IP Library Patent Application 18657207
Patent Application
App. No. 18/657,207

BATTERY MANAGEMENT SYSTEM AND METHOD FOR PERFORMING PASSIVE BALANCING OF BATTERY CELLS IN A SERIES-CONNECTED BATTERY PACK

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Quick Facts
Patent No.
US None
App. No.
18/657,207
Abstract

Example battery management systems, methods, and computer program products for managing the passive charge balancing of a battery pack are provided. A first example battery management system includes a battery pack, a battery management integrated circuit, and a battery management controller. The battery management integrated circuit includes a discharge circuit for each battery cell, having a shared balancing resistor connected to an adjacent battery cell. The battery management controller electrically coupled to the battery management integrated circuit, and configured to identify a least charged battery cell; iteratively select a plurality of highest charged battery cells, wherein no two highest charged battery cells are adjacent, and wherein each highest charged battery cell of the plurality of highest charged battery cells is greater than the least charged battery cell plus an unbalance threshold; and enable the discharge enable switch associated with each highest charged battery cell.

Claims (83)

1 . A battery management system comprising:

a battery pack comprising a plurality of battery cells electrically connected in series, each battery cell of the plurality of battery cells exhibiting a battery cell charge;

a battery management integrated circuit comprising:

a discharge circuit for each battery cell, the discharge circuit comprising:

a discharge enable switch and a shared balancing resistor,

wherein the shared balancing resistor is electrically connected to an adjacent battery cell; and

a battery management controller electrically coupled to the battery management integrated circuit, comprising one or more processors and one or more storage devices storing instructions that are operable when executed by the one or more processors to:

identify a least charged battery cell of the plurality of battery cells, wherein the least charged battery cell exhibits the lowest battery cell charge of the plurality of battery cells;

iteratively select a plurality of highest charged battery cells,

wherein no two highest charged battery cells of the plurality of highest charged battery cells are adjacent, and

wherein each highest charged battery cell of the plurality of highest charged battery cells is greater than the least charged battery cell plus an unbalance threshold; and

enable the discharge enable switch associated with each highest charged battery cell in the plurality of highest charged battery cells.

2 . The battery management system of claim 1 , wherein the discharge enable switch associated with each highest charged battery cell in the plurality of highest charged battery cells is enabled until at least one of the plurality of highest charged battery cells is balanced with the least charged battery cell.

3 . The battery management system of claim 2 , wherein a battery cell of the plurality of battery cells is balanced in an instance in which a battery cell value of the battery cell is within the unbalance threshold of the least charged battery cell.

4 . The battery management system of claim 1 , wherein the discharge enable switch is a field-effect transistor, and wherein the battery management controller modifies a gate voltage at a gate of the field-effect transistor to discharge an associated battery cell.

5 . The battery management system of claim 1 , wherein the battery management controller is configured to monitor one or more electrical properties of each battery cell of the plurality of battery cells.

6 . The battery management system of claim 5 , wherein the one or more electrical properties includes at least one of a voltage of a battery cell, a charge of the battery cell, an amperage of the battery cell, an ampere hours remaining of the battery cell, and energy remaining in the battery cell.

7 . The battery management system of claim 5 , wherein the one or more electrical properties are determined by a pair of electrical connecting pins on the battery management integrated circuit.

8 . The battery management system of claim 7 , wherein a first electrical connecting pin of the pair of electrical connecting pins is electrically connected to an anode of the battery cell and a second electrical connecting pin of the pair of electrical connecting pins is electrically connected to a cathode of the battery cell.

9 . The battery management system of claim 1 , wherein the discharge circuit for each battery cell comprises a first balancing resistor, the discharge enable switch, and a second balancing resistor electrically connected in series with the battery cell, wherein the shared balancing resistor comprises at least one of the first balancing resistor and the second balancing resistor.

10 . The battery management system of claim 1 , wherein the battery management controller is further configured to:

generate a balance activation map comprising a balance activation entry for each battery cell in the plurality of battery cells,

wherein the balance activation entry comprises:

a battery cell identifier, identifying an associated battery cell;

a battery cell value indicating the battery cell charge of the associated battery cell; and

an enable indicator, indicating the associated battery cell will be discharged.

11 . A method for passive charge balancing a battery pack comprising a plurality of series-connected battery cells each exhibiting a battery cell charge, the method comprising:

identifying, by a battery management controller electrically coupled to a battery management integrated circuit, a least charged battery cell of the plurality of battery cells, wherein the least charged battery cell exhibits a lowest battery cell charge of the plurality of battery cells;

iteratively selecting a plurality of highest charged battery cells,

wherein no two highest charged battery cells of the plurality of highest charged battery cells are adjacent, and

wherein each highest charged battery cell of the plurality of highest charged battery cells is greater than the least charged battery cell plus an unbalance threshold; and

enabling a discharge enable switch associated with each highest charged battery cell in the plurality of highest charged battery cells,

wherein each battery cell is electrically coupled to a discharge circuit, the discharge circuit comprising:

a discharge enable switch and a shared balancing resistor,

wherein the shared balancing resistor is electrically connected to an adjacent battery cell.

12 . The method of claim 11 , further comprising:

enabling the discharge enable switch associated with each highest charged battery cell in the plurality of highest charged battery cells until each highest charged battery cell is balanced with the least charged battery cell.

13 . The method of claim 12 , wherein a battery cell is balanced in an instance in which the battery cell charge of the battery cell is within the unbalance threshold of the least charged battery cell.

14 . The method of claim 11 , wherein the discharge enable switch is a field-effect transistor, and enabling the discharge enable switch further comprises:

modifying a gate voltage at a gate of the field-effect transistor to discharge an associated battery cell.

15 . The method of claim 11 , further comprising:

monitoring one or more electrical properties of each battery cell of the plurality of battery cells, by a pair of electrical connecting pins on the battery management integrated circuit,

wherein a first electrical connecting pin of the pair of electrical connecting pins is electrically connected to an anode of a battery cell and a second electrical connecting pin of the pair of electrical connecting pins is electrically connected to a cathode of the battery cell.

16 . The method of claim 15 , wherein the one or more electrical properties includes at least one of a voltage of a battery cell, the battery cell charge, an amperage of the battery cell, an ampere hours remaining of the battery cell, and energy remaining in the battery cell.

17 . The method of claim 11 , wherein the discharge circuit for each battery cell comprises a first balancing resistor, the discharge enable switch, and a second balancing resistor electrically connected in series with the battery cell, wherein the shared balancing resistor comprises at least one of the first balancing resistor and the second balancing resistor.

18 . The method of claim 11 , further comprising:

generating a balance activation map comprising a balance activation entry for each battery cell in the plurality of battery cells,

wherein the balance activation entry comprises:

a battery cell identifier, identifying an associated battery cell;

a battery cell value indicating the battery cell charge of the associated battery cell; and

an enable indicator, indicating the associated battery cell will be discharged.

19 . A computer program product for passive charge balancing a battery pack comprising a plurality of battery cells electrically connected in series, the computer program product comprising at least one non-transitory computer-readable storage medium having computer-readable program code portions stored therein, the computer-readable program code portions comprising an executable portion configured to:

identify, by a battery management controller electrically coupled to a battery management integrated circuit, a least charged battery cell of the plurality of battery cells, wherein the least charged battery cell exhibits a lowest battery cell charge of the plurality of battery cells;

iteratively select a plurality of highest charged battery cells,

wherein no two highest charged battery cells of the plurality of highest charged battery cells are adjacent, and

wherein each highest charged battery cell of the plurality of highest charged battery cells is greater than the least charged battery cell plus an unbalance threshold; and

enable a discharge enable switch associated with each highest charged battery cell in the plurality of highest charged battery cells,

wherein each battery cell is electrically coupled to a discharge circuit, and each discharge circuit comprises:

the discharge enable switch and a shared balancing resistor,

wherein the shared balancing resistor is electrically connected to an adjacent battery cell.

20 . A battery management system comprising:

a battery pack comprising a plurality of battery cells electrically connected in series, each battery cell exhibiting a battery cell charge;

a battery management integrated circuit comprising:

a discharge circuit for each battery cell, each discharge circuit comprising:

a discharge enable switch and a shared balancing resistor,

wherein the shared balancing resistor is electrically connected to an adjacent battery cell; and

a battery management controller electrically coupled to the battery management integrated circuit, comprising one or more processors and one or more storage devices storing instructions that are operable when executed by the one or more processors to:

receive an optimization parameter;

determine an optimization value for each battery cell in the plurality of battery cells based on the optimization parameter;

identify a least charged battery cell of the plurality of battery cells, wherein the least charged battery cell exhibits the lowest battery cell charge of the plurality of battery cells;

select a plurality of unbalanced battery cells from the plurality of battery cells based on the optimization parameter and the optimization value for each of the plurality of battery cells,

wherein the plurality of unbalanced battery cells does not comprise the least charged battery cell,

wherein no two unbalanced battery cells of the plurality of unbalanced battery cells are adjacent, and

wherein the battery cell charge of each unbalanced battery cell of the plurality of unbalanced battery cells is greater that the least charged battery cell plus an unbalance threshold; and

enable the discharge enable switch associated with each unbalanced battery cell in the plurality of unbalanced battery cells.

21 . The battery management system of claim 20 , wherein the optimization value represents a quantification of the unbalanced battery cell in relation to the optimization parameter.

22 . The battery management system of claim 21 , wherein the battery management controller is further configured to:

generate a valid combination set, wherein the valid combination set comprises all possible combinations of unbalanced battery cells selected for discharge.

23 . The battery management system of claim 22 , wherein the battery management controller is further configured to:

select a combination from the valid combination set based on the optimization values associated with each unbalanced battery cell in the combination.

24 . The battery management system of claim 20 , wherein the optimization parameter indicates selection of the plurality of unbalanced battery cells from the plurality of battery cells is optimized to reduce time.

25 . The battery management system of claim 24 , wherein the plurality of unbalanced battery cells are selected to minimize a number of balancing iterations.

26 . The battery management system of claim 24 , wherein the plurality of unbalanced battery cells are selected to maximize a number of unbalanced battery cells comprising the plurality of unbalanced battery cells.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 17, 2024
From: STMICROELECTRONICS S.R.L.
To: STMICROELECTRONICS INTERNATIONAL N.V.
Reel/Frame 069180/0793 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 7, 2024
From: LA ROSA, FABRIZIO; RAUCEA, ANTONIO
To: STMICROELECTRONICS S.R.L.
Reel/Frame 067335/0650 →