IP Library Granted Patent US 12,401,206
Granted Patent B2
US 12,401,206 · App. 17/725,650 · Granted Aug 26, 2025

Battery balancing system

Inventors: Blake Sessions (Boston, MA); Boris Gladstein (Swampscott, MA)
Assignee: Liftwave, Inc.
H02J7/0019B60L58/22H02J7/0048H02J7/007182
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Quick Facts
Patent No.
US 12,401,206
App. No.
17/725,650
Granted
Aug 26, 2025
Kind
B2
Abstract

This disclosure describes a battery management system that can balance a string of battery cells rapidly, at high power, and without the use of a large auxiliary battery or excessive switches/transistors. A single switched tap is provided at each intermediate node of the battery string, allowing charging and discharging of subsets of the battery string (e.g., cell 1, cells 1 and 2, cells 1-3, etc.). A common charge/discharge (CCD) node can be connected to any one of the intermediate nodes, resulting in a parallel connection with the battery string for each cell at or below the connected intermediate node in the string. A sink is provided which can be used to discharge groups of cells using the connected intermediate node. Additionally, a source can be provided, such as a buck-boost chopper acting as a current supply, to charge the group of cells using the connected intermediate node.

Claims (45)

1. A method for balancing a string of batteries, the method comprising:

connecting a common charge/discharge (CCD) node in parallel with a first cell group comprising one or more cells of a plurality of cells in the string of batteries;

determining a first state of charge associated with the first cell group;

disconnecting the CCD node from the first cell group and connecting the CCD node in parallel with a second cell group comprising the first cell group and one or more additional cells of the plurality of cells;

determining a second state of charge associated with the one or more additional cells of the plurality of cells;

in response to determining that the second state of charge is lower than the first state of charge:

disconnecting the CCD node from the second cell group and connecting the CCD node in parallel with the first cell group; and

connecting a power sink to the CCD node and discharging the first cell group into the power sink until the first state of charge matches the second state of charge;

in response to determining that the second state of charge is higher than the first state of charge:

disconnecting the CCD node from the second cell group and connecting the CCD node in parallel with the first cell group; and

connecting a power source to the CCD node and charging the first cell group with the power source until the first state of charge matches the second state of charge;

disconnecting the CCD node from the first cell group and connecting the CCD node in parallel with a third cell group, the third cell group comprising the second cell group and one or more new additional cells of the plurality of cells;

determining a third state of charge associated one or more new additional cells of the plurality of cells;

in response to determining that the third state of charge is lower than the second state of charge:

disconnecting the CCD node from the third cell group and connecting the CCD node in parallel with the second cell group; and

connecting the power sink to the CCD node and discharging the second cell group into the power sink until the second state of charge matches the third state of charge;

in response to determining that the third state of charge is higher than the second state of charge:

disconnecting the CCD node from the third cell group and connecting the CCD node in parallel with the second cell group; and

connecting the power source to the CCD node and charging the second cell group with the power source until the second state of charge matches the third state of charge.

2. The method of claim 1 , wherein the CCD node is connected to additional cell groups, each additional cell group comprising a previously balanced cell group, until each cell of the plurality of cells has been balanced.

3. The method of claim 1 , wherein determining the first state of charge, the second state of charge, and the third state of charge comprises measuring a voltage from the connected CCD node to ground and dividing by a number of connected cells.

4. The method of claim 1 , wherein the first state of charge matches the second state of charge when the first state of charge is within two percent of the second state of charge.

5. The method of claim 1 , wherein the power sink is an electric motor.

6. The method of claim 5 , wherein the electric motor is driven using field-oriented control (FOC), and wherein a direct force in the FOC and a quadrature force in the FOC are selected to prevent rotation of the electric motor.

7. The method of claim 1 , wherein the power source is a buck-boost type, direct current to direct current converter.

8. A battery string balancing circuit comprising:

a string of battery cells connected in series;

two or more intermediate nodes, each intermediate node connecting two cells of the string of battery cells, and each intermediate node comprising a single switched connection;

a common charge/discharge (CCD) node connected to each particular intermediate node by the switched connection of that intermediate node;

a power source configured to supply power to the CCD node; and

a power sink connected via a discharge switch to the CCD node, the power sink configured to dissipate power discharged from a particular intermediate node or the battery string when the discharge switch is closed, wherein the power sink is an electric motor, and wherein the electric motor is driven using field-oriented control (FOC), and wherein the electric motor is configured to dissipate power by selecting a direct force in the FOC and a quadrature force in the FOC that prevent rotation of the electric motor.

9. The circuit of claim 8 , wherein the CCD node comprises a voltage sensor connected between the CCD node and ground.

10. The circuit of claim 8 , wherein the CCD node comprises a bi-directional current sensor connected between the switched connections of the intermediate nodes, and both the power source and the power sink.

11. The circuit of claim 8 , wherein the power source is a buck-boost type, direct current to direct current converter.

12. The circuit of claim 8 , wherein each switched connection comprises a field effect transistor.

13. A system for balancing batteries, the system comprising:

a string of battery cells connected in series;

two or more intermediate nodes, each intermediate node connecting two cells of the string of battery cells, and each intermediate node comprising a single switched connection;

a common charge/discharge (CCD) node connected to each particular intermediate node by the switched connection of that intermediate node;

a power source configured to supply power to the CCD node; and

a power sink connected via a discharge switch to the CCD node, the power sink configured to dissipate power discharged from a particular intermediate node or the battery string when the discharge switch is closed, wherein the power sink is an electric motor, wherein the electric motor is driven using field-oriented control (FOC), and wherein the electric motor is configured to dissipate power by selecting a direct force in the FOC and a quadrature force in the FOC that prevent rotation of the electric motor.

14. The system of claim 13 , wherein the CCD node comprises a voltage sensor connected between the CCD node and ground.

15. The system of claim 13 , wherein the CCD node comprises a bi-directional current sensor connected between the switched connections of the intermediate nodes, and both the power source and the power sink.

16. The system of claim 13 , wherein the power source is a buck-boost type, direct current to direct current converter.

17. The system of claim 13 , wherein each switched connection comprises a field effect transistor.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 21, 2022
From: SESSIONS, BLAKE; GLADSTEIN, BORIS
To: LIFTWAVE, INC. DBA RISE ROBOTICS
Reel/Frame 059661/0805 →
Continuity (1)
Related Publication 20230344247A1 · Oct 26, 2023
References Cited (12)
US 5666041A · Stuart et al. · 1997 [cited by applicant]
US 5998969A · Tsuji et al. · 1999 [cited by applicant]
US 8217625B2 · Chang et al. · 2012 [cited by applicant]
US 8860371B2 · Yang · 2014 [cited by applicant]
US 10187934B2 · Melanson et al. · 2019 [cited by applicant]
US 10910858B2 · Taylor et al. · 2021 [cited by applicant]
US 11894702B2 · Kuranuki · 2024 [cited by examiner]
US 20040135535A1 · Kunzel · 2004 [cited by examiner]
US 20040135545A1 · Fowler · 2004 [cited by examiner]
US 20100295510A1 · Moussaoui et al. · 2010 [cited by applicant]
US 20130057198A1 · Gerlovin · 2013 [cited by applicant]
US 20220314809A1 · Yokoo · 2022 [cited by examiner]