the first lithium-ion battery cell.

12. The battery pack of claim 1 , wherein the battery pack is configured to be a field replaceable battery pack.

13. The battery pack of claim 12 , wherein the battery pack is further configured to be installed in an uninterruptible power supply (UPS) system.

14. The battery pack of claim 13 , wherein:

the UPS system comprises:

an alternating current (AC) to direct current (DC) rectifier configured to be electrically coupled with an AC source;

a DC to AC inverter configured to be electrically coupled with an AC load;

a DC bus electrically coupled between the AC to DC rectifier and the DC to AC inverter; and

a battery cabinet electrically coupled with the DC bus;

and

the battery pack is further configured to be installed in the battery cabinet.

15. The battery pack of claim 1 further comprising a plurality of lithium-ion battery cells and the plurality of lithium-ion battery cells includes the first lithium-ion battery cell.

16. The battery pack of claim 15 , wherein the plurality of lithium-ion battery cells is configured in a series arrangement.

17. The battery pack of claim 15 , wherein the plurality of lithium-ion battery cells is configured in a parallel arrangement.

18. The battery pack of claim 1 , wherein the first magnetic surface is field replaceable.

19. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure, wherein the first magnetic surface comprises a plurality of fins.

20. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface;

an enclosure;

a controller electrically coupled with battery monitoring circuitry, wherein the controller is configured to detect a catastrophic failure of the first lithium-ion battery cell via the battery monitoring circuitry; and

an electronically controlled vent electrically coupled with the controller, wherein the controller is further configured to close the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

21. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface;

an enclosure;

a controller electrically coupled with battery monitoring circuitry, wherein the controller is configured to detect a catastrophic failure of the first lithium-ion battery cell via the battery monitoring circuitry; and

an electronically controlled vent electrically coupled with the controller, wherein the controller is further configured to adjust direction of air flow of the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

22. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure having a vent, wherein:

the enclosure comprises a first wall;

the first magnetic surface is positioned in proximity to the vent; and

the first wall comprises the first magnetic surface.

23. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure, wherein:

the enclosure comprises a first wall;

the first wall is a temporary magnet; and

the first wall comprises the first magnetic surface.

24. The battery pack of claim 23 , wherein the first wall is magnetized from a proximity of a permanent magnet.

25. The battery pack of claim 23 , wherein the first wall is magnetized from a proximity of an electromagnet.

26. The battery pack of claim 25 further comprising a controller electrically coupled with battery monitoring circuitry and the electromagnet, and the controller is configured to energize the electromagnet upon detecting an imminent catastrophic failure of the first lithium-ion battery cell via the battery monitoring circuitry.

27. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface;

an enclosure having a vent; and

a permanent magnet, wherein:

the first magnetic surface is positioned in proximity to the vent; and

the first magnetic surface is configured to be magnetized from a proximity of the permanent magnet.

28. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface;

an enclosure having a vent; and

an electromagnet, wherein:

the first magnetic surface is positioned in proximity to the vent; and

the first magnetic surface is configured to be magnetized from a proximity of the electromagnet.

29. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure, wherein the first magnetic surface includes a plurality of vents allowing air to pass through.

30. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure, wherein the first magnetic surface is implemented on a screen mesh.

31. The battery pack of claim 30 , wherein the screen mesh is field replaceable.

32. The battery pack of claim 30 , wherein the screen mesh is configured to vent air from the enclosure.

33. A battery pack comprising:

a first lithium-ion battery cell;

a first magnetic surface; and

an enclosure, wherein the first magnetic surface is a porous magnetic surface.

34. The battery pack of claim 33 , wherein the porous magnetic surface comprises steel wool.

35. A method of manufacturing a battery pack, the method comprising:

mechanically installing a first lithium-ion battery cell in an enclosure having a vent; and

mechanically installing a permanent magnet in the enclosure, wherein:

the battery pack includes a first magnetic surface;

the first magnetic surface is positioned in proximity to the vent; and

the first magnetic surface is magnetized from a proximity of the permanent magnet.

36. The method of claim 35 , wherein the permanent magnet is configured to provide a magnetic force to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell.

37. A method implemented by a controller within a battery pack having a first lithium-ion battery cell, the method comprising:

detecting an imminent catastrophic failure of the first lithium-ion battery cell, wherein the battery pack further includes a first magnetic surface configured to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell; and

storing a timestamp in non-volatile memory associated with the catastrophic failure, wherein:

the battery pack further includes an electronically controlled vent electrically coupled with the controller; and

the method further includes closing the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

38. The method of claim 37 , wherein:

the battery pack further includes a communication interface electrically coupled with the controller; and

the method further includes transmitting a failure message upon detecting the catastrophic failure of the first lithium-ion battery cell.

39. The method of claim 37 , wherein:

the battery pack further includes a fan electrically coupled with the controller; and

the method further includes adjusting a speed of the fan upon detecting the catastrophic failure of the first lithium-ion battery cell.

40. The method of claim 37 , wherein

the battery pack further includes an indicator electrically coupled with the controller; and

the method further includes activating the indicator upon detecting the catastrophic failure of the first lithium-ion battery cell.

41. A method implemented by a controller within a battery pack having a first lithium-ion battery cell, the method comprising:

detecting an imminent catastrophic failure of the first lithium-ion battery cell, wherein the battery pack further includes a first magnetic surface configured to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell; and

storing a timestamp in non-volatile memory associated with the catastrophic failure, wherein:

the battery pack further includes an electronically controlled vent electrically coupled with the controller; and

the method further includes adjusting direction of air flow of the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

42. A non-transitory computer-readable storage medium, the non-transitory computer-readable storage medium storing instructions to be implemented on a controller within a battery pack having a first lithium-ion battery cell, the instructions when executed by the controller provide a method for:

detecting an imminent catastrophic failure of the first lithium-ion battery cell, wherein the battery pack further includes a first magnetic surface configured to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell; and

storing a timestamp in non-volatile memory associated with the catastrophic failure, wherein:

the battery pack further includes an electronically controlled vent electrically coupled with the controller; and

the method further includes closing the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

43. A non-transitory computer-readable storage medium, the non-transitory computer-readable storage medium storing instructions to be implemented on a controller within a battery pack having a first lithium-ion battery cell, the instructions when executed by the controller provide a method for:

detecting an imminent catastrophic failure of the first lithium-ion battery cell, wherein the battery pack further includes a first magnetic surface configured to attract metallic debris associated with a catastrophic failure of the first lithium-ion battery cell; and

storing a timestamp in non-volatile memory associated with the catastrophic failure, wherein:

the battery pack further includes an electronically controlled vent electrically coupled with the controller; and

the method further includes adjusting direction of air flow of the electronically controlled vent upon detecting the catastrophic failure of the first lithium-ion battery cell.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 28, 2026
From: NDSL LLC
To: PARAMETER LLC
Reel/Frame 074784/0596 →
SECURITY INTEREST Recorded Apr 4, 2025
From: NDSL LLC
To: TREE LINE CAPITAL PARTNERS, LLC, AS COLLATERAL AGENT
Reel/Frame 070739/0174 →
ENTITY CONVERSION Recorded Mar 3, 2025
From: NDSL, INC.
To: NDSL LLC
Reel/Frame 070389/0705 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2022
From: CARLSON, JAMES BRUCE; HILLERY, NATHAN HERBERT
To: NDSL, INC.
Reel/Frame 059296/0613 →