Light weight thermal runaway and explosion resistant aerospace battery
US-2023059778-A1 · Feb 23, 2023 · US
US12027675B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12027675-B2 |
| Application number | US-202117534079-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 23, 2021 |
| Priority date | Nov 23, 2021 |
| Publication date | Jul 2, 2024 |
| Grant date | Jul 2, 2024 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
An electric vehicle battery pack configured to rapidly discharge one or more individual battery cells within a multi-cell battery arrangement to mitigate a propagation of a multi-cell thermal runaway event, the vehicle battery pack including a plurality of battery cells and a battery management system including sensing circuitry configured to sense one or more conditions of the plurality of battery cells, a processor configured to process data sensed by the sensing circuitry to determine whether any of the plurality of battery cells is experiencing the onset of a thermal runaway event, and a control engine configured to isolate and rapidly discharge a potential energy from a battery cell experiencing the onset of a thermal runaway event, thereby mitigating a potential for a propagation of a thermal runaway event experienced by a single cell into a multi-cell thermal runaway event.
Opening claim text (preview).
What is claimed is: 1. An electric vehicle battery pack configured to rapidly discharge one or more individual battery cells within a multi-cell battery arrangement to mitigate a propagation of a multi-cell thermal runaway event, the electric vehicle battery pack comprising: a plurality of battery cells; and a battery management system comprising: sensing circuitry configured to sense one or more conditions of the plurality of battery cells, a processor configured to process data sensed by the sensing circuitry to determine whether any of the plurality of battery cells is experiencing an onset of a thermal runaway event, and a control engine configured to isolate and rapidly discharge a potential energy from a battery cell experiencing the onset of the thermal runaway event, thereby mitigating a potential for the propagation of the thermal runaway event experienced by a single cell into a multi-cell thermal runaway event. 2. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry is configured to sense at least one of a temperature, pressure, voltage, amperage, presence of smoke or liquid. 3. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry comprises a voltage monitoring module configured to receive voltage information associated with each of the plurality of battery cells as an aid in determining if any individual battery cell is experiencing the onset of the thermal runaway event. 4. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry comprises a balancing module configured to evaluate a relative voltage level between individual battery cells of the plurality of battery cells, and to affect a transfer of electrical potential from one individual battery cell to one or more other individual battery cells within the plurality of battery cells. 5. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry comprises a temperature monitoring module configured to receive information corresponding to a temperature associated with an individual cell within the plurality of battery cells. 6. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry comprises a pressure monitoring module configured to receive information corresponding to a pressure associated with an individual cell within the plurality of battery cells. 7. The electric vehicle battery pack of claim 1 , wherein the sensing circuitry comprises a thermocouple or pressure sensor. 8. The electric vehicle battery pack of claim 1 , wherein the processor is configured to determine if any individual battery cell within the plurality of battery cells is experiencing at least one of a temperature outside of a normal operating range, sudden rise in pressure, or abnormal voltage indicative of the onset of the thermal runaway event. 9. The electric vehicle battery pack of claim 1 , wherein the processor uses a combination of a sensed temperature, pressure and voltage as an aid in determining whether an individual battery cell within the plurality of battery cells is experiencing the onset of a thermal runaway. 10. The electric vehicle battery pack of claim 1 , wherein the control engine is configured to discharge the potential energy from the battery cell experiencing the onset of the thermal runaway event into at least one of other battery cells within the plurality of battery cells or an electrically resistive member. 11. The electric vehicle battery pack of claim 1 , wherein one or more high temperature barricades are positioned between adjacent cells of the plurality of battery cells, the high temperature barricades configured to inhibit heat propagation between adjacent cells. 12. A battery management system configured to rapidly discharge one or more individual battery cells within a multi-cell battery arrangement to mitigate propagation of a multi celled thermal runaway event, the battery management system comprising: sensing circuitry configured to sense one or more conditions in each of a plurality of battery cells within the multi-cell battery arrangement; a processor configured to process data sensed by the sensing circuitry to determine whether any of the plurality of battery cells is experiencing an onset of a thermal runaway event; and a control engine configured to isolate and rapidly discharge a potential energy from a battery cell experiencing the onset of the thermal runaway event, thereby mitigating a potential for a propagation of the thermal runaway event experienced by a single cell into a multi-cell thermal runaway event. 13. The battery management system of claim 12 , wherein the sensing circuitry comprises a voltage monitoring module configured to receive voltage information associated with each of the plurality of battery cells as an aid in determining if any individual battery cell is experiencing the onset of the thermal runaway event. 14. The battery management system of claim 12 , wherein the sensing circuitry comprises a balancing module configured to evaluate a relative voltage level between individual battery cells of the plurality of battery cells, and to affect a transfer of electrical potential from one individual battery cell to one or more other individual battery cells within the plurality of battery cells. 15. The battery management system of claim 12 , wherein the sensing circuitry comprises a temperature monitoring module configured to receive information corresponding to a temperature associated with an individual cell within the plurality of battery cells. 16. The battery management system of claim 12 , wherein the sensing circuitry comprises a pressure monitoring module configured to receive information corresponding to a pressure associated with an individual cell within the plurality of battery cells. 17. The battery management system of claim 12 , wherein the processor is configured to determine if any individual battery cell within the plurality of battery cells is experiencing at least one of a temperature outside of a normal operating range, sudden rise in pressure, or abnormal voltage indicative of the onset of the thermal runaway event. 18. The battery management system of claim 12 , wherein the control engine is configured to discharge the potential energy from the battery cell experiencing the onset of the thermal runaway event into at least one of other battery cells within the plurality of battery cells or an electrically resistive member. 19. The battery management system of claim 12 , wherein one or more high temperature barricades are positioned between adjacent cells of the plurality of battery cells, the high temperature barricades configured to inhibit heat propagation between adjacent cells. 20. An electric vehicle having a battery pack configured to rapidly discharge one or more individual battery cells within a multi-cell battery arrangement to mitigate a propagation of a multi-cell thermal runaway event, the electric vehicle comprising: a battery tray comprising a plurality of battery cells in a multi-cell arrangement, with one or more high temperature barricades positioned between adjacent cells of the plurality of battery cells configured to inhibit heat propagation between adjacent cells; and a battery management system comprising: sensing circuitry configured to sense one or more conditions of the plurality of battery cells, wherein the sensing circuitry is configured to sense at least one of a temperature, pressure, voltage associated with an individual cell within the plurality of battery cells, t
Energy storage using batteries · CPC title
Batteries in motive systems, e.g. vehicle, ship, plane · CPC title
Pressure-sensitive devices · CPC title
Temperature sensitive devices · CPC title
Battery management systems including electronic circuits, e.g. control of current or voltage to keep battery in healthy state, cell balancing · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.