Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery

Batteries have been a forefront energy storage solution owing to their flexibility to supply power to a broad range of applications. Lithium-polymer (LiPo) batteries, a subcategory of the widely adopted lithium-ion batteries, exhibit heightened safety properties due to the utilization of a solid or...

Full description

Bibliographic Details
Main Authors: Jan Elmo T. Angco, Gio Roman R. Rito, Marcel Roy Domalanta, Julie Anne D.R. Paraggua
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2023-10-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/13697
_version_ 1797659983649701888
author Jan Elmo T. Angco
Gio Roman R. Rito
Marcel Roy Domalanta
Julie Anne D.R. Paraggua
author_facet Jan Elmo T. Angco
Gio Roman R. Rito
Marcel Roy Domalanta
Julie Anne D.R. Paraggua
author_sort Jan Elmo T. Angco
collection DOAJ
description Batteries have been a forefront energy storage solution owing to their flexibility to supply power to a broad range of applications. Lithium-polymer (LiPo) batteries, a subcategory of the widely adopted lithium-ion batteries, exhibit heightened safety properties due to the utilization of a solid or gel polymer that acts as a separator and electrolyte. In this study, a pseudo-2D electrochemical coupled thermal multiphysics model of lithium cobalt oxide (LCO) cathode, graphite anode, and poly(vinylidene fluoride-hexafluoropropylene) (PVdF-HFP) polymer electrolyte LiPo battery was developed using COMSOL Multiphysics®. To improve the model accuracy and battery performance, ten parameters for energy density optimization were screened via sensitivity analysis, and the five most sensitive parameters were selected for optimization. Simultaneous optimization of these parameters through the Constrained Optimization By Linear Approximation (COBYLA) optimization algorithm resulted in a ~25 % increase in energy density and a ~21 % increase in power density for both 1 C and 0.5 C discharge rates without significantly increasing heat generation during discharge. These increases are attributed to the maximization of anode active material and the minimization of electrode and separator thicknesses. The developed model can be integrated into the experimental design of batteries to improve target performance applications such as energy and power. It can be further employed to optimize various battery chemistries and configurations.
first_indexed 2024-03-11T18:23:08Z
format Article
id doaj.art-83c77f5fb8a445e9b24558f1d2fd4b96
institution Directory Open Access Journal
issn 2283-9216
language English
last_indexed 2024-03-11T18:23:08Z
publishDate 2023-10-01
publisher AIDIC Servizi S.r.l.
record_format Article
series Chemical Engineering Transactions
spelling doaj.art-83c77f5fb8a445e9b24558f1d2fd4b962023-10-14T22:44:24ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162023-10-01103Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer BatteryJan Elmo T. AngcoGio Roman R. RitoMarcel Roy DomalantaJulie Anne D.R. ParagguaBatteries have been a forefront energy storage solution owing to their flexibility to supply power to a broad range of applications. Lithium-polymer (LiPo) batteries, a subcategory of the widely adopted lithium-ion batteries, exhibit heightened safety properties due to the utilization of a solid or gel polymer that acts as a separator and electrolyte. In this study, a pseudo-2D electrochemical coupled thermal multiphysics model of lithium cobalt oxide (LCO) cathode, graphite anode, and poly(vinylidene fluoride-hexafluoropropylene) (PVdF-HFP) polymer electrolyte LiPo battery was developed using COMSOL Multiphysics®. To improve the model accuracy and battery performance, ten parameters for energy density optimization were screened via sensitivity analysis, and the five most sensitive parameters were selected for optimization. Simultaneous optimization of these parameters through the Constrained Optimization By Linear Approximation (COBYLA) optimization algorithm resulted in a ~25 % increase in energy density and a ~21 % increase in power density for both 1 C and 0.5 C discharge rates without significantly increasing heat generation during discharge. These increases are attributed to the maximization of anode active material and the minimization of electrode and separator thicknesses. The developed model can be integrated into the experimental design of batteries to improve target performance applications such as energy and power. It can be further employed to optimize various battery chemistries and configurations.https://www.cetjournal.it/index.php/cet/article/view/13697
spellingShingle Jan Elmo T. Angco
Gio Roman R. Rito
Marcel Roy Domalanta
Julie Anne D.R. Paraggua
Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
Chemical Engineering Transactions
title Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
title_full Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
title_fullStr Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
title_full_unstemmed Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
title_short Multiphysics Modelling, Parameter Sensitivity Analysis, and Optimization of a Lithium Polymer Battery
title_sort multiphysics modelling parameter sensitivity analysis and optimization of a lithium polymer battery
url https://www.cetjournal.it/index.php/cet/article/view/13697
work_keys_str_mv AT janelmotangco multiphysicsmodellingparametersensitivityanalysisandoptimizationofalithiumpolymerbattery
AT gioromanrrito multiphysicsmodellingparametersensitivityanalysisandoptimizationofalithiumpolymerbattery
AT marcelroydomalanta multiphysicsmodellingparametersensitivityanalysisandoptimizationofalithiumpolymerbattery
AT julieannedrparaggua multiphysicsmodellingparametersensitivityanalysisandoptimizationofalithiumpolymerbattery