A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime

This paper proposes a multiphysics simulation structure for predicting Li-ion batteries’ useful life by consolidating battery cell electrochemical and thermal-aging models into the electrical domain of PV-battery standalone systems. This model can consider the effect of operating conditions at the s...

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Autores principales: Farzin Golzar, Majid Astaneh, Milad Ghorbanzadeh
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Lenguaje:EN
Publicado: MDPI AG 2021
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Acceso en línea:https://doaj.org/article/1652caeb10be4b26ad784752b0e8f723
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spelling oai:doaj.org-article:1652caeb10be4b26ad784752b0e8f7232021-11-11T15:37:00ZA Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime10.3390/electronics102125822079-9292https://doaj.org/article/1652caeb10be4b26ad784752b0e8f7232021-10-01T00:00:00Zhttps://www.mdpi.com/2079-9292/10/21/2582https://doaj.org/toc/2079-9292This paper proposes a multiphysics simulation structure for predicting Li-ion batteries’ useful life by consolidating battery cell electrochemical and thermal-aging models into the electrical domain of PV-battery standalone systems. This model can consider the effect of operating conditions at the system level, such as charge/discharge patterns and energy management strategies, to evaluate battery capacity fade at the cell level. The proposed model is validated using experimental observations with a RRMSE of 1.1%. Results show that the operating conditions of the battery bank affect its lifetime significantly. A wide range of 2.7 to 12.5 years of battery lifetime is predicted by applying the model to different case studies. In addition, the model predicts that managing the maximum cell state of charge level can enhance the battery bank lifetime by 60%. The developed model is a generic multiscale decision-making framework to investigate the effect of operating conditions on battery service life.Farzin GolzarMajid AstanehMilad GhorbanzadehMDPI AGarticlelithium-ion batterymultiphysics modelingsystem-to-cellPV-battery energy systemElectronicsTK7800-8360ENElectronics, Vol 10, Iss 2582, p 2582 (2021)
institution DOAJ
collection DOAJ
language EN
topic lithium-ion battery
multiphysics modeling
system-to-cell
PV-battery energy system
Electronics
TK7800-8360
spellingShingle lithium-ion battery
multiphysics modeling
system-to-cell
PV-battery energy system
Electronics
TK7800-8360
Farzin Golzar
Majid Astaneh
Milad Ghorbanzadeh
A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
description This paper proposes a multiphysics simulation structure for predicting Li-ion batteries’ useful life by consolidating battery cell electrochemical and thermal-aging models into the electrical domain of PV-battery standalone systems. This model can consider the effect of operating conditions at the system level, such as charge/discharge patterns and energy management strategies, to evaluate battery capacity fade at the cell level. The proposed model is validated using experimental observations with a RRMSE of 1.1%. Results show that the operating conditions of the battery bank affect its lifetime significantly. A wide range of 2.7 to 12.5 years of battery lifetime is predicted by applying the model to different case studies. In addition, the model predicts that managing the maximum cell state of charge level can enhance the battery bank lifetime by 60%. The developed model is a generic multiscale decision-making framework to investigate the effect of operating conditions on battery service life.
format article
author Farzin Golzar
Majid Astaneh
Milad Ghorbanzadeh
author_facet Farzin Golzar
Majid Astaneh
Milad Ghorbanzadeh
author_sort Farzin Golzar
title A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
title_short A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
title_full A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
title_fullStr A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
title_full_unstemmed A Multiphysics System-to-Cell Framework to Assess the Impact of Operating Conditions of Standalone PV Systems on Lithium-Ion Battery Lifetime
title_sort multiphysics system-to-cell framework to assess the impact of operating conditions of standalone pv systems on lithium-ion battery lifetime
publisher MDPI AG
publishDate 2021
url https://doaj.org/article/1652caeb10be4b26ad784752b0e8f723
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