Effect of Phase Change Materials on Lithium-Ion Plate Batteries

This paper presents the simulations of the cooling system of a battery pack (BTPC) consisting of lithium-ion (LIN) plate batteries. The BTPC includes six battery cells (BTCL) in two rows with three BTCLs, which are placed in a channel with one inlet and two outlets. The laminar and steady airflow fl...

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Main Authors: Jawed Mustafa, Saeed Alqaed, Shahid Husain, Basharat Jamil, Mohsen Sharifpur, Goshtasp Cheraghian
Format: Article
Language:English
Published: MDPI AG 2023-01-01
Series:Batteries
Subjects:
Online Access:https://www.mdpi.com/2313-0105/9/1/60
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author Jawed Mustafa
Saeed Alqaed
Shahid Husain
Basharat Jamil
Mohsen Sharifpur
Goshtasp Cheraghian
author_facet Jawed Mustafa
Saeed Alqaed
Shahid Husain
Basharat Jamil
Mohsen Sharifpur
Goshtasp Cheraghian
author_sort Jawed Mustafa
collection DOAJ
description This paper presents the simulations of the cooling system of a battery pack (BTPC) consisting of lithium-ion (LIN) plate batteries. The BTPC includes six battery cells (BTCL) in two rows with three BTCLs, which are placed in a channel with one inlet and two outlets. The laminar and steady airflow flows in the channel. Phase-change material (PCM)-filled rectangular cubic enclosures enclose every BTCL. Transiently adjusting the cavity aspect ratio (AR) every 6000 s is how this investigation is conducted. For four values of AR, the values of the PCM volume percentage surrounding each BTCL in the BTPC, and the temperature of each BTCL are calculated. The simulations are performed using the FEM and COMSOL software. The results demonstrate that the maximum changes in temperature of the battery (TOB) pack by changing the AR occur when the TOB pack is reduced. The maximum temperature reduction at this time is 1.88 °C which occurs between AR2 and AR4 at 720 s. The maximum temperature corresponds to AR3 and AR4 and the minimum one is related to AR1 and AR2. From 1260 to 3500 s, the effect of AR on PCM volume fraction is maximal. The value of solid PCM for AR1 and AR2 is higher than that for AR3 and AR4 at different times. Additionally, an increment in the value of the AR enhances the amount of channel pressure drop by 14%.
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spelling doaj.art-d1406ed6f52244c488a318c0e8d6df502023-11-30T21:13:06ZengMDPI AGBatteries2313-01052023-01-01916010.3390/batteries9010060Effect of Phase Change Materials on Lithium-Ion Plate BatteriesJawed Mustafa0Saeed Alqaed1Shahid Husain2Basharat Jamil3Mohsen Sharifpur4Goshtasp Cheraghian5Mechanical Engineering Department, College of Engineering, Najran University, P.O. Box 1988, Najran 61441, Saudi ArabiaMechanical Engineering Department, College of Engineering, Najran University, P.O. Box 1988, Najran 61441, Saudi ArabiaDepartment of Mechanical Engineering, Zakir Husain College of Engineering and Technology, Aligarh Muslim University, Aligarh 202002, IndiaComputer Science and Statistics Department, Universidad Rey Juan Carlos, Mostoles, 28933 Madrid, SpainDepartment of Mechanical and Aeronautical Engineering, University of Pretoria, Pretoria 0002, South AfricaIndependent Researcher, 14169 Berlin, GermanyThis paper presents the simulations of the cooling system of a battery pack (BTPC) consisting of lithium-ion (LIN) plate batteries. The BTPC includes six battery cells (BTCL) in two rows with three BTCLs, which are placed in a channel with one inlet and two outlets. The laminar and steady airflow flows in the channel. Phase-change material (PCM)-filled rectangular cubic enclosures enclose every BTCL. Transiently adjusting the cavity aspect ratio (AR) every 6000 s is how this investigation is conducted. For four values of AR, the values of the PCM volume percentage surrounding each BTCL in the BTPC, and the temperature of each BTCL are calculated. The simulations are performed using the FEM and COMSOL software. The results demonstrate that the maximum changes in temperature of the battery (TOB) pack by changing the AR occur when the TOB pack is reduced. The maximum temperature reduction at this time is 1.88 °C which occurs between AR2 and AR4 at 720 s. The maximum temperature corresponds to AR3 and AR4 and the minimum one is related to AR1 and AR2. From 1260 to 3500 s, the effect of AR on PCM volume fraction is maximal. The value of solid PCM for AR1 and AR2 is higher than that for AR3 and AR4 at different times. Additionally, an increment in the value of the AR enhances the amount of channel pressure drop by 14%.https://www.mdpi.com/2313-0105/9/1/60lithium-ion batteryforced airflowPCMaspect ratiocooling
spellingShingle Jawed Mustafa
Saeed Alqaed
Shahid Husain
Basharat Jamil
Mohsen Sharifpur
Goshtasp Cheraghian
Effect of Phase Change Materials on Lithium-Ion Plate Batteries
Batteries
lithium-ion battery
forced airflow
PCM
aspect ratio
cooling
title Effect of Phase Change Materials on Lithium-Ion Plate Batteries
title_full Effect of Phase Change Materials on Lithium-Ion Plate Batteries
title_fullStr Effect of Phase Change Materials on Lithium-Ion Plate Batteries
title_full_unstemmed Effect of Phase Change Materials on Lithium-Ion Plate Batteries
title_short Effect of Phase Change Materials on Lithium-Ion Plate Batteries
title_sort effect of phase change materials on lithium ion plate batteries
topic lithium-ion battery
forced airflow
PCM
aspect ratio
cooling
url https://www.mdpi.com/2313-0105/9/1/60
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