Systems and methods for state of charge and capacity estimation of a rechargeable battery

US10300807B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10300807-B2
Application numberUS-201615254645-A
CountryUS
Kind codeB2
Filing dateSep 1, 2016
Priority dateFeb 4, 2016
Publication dateMay 28, 2019
Grant dateMay 28, 2019

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  1. Title

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  2. Abstract

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  4. Key dates

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  5. First independent claim

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A battery system may include a battery that in operation couples to an electrical system, and a battery control module that in operation electrically couples to the battery. The battery control module may read battery data, estimate a state of charge of the battery based at least in part on the battery data, and estimate a state of charge error of the battery based on magnitudes of state of charge error sources. Additionally, the battery control module may update a state of health estimation of the battery when the state of charge error of the battery exceeds a predetermined threshold.

First claim

Opening claim text (preview).

The invention claimed is: 1. A battery system, comprising: a battery configured to couple to an electrical system; and a battery control module comprising a state of charge (SoC) module and a state of health (SoH) module, wherein the battery control module is configured to electrically couple to the battery, and the battery control module is configured to: read battery data; estimate a first state of charge of the battery based at least in part on the battery data using a first method of the SoC module; calculate a first state of charge error of the battery associated with the estimate of the first state of charge and based on magnitudes of state of charge error sources associated with the first method; estimate a second state of charge of the battery based at least in part on the battery data using a second method of the SoH module; calculate a second state of charge error of the battery associated with the estimate of the second state of charge and based on magnitudes of state of charge error sources associated with the second method; estimate a third state of charge error of the battery based on the first and the second state of charge errors; and update a state of health estimation of the battery when the third state of charge error of the battery exceeds a predetermined threshold. 2. The battery system of claim 1 , wherein the battery control module is configured to re-estimate the first state of charge of the battery based on the updated state of health estimation of the battery when the third state of charge error of the battery exceeds the predetermined threshold. 3. The battery system of claim 1 , wherein the first method comprises a current integration method, an open circuit voltage measurement, or a recursive algorithm. 4. The battery system of claim 1 , wherein the predetermined threshold comprises a state of charge error of 5 percent. 5. The battery system of claim 1 , wherein an estimation logic module of the battery control module is configured to determine when the predetermined threshold is surpassed by the third state of charge error. 6. The battery system of claim 1 , wherein when the third state of charge error exceeds the predetermined threshold, the SoH module is configured to perform an error reducing operation. 7. The battery system of claim 6 , wherein the error reducing operation comprises limiting a duration between state of charge estimations. 8. The battery system of claim 6 , wherein the battery control module is configured to repeatedly perform the error reducing operation until the first or the third state of charge error is below the predetermined threshold. 9. The battery system of claim 1 , wherein the second state of charge error is determined based in part on an open circuit voltage correction error and the first state of charge error is determined based in part on a current integration error and a state of charge operating range. 10. The battery system of claim 1 , wherein the battery data comprises battery voltage, battery current, and battery temperature. 11. The battery system of claim 1 , wherein the battery control module is configured to update current values of the first state of charge, the second state of charge, or the state of health estimation, or any combination thereof, when the battery control module determines that the third state of charge error does not exceed the predetermined threshold. 12. The battery system of claim 11 , wherein the battery control module is configured to update the current values of the first state of charge, the second state of charge, or the state of health, or any combination thereof, by displaying the current values of the first state of charge, the second state of charge, or the state of health of the battery, or any combination thereof on a display coupled to the electrical system. 13. A tangible, non-transitory computer readable medium of a battery control module configured to store instructions executable by a processor, wherein the instructions cause the processor to: read battery data of a rechargeable battery; estimate a first state of charge of the rechargeable battery based at least in part on the battery data read from the rechargeable battery; determine a first state of charge error of the first state of charge based at least in part on magnitudes of first state of charge error sources; estimate a second state of charge of the rechargeable battery based at least in part on the battery data read from the rechargeable battery, and a state of health of the rechargeable battery; determine a second state of charge error of the second state of charge based at least in part on magnitudes of second state of charge error sources; determine a third state of charge error based on the first state of charge error and the second state of charge error; and update the state of health of the rechargeable battery when the third state of charge error exceeds a predetermined threshold. 14. The computer readable medium of claim 13 , wherein the instructions cause the processor to estimate the first state of charge based on a recursive algorithm method, an open circuit voltage method, or a current integration method using the battery control module. 15. The computer readable medium of claim 13 , wherein the first state of charge error sources comprise open circuit voltage correction errors and the second state of charge error sources comprise current integration errors. 16. The computer readable medium of claim 15 , wherein the open circuit voltage correction errors comprise randomly distributed error sources and the current integration errors comprise time dependent state of charge error sources and depth of discharge bounded state of charge error sources. 17. The computer readable medium of claim 13 , wherein the state of health is updated using a linear regression of the battery data comprising a real-time current and voltage, or the state of health is updated by monitoring an open circuit voltage of the rechargeable battery and consulting a look-up table. 18. The computer readable medium of claim 13 , comprising instructions to cause the processor to control an estimation logic module of the battery control module of the rechargeable battery to determine when the predetermined threshold is surpassed by the third state of charge error. 19. The computer readable medium of claim 13 , wherein the battery data comprises battery voltage, battery current, and battery temperature. 20. An energy storage system, comprising: an electrical system of a vehicle or stationary battery; an energy storage component configured to electrically couple to the electrical system of the vehicle or stationary battery; at least one sensor coupled to the energy storage component and configured to collect energy storage component data from the energy storage component; and a battery control module configured to: estimate a first state of charge of the energy storage component based on the energy storage component data collected by the at least one sensor; calculate a first state of charge error of the energy storage component based at least in part on magnitudes of first error sources associated with the first state of charge; estimate a second state of charge of the energy storage component based on the energy storage component data calculated by the at least one sensor; calculate a second state of charge error of the energy storage component based at least in part on magnitudes of second error sources associated with the second state of charge; and

Assignees

Inventors

Classifications

  • Software therefor, e.g. for battery testing using modelling or look-up tables · CPC title

  • Assembly or relative location of components · CPC title

  • relating to sensors · CPC title

  • responding to battery ageing, e.g. to the number of charging cycles or the state of health [SoH] · CPC title

  • by parameter estimation · CPC title

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What does patent US10300807B2 cover?
A battery system may include a battery that in operation couples to an electrical system, and a battery control module that in operation electrically couples to the battery. The battery control module may read battery data, estimate a state of charge of the battery based at least in part on the battery data, and estimate a state of charge error of the battery based on magnitudes of state of cha…
Who is the assignee on this patent?
Johnson Controls Tech Co, Johnson Controls Advanced Power Solutions Gmbh
What technology area does this patent fall under?
Primary CPC classification G01R31/392. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue May 28 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).