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Thermal management of battery cell module using a hybrid nanofluid filled inverted right-angled porous triangular cavity through natural convection.

Authors :
Kumar, A. Vanav
Chamkha, Ali J.
Doley, Swapnali
Jino, L.
Jacob, Ashwin
Manoj, E.
Suthan, S. Arockia
Jayaganthan, A.
Source :
Journal of Thermal Analysis & Calorimetry. Sep2024, Vol. 149 Issue 17, p9639-9661. 23p.
Publication Year :
2024

Abstract

The study investigates the approach to enhance the thermal management of battery cell module by attaching number of inverted triangular cavity to its casing. A sinusoidal heating is considered to battery cell module or a left wall of the cavity. The sinusoidal heated region is considered to be a function of amplitude ratio. The objective is to transfer the heat from module using natural convection process. The enhanced heat transfer is possible by adopting hybrid nanofluid in a triangular cavity due to its improved thermophysical properties. Thus, the investigation on natural convection heat transfer, fluid flow, and irreversibility within an inverted right-angled triangular porous cavity is conducted. Numerical results are obtained through an own-house FORTRAN coding, that uses the streamfunction–vorticity algorithm. The numerical results are derived for various values with Rayleigh number ( 10 3 - 10 6 ), Darcy number ( 10 - 5 - 10 - 1 ) , Hartmann number ( 0 - 50) , amplitude ratio ( 0.0 - 0.9 ) and volume fraction of nanoparticles ( 0.01 - 0.04 ), respectively. The irreversibility and flow results are compared with the various hybrid nanofluids. The study indicates that opting inverted right-angled triangular cavity rather than a square shape leads to an improvement in heat transfer. Accordingly, this inverted right-angled triangular cavity natural convective cooling can be considered as optimum design with the battery cell module for improved thermal management. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13886150
Volume :
149
Issue :
17
Database :
Academic Search Index
Journal :
Journal of Thermal Analysis & Calorimetry
Publication Type :
Academic Journal
Accession number :
179711782
Full Text :
https://doi.org/10.1007/s10973-024-13394-z