IP Library Granted Patent US 12,560,657
Granted Patent B2
US 12,560,657 · App. 17/952,492 · Granted Feb 24, 2026

Battery state of health estimation method, battery management apparatus, and battery management system

Inventors: Yadan Liu (Xi'an, CN); Liliang Liu (Shanghai, CN); Baojin Fang (Suzhou, CN); Xiunan Lu (Shanghai, CN)
Assignee: SHENZHEN YINWANG INTELLIGENT TECHNOLOGIES CO., LTD.
G01R31/392G01R31/367G01R31/388
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Quick Facts
Patent No.
US 12,560,657
App. No.
17/952,492
Granted
Feb 24, 2026
Kind
B2
Abstract

A battery state of health estimation method, where an aging state of any one or more battery cells in a battery pack can be estimated. The method may be applied to an intelligent vehicle, a new energy vehicle, and a connected vehicle. When the battery pack is unavailable, an aging state of each battery cell is estimated by using the solution provided in the present disclosure. An obtained estimation result can provide a recycling guide for the battery cell to improve secondary utilization of the battery cell in the battery pack.

Claims (61)

1 . A battery state of health (SOH) estimation method comprising:

obtaining a target power-on circuit, wherein the target power-on circuit is a power-on circuit formed by a battery cell in a battery pack and a load or a charging device, wherein the target power-on circuit is an equalization circuit comprising the battery cell, an equalization resistor, and an equalization switch connected in series, and wherein the battery pack comprises a plurality of battery cells;

determining a theoretical charge capacity and an actual charge capacity of the battery cell in the target power-on circuit during a charging process or a discharging process, wherein determining the actual charge capacity of the battery cell in the target power-on circuit during the discharging process comprises:

collecting a real-time open circuit voltage of the battery cell in the target power-on circuit, wherein the real-time open circuit voltage is an open circuit voltage collected at a preset sampling frequency when the equalization switch is turned on; and

determining the actual charge capacity of the battery cell based on a V i t , an R, and an f, wherein the V i t is the real-time open circuit voltage in volts (V), the R is a resistance value in ohms (Ω) of the equalization resistor, and the f is the preset sampling frequency in hertz (Hz), wherein a value of the t in V i t is from 1 to T*60*f, and wherein the T is a discharge time in minutes;

determining an SOH of the battery cell based on the theoretical charge capacity and the actual charge capacity; and

outputting the SOH of the battery cell to a display apparatus, wherein the SOH of the battery cell guides secondary utilization of the battery cell.

2 . The battery SOH estimation method of claim 1 , wherein determining the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process comprises:

collecting an initial open circuit voltage of the battery cell in the target power-on circuit, wherein the initial open circuit voltage is an open circuit voltage before the equalization switch is turned on;

controlling the equalization switch to turn on, so that the target power-on circuit is conducted;

controlling the equalization switch to turn off after a detection time;

collecting an end open circuit voltage of the battery cell in the target power-on circuit, wherein the end open circuit voltage is an open circuit voltage when the equalization switch is turned off;

searching a preset open circuit voltage (OCV)-state-of-charge (SoC) table to obtain an SOC 1i and an SOC 2i , wherein the SOC 1i is a first SOC corresponding to a new battery when an open circuit voltage is the initial open circuit voltage, and wherein the SOC 2i is a second SOC corresponding to the new battery when the open circuit voltage is the end open circuit voltage; and

determining the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process based on the SOC 1i and the SOC 2i .

3 . The battery SOH estimation method of claim 2 , wherein the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process is determined based on a Q new , the SOC 1i and the SOC 2i , and wherein the Q new is a total charge capacity in coulombs (C) of the new battery.

4 . The battery SOH estimation method of claim 2 , wherein the detection time is less than or equal to a time required by the battery cell in the target power-on circuit to be fully discharged from a fully charged state.

5 . The battery SOH estimation method of claim 2 , wherein determining the actual charge capacity of the battery cell in the target power-on circuit during the discharging process comprises performing an integral operation on the initial open circuit voltage and the end open circuit voltage to obtain the actual charge capacity.

6 . The battery SOH estimation method of claim 2 , wherein the SOH of the battery cell of the target power-on circuit is determined based on a k i , the theoretical charge capacity of the battery cell in the target power-on circuit in the discharging process, and the actual charge capacity of the battery cell in the target power-on circuit during the discharging process, and wherein the k i is a proportion coefficient obtained by searching a preset k i table based on the initial open circuit voltage and the end open circuit voltage.

7 . The battery SOH estimation method of claim 6 , wherein the preset OCV-SOC table records a correspondence between the open circuit voltage and an SOC, and wherein the preset k i table records a correspondence between the open circuit voltage and a proportion coefficient.

8 . The battery SOH estimation method of claim 1 , further comprising discharging the battery cell at a small current during the discharging process.

9 . A battery management apparatus, comprising:

a memory configured to store instructions; and

a processor coupled to the memory and configured to execute the instructions to cause the battery management apparatus to:

obtain a target power-on circuit, wherein the target power-on circuit is a power-on circuit formed by a battery cell in a battery pack and a load or a charging device, wherein the target power-on circuit is an equalization circuit comprising the battery cell, an equalization resistor, and an equalization switch connected in series, and wherein the battery pack comprises a plurality of battery cells;

determine a theoretical charge capacity and an actual charge capacity of the battery cell in the target power-on circuit during a charging process or a discharging process;

determine a state of health (SOH) of the battery cell based on the theoretical charge capacity and the actual charge capacity; and

output the SOH of the battery cell to a display apparatus, wherein the SOH of the battery cell guides secondary utilization of the battery cell, and

wherein the processor comprises a data processing sub-processor configured to determine the actual charge capacity of the battery cell in the target power-on circuit during the discharging process based on a V i t , an R, and an f, wherein the V i t is a real-time open circuit voltage in volts (V), the R is a resistance value in ohms (Ω) of the equalization resistor, and the f is a preset sampling frequency in hertz (Hz), and wherein a value of the t in V i t is from 1 to T*60*f and the T is a discharge time in minutes.

10 . The battery management apparatus of claim 9 , wherein the processor comprises:

a collection sub-processor configured to collect an initial open circuit voltage and an end open circuit voltage of the battery cell in the target power-on circuit, wherein the initial open circuit voltage is an open circuit voltage before the equalization switch is turned on, and the end open circuit voltage is the open circuit voltage when the equalization switch is turned off; and

a control sub-processor configured to control the equalization switch to turn on, so that the target power-on circuit is conducted, and to control the equalization switch to turn off after a detection time, and

wherein the data processing sub-processor configured to;

search a preset open circuit voltage (OCV)-state-of-charge (SoC) table to obtain an SOC 1i and an SOC 2i , wherein the SOC 1i is a first state of charge corresponding to a new battery when an open circuit voltage is the initial open circuit voltage, and wherein the SOC 2i is a second state of charge corresponding to the new battery when the open circuit voltage is the end open circuit voltage; and

determine the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process based on the SOC 1i and the SOC 2i .

11 . The battery management apparatus of claim 10 , wherein the data processing sub-processor is further configured to determine the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process based on a Q new , the SOC 1i , and the SOC 2i , and wherein the Q new is a total charge capacity in coulombs (C) of the new battery.

12 . The battery management apparatus of claim 10 , wherein the detection time is less than or equal to a time required by the battery cell in the target power-on circuit to be fully discharged from a fully charged state.

13 . The battery management apparatus of claim 10 , wherein the data processing sub-processor is further configured to perform an integral operation on the initial open circuit voltage and the end open circuit voltage to obtain the actual charge capacity of the battery cell in the target power-on circuit during the discharging process.

14 . The battery management apparatus of claim 10 , wherein the collection sub-processor is further configured to collect the real-time open circuit voltage of the battery cell in the target power-on circuit, and wherein the real-time open circuit voltage is an open circuit voltage collected at the preset sampling frequency when the equalization switch is turned on.

15 . The battery management apparatus of claim 10 , wherein the preset OCV-SOC table records a correspondence between the open circuit voltage and an SOC, and wherein a preset k i table records a correspondence between the open circuit voltage and a proportion coefficient.

16 . The battery management apparatus of claim 10 , wherein the data processing sub-processor is further configured to discharge the battery cell at a small current.

17 . A battery management system, comprising:

a battery control apparatus configured to:

receive a detection instruction from a host; and

send the detection instruction to a battery management apparatus;

the battery management apparatus configured to:

receive the detection instruction from the battery control apparatus;

obtain a target power-on circuit based on the detection instruction, wherein the target power-on circuit is a power-on circuit formed by a battery cell in a battery pack and a load or a charging device, wherein the target power-on circuit is an equalization circuit comprising the battery cell, an equalization resistor, and an equalization switch connected in series, and wherein the battery pack comprises a plurality of battery cells;

determine a theoretical charge capacity and an actual charge capacity of the battery cell in the target power-on circuit in a charging process or a discharging process, wherein determining the actual charge capacity of the battery cell in the target power-on circuit during the discharging process comprises:

collecting a real-time open circuit voltage of the battery cell in the target power-on circuit, wherein the real-time open circuit voltage is an open circuit voltage collected at a preset sampling frequency when the equalization switch is turned on; and

determining the actual charge capacity of the battery cell based on a V i t , an R, and an f, wherein the V i t is the real-time open circuit voltage in volts (V), the R is a resistance value in ohms (Ω) of the equalization resistor, and the f is the preset sampling frequency in hertz (Hz), wherein a value of the t in V i t is from 1 to T*60*f, and wherein the T is a discharge time in minutes;

determine a state of health (SOH) of the battery cell based on the theoretical charge capacity and the actual charge capacity; and

output the SOH of the battery cell to a display apparatus, wherein the SOH of the battery cell guides secondary utilization of the battery cell.

18 . The battery management system of claim 17 , wherein the battery management apparatus is further configured to determine the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process by:

collecting an initial open circuit voltage of the battery cell in the target power-on circuit, wherein the initial open circuit voltage is an open circuit voltage before the equalization switch is turned on;

controlling the equalization switch to turn on, so that the target power-on circuit is conducted;

controlling the equalization switch to turn off after a detection time;

collecting an end open circuit voltage of the battery cell in the target power-on circuit, wherein the end open circuit voltage is an open circuit voltage when the equalization switch is turned off;

searching a preset open circuit voltage (OCV)-state-of-charge (SoC) table to obtain an SOC 1i and an SOC 2i , wherein the SOC 1i is a first SOC corresponding to a new battery when an open circuit voltage is the initial open circuit voltage, and wherein the SOC 2i is a second SOC corresponding to the new battery when the open circuit voltage is the end open circuit voltage; and

determining the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process based on the SOC 1i and the SOC 2i .

19 . The battery management system of claim 18 , wherein the theoretical charge capacity of the battery cell in the target power-on circuit during the discharging process is determined based on a Q new , the SOC 1i and the SOC 2i , and wherein the Q new is a total charge capacity in coulombs (C) of the new battery.

20 . The battery management system of claim 19 , wherein the detection time is less than or equal to a time required by the battery cell in the target power-on circuit to be fully discharged from a fully charged state.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 12, 2024
From: HUAWEI TECHNOLOGIES CO., LTD.
To: SHENZHEN YINWANG INTELLIGENT TECHNOLOGIES CO., LTD.
Reel/Frame 069336/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2024
From: LIU, LILIANG; FANG, BAOJIN; LU, XIUNAN
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 069161/0308 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 6, 2024
From: XI AN HUAWEI TECHNOLOGIES CO., LTD.
To: HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 069161/0368 →
EMPLOYMENT AGREEMENT Recorded Nov 6, 2024
From: LIU, YADAN
To: XI AN HUAWEI TECHNOLOGIES CO., LTD.
Reel/Frame 069323/0001 →
Continuity (2)
Continuation PCTCN2020081667 · Mar 27, 2020
Related Publication 20230015227A1 · Jan 19, 2023
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