IP Library Granted Patent US 12,620,819
Granted Patent B2
US 12,620,819 · App. 17/940,762 · Granted May 5, 2026

Discharge circuit, battery management system, battery, protection method, and electrical apparatus

Inventors: Hui Chen (Ningde, CN); Yanhui Fu (Ningde, CN); Le Chu (Ningde, CN); Maobo Guo (Ningde, CN)
Assignee: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
H02J7/64H02H9/04
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Quick Facts
Patent No.
US 12,620,819
App. No.
17/940,762
Granted
May 5, 2026
Kind
B2
Abstract

A discharge circuit includes a first branch configured to be connected to a protected unit and a second branch connected in parallel to the first branch. The first branch includes a first overvoltage protection device configured to passively discharge a surge voltage. The second branch includes a second overvoltage protection device and a control switch connected in series. The control switch is configured to be connected to a control unit, and to be opened or closed based on a control signal of the control unit.

Claims (74)

1 . A discharge circuit, comprising:

a first branch configured to be connected to a protected unit, and comprising a first overvoltage protection device configured to passively discharge a surge voltage; and

a second branch comprising a second overvoltage protection device and a control switch connected in series, the second branch being connected in parallel to the first branch;

wherein:

the control switch is configured to be connected to a control unit, and to be opened or closed based on a control signal of the control unit;

the first branch comprises N sub-branches, N being a positive integer greater than or equal to 2;

the first overvoltage protection device is one of N first overvoltage protection devices each connected in series to one of the sub-branches;

the N first overvoltage protection devices are connected in parallel;

each of the sub-branches further comprises a resistor connected in series to the corresponding first overvoltage protection device; and

when the first branch is connected to the protected unit, the resistor is located on a side closer to the protected unit than the corresponding first overvoltage protection device.

2 . The discharge circuit according to claim 1 , wherein a 1 st sub-branch of the first branch is connected to the protected unit, one end of each of a 2 nd sub-branch to an N th sub-branch is connected between the resistor and the first overvoltage protection device of a previous sub-branch, and another end of each of the 2 nd sub-branch to the N th sub-branch is grounded.

3 . The discharge circuit according to claim 1 , wherein:

the second branch comprises M sub-branches connected in parallel, M being a positive integer greater than or equal to 2;

the second overvoltage protection device is one of M second overvoltage protection devices each belonging to one of the sub-branches;

the control switch is one of M control switches each belonging to one of the sub-branches and connected in series to the corresponding second overvoltage protection device; and

all of the control switches are configured to be connected to the control unit.

4 . The discharge circuit according to claim 1 , wherein:

the N sub-branches are N first sub-branches;

the resistors are first resistors of the first sub-branches;

the second branch comprises M second sub-branches connected in parallel, M being a positive integer greater than or equal to 2;

the second overvoltage protection device is one of M second overvoltage protection devices each belonging to one of the second sub-branches;

the control switch is one of M control switches each belonging to one of the second sub-branches and connected in series to the corresponding second overvoltage protection device;

all of the control switches are configured to be connected to the control unit

each of the second sub-branches further comprises a second resistor connected in series to the corresponding second overvoltage protection device; and

one end of each of the M second sub-branches closer to the corresponding second resistor is connected to a position between the first resistor and the first overvoltage protector of an N th first sub-branch, and one end of each of the M second sub-branches closer to the corresponding second overvoltage protection device is grounded.

5 . The discharge circuit according to claim 1 , wherein the first overvoltage protection device and the second overvoltage protection device each include a transient voltage suppression diode.

6 . The discharge circuit according to claim 1 , wherein the control switch includes a MOS transistor.

7 . A battery management system, comprising:

a discharge circuit comprising:

a first branch configured to be connected to a protected unit, and comprising a first overvoltage protection device configured to passively discharge a surge voltage; and

a second branch connected in parallel to the first branch and comprising a second overvoltage protection device and a control switch connected in series, the control switch being configured to be connected to a control unit, and to be opened or closed based on a control signal of the control unit;

a microcontroller;

a voltage sampling unit; and

a multi-stage voltage comparison unit;

wherein:

at least one of the microcontroller, the voltage sampling unit, or the multi-stage voltage comparison unit is connected to the control switch of the second branch of the discharge circuit, and the control switch receives a control signal from the at least one of the microcontroller, the voltage sampling unit, or the multi-stage voltage comparison unit, and is opened or closed based on the control signal;

the first branch comprises N sub-branches, N being a positive integer greater than or equal to 2;

the first overvoltage protection device is one of N first overvoltage protection devices each connected in series to one of the sub-branches;

the N first overvoltage protection devices are connected in parallel;

each of the sub-branches further comprises a resistor connected in series to the corresponding first overvoltage protection device; and

when the first branch is connected to the protected unit, the resistor is located on a side closer to the protected unit than the corresponding first overvoltage protection device.

8 . The battery management system according to claim 7 , further comprising:

a switch control unit connected to a control terminal of the control switch of the second branch of the discharge circuit;

wherein the at least one of the microcontroller, the voltage sampling unit, or the multi-stage voltage comparison unit is connected to the switch control unit.

9 . The battery management system according to claim 7 , wherein a 1 st sub-branch of the first branch is connected to the protected unit, one end of each of a 2 nd sub-branch to an N th sub-branch is connected between the resistor and the first overvoltage protection device of a previous sub-branch, and another end of each of the 2 nd sub-branch to the N th sub-branch is grounded.

10 . The battery management system according to claim 7 , wherein:

the second branch comprises M sub-branches connected in parallel, M being a positive integer greater than or equal to 2;

the second overvoltage protection device is one of M second overvoltage protection devices each belonging to one of the sub-branches;

the control switch is one of M control switches each belonging to one of the sub-branches and connected in series to the corresponding second overvoltage protection device; and

all of the control switches are configured to be connected to the control unit.

11 . A discharge protection method, applied to the battery management system according to claim 7 , and comprising:

obtaining a voltage of the protected unit;

determining whether the voltage exceeds an overvoltage threshold; and

in response to the voltage exceeding the overvoltage threshold, sending a control signal to the second branch of the discharge circuit, to control the control switch of the second branch to be closed, such that the discharge circuit discharges a surge voltage in a combined active-passive manner.

12 . The discharge protection method according to claim 11 ,

wherein the protected unit includes a positive terminal of a battery;

the method further comprising, before obtaining the voltage of the protected unit and determining whether the voltage exceeds the overvoltage threshold:

obtaining the voltage and a current of the positive terminal;

determining whether the voltage and the current reach a protection threshold;

in response to the voltage and the current reaching the protection threshold, controlling a controllable switch between the positive terminal of the battery and a positive terminal of a battery pack to be opened; and

sending a control signal to the second branch of the discharge circuit, to control the control switch of the second branch to be closed, such that the discharge circuit discharges the surge voltage in the combined active-passive manner.

13 . The discharge protection method according to claim 11 , wherein the method is performed cyclically, until the voltage of the protected unit does not exceed the overvoltage threshold.

14 . The discharge protection method according to claim 13 , wherein:

the obtained voltage of the protected unit is divided into a plurality of levels from low to high in response to the obtained voltage of the protected unit exceeding the overvoltage threshold; and

a quantity of sub-branches in the discharge circuit that are connected is controlled to gradually increase, corresponding to the plurality of voltage levels from high to low.

15 . A discharge circuit, comprising:

a first branch configured to be connected to a protected unit, and comprising a first overvoltage protection device configured to passively discharge a surge voltage; and

a second branch comprising a second overvoltage protection device and a control switch connected in series, the second branch being connected in parallel to the first branch;

wherein:

the control switch is configured to be connected to a control unit, and to be opened or closed based on a control signal of the control unit;

the second branch comprises M sub-branches connected in parallel, M being a positive integer greater than or equal to 2;

the second overvoltage protection device is one of M second overvoltage protection devices each belonging to one of the sub-branches;

the control switch is one of M control switches each belonging to one of the sub-branches and connected in series to the corresponding second overvoltage protection device; and

all of the control switches are configured to be connected to the control unit.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2024
From: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
To: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Reel/Frame 068338/0402 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2022
From: CHEN, HUI; FU, YANHUI; CHU, LE; GUO, MAOBO
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 061030/0001 →
Priority Claims (1)
CN 202111283737.5 · Nov 1, 2021 · national
Continuity (2)
Continuation PCTCN2022089068 · Apr 25, 2022
Related Publication 20230139265A1 · May 4, 2023
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