Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles

Industrial and academic communities have embarked on investigating the sustainability of vehicles that contain embedded electrochemical energy storage systems. Circular economy strategies for electric vehicle (EV) or hybrid electric vehicle (HEV) battery systems are underpinned by implicit assumptio...

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Main Authors: Thomas R. B. Grandjean, Jakobus Groenewald, Andrew McGordon, Widanalage D. Widanage, James Marco
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Batteries
Subjects:
Online Access:http://www.mdpi.com/2313-0105/4/4/49
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spelling doaj-a66423ea3dde4573b22ab2374293c28d2020-11-24T21:46:26ZengMDPI AGBatteries2313-01052018-10-01444910.3390/batteries4040049batteries4040049Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric VehiclesThomas R. B. Grandjean0Jakobus Groenewald1Andrew McGordon2Widanalage D. Widanage3James Marco4Energy and Electrical Systems, WMG, University of Warwick, Coventry CV4 7AL, UKEnergy and Electrical Systems, WMG, University of Warwick, Coventry CV4 7AL, UKEnergy and Electrical Systems, WMG, University of Warwick, Coventry CV4 7AL, UKEnergy and Electrical Systems, WMG, University of Warwick, Coventry CV4 7AL, UKEnergy and Electrical Systems, WMG, University of Warwick, Coventry CV4 7AL, UKIndustrial and academic communities have embarked on investigating the sustainability of vehicles that contain embedded electrochemical energy storage systems. Circular economy strategies for electric vehicle (EV) or hybrid electric vehicle (HEV) battery systems are underpinned by implicit assumptions about the state of health (SOH) of the battery. The internal resistance of battery systems is the essential property for determining available power, energy efficiency, and heat generation. Consequently, precise measurement is crucial to estimate the SOH; however, the international standards and best practice guides that exist to define the measurements include long preconditioning and rest times that make the test duration prohibitive. The aim of this research is to critically evaluate whether test duration times for internal resistance measurements can be reduced to values that may facilitate further end-of-life (EOL) options. Results reveal a newly developed technique using pulse-multisines is two to four times faster to perform when compared to the standard protocol whilst maintaining accuracy for battery electric vehicle (BEV) and HEV cells, respectively. This novel method allows different stakeholders to rank the relative importance of test accuracy verses experimental test time when categorising used Li-ion cells for different EOL applications.http://www.mdpi.com/2313-0105/4/4/49lithium ion batteryenergy internal resistance measurementinternal resistanceaccelerated system identificationend-of-lifecircular economy
collection DOAJ
language English
format Article
sources DOAJ
author Thomas R. B. Grandjean
Jakobus Groenewald
Andrew McGordon
Widanalage D. Widanage
James Marco
spellingShingle Thomas R. B. Grandjean
Jakobus Groenewald
Andrew McGordon
Widanalage D. Widanage
James Marco
Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
Batteries
lithium ion battery
energy internal resistance measurement
internal resistance
accelerated system identification
end-of-life
circular economy
author_facet Thomas R. B. Grandjean
Jakobus Groenewald
Andrew McGordon
Widanalage D. Widanage
James Marco
author_sort Thomas R. B. Grandjean
title Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
title_short Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
title_full Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
title_fullStr Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
title_full_unstemmed Accelerated Internal Resistance Measurements of Lithium-Ion Cells to Support Future End-of-Life Strategies for Electric Vehicles
title_sort accelerated internal resistance measurements of lithium-ion cells to support future end-of-life strategies for electric vehicles
publisher MDPI AG
series Batteries
issn 2313-0105
publishDate 2018-10-01
description Industrial and academic communities have embarked on investigating the sustainability of vehicles that contain embedded electrochemical energy storage systems. Circular economy strategies for electric vehicle (EV) or hybrid electric vehicle (HEV) battery systems are underpinned by implicit assumptions about the state of health (SOH) of the battery. The internal resistance of battery systems is the essential property for determining available power, energy efficiency, and heat generation. Consequently, precise measurement is crucial to estimate the SOH; however, the international standards and best practice guides that exist to define the measurements include long preconditioning and rest times that make the test duration prohibitive. The aim of this research is to critically evaluate whether test duration times for internal resistance measurements can be reduced to values that may facilitate further end-of-life (EOL) options. Results reveal a newly developed technique using pulse-multisines is two to four times faster to perform when compared to the standard protocol whilst maintaining accuracy for battery electric vehicle (BEV) and HEV cells, respectively. This novel method allows different stakeholders to rank the relative importance of test accuracy verses experimental test time when categorising used Li-ion cells for different EOL applications.
topic lithium ion battery
energy internal resistance measurement
internal resistance
accelerated system identification
end-of-life
circular economy
url http://www.mdpi.com/2313-0105/4/4/49
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