Computer simulation of Cu:AlOOH/water in a microchannel heat sink using a porous media technique and solved by numerical analysis AGM and FEM

Extensive improvements in small-scale thermal systems in electronic circuits,automotive industries,and microcomputers conduct the study of microsystems as essential.Flow and thermic field characteristics of the coherent nanofluid-guided microchannel heat sink are described in this perusal.The porous...

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Published in:力学快报(英文版) Vol. 13; no. 3; pp. 177 - 187
Main Authors: S.A.Abdollahi, P.Jalili, B.Jalili, H.Nourozpour, Y.Safari, P.Pasha, D.D.Ganji
Format: Journal Article
Language:English
Published: Master student-Mechanical Engineering-Energy conversion,Faculty of Mechanical Engineering,Tabriz University,Tabriz,Iran%Engineering,Faculty of Engineering,North Tehran Branch,Islamic Azad University,Tehran,Iran%Department of Mechanical Engineering,Noshirvani University of Technology,Babol,Iran%Department of Mechanical engineering Mazandaran,University of science and Technology,Babol,Iran 2023
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Summary:Extensive improvements in small-scale thermal systems in electronic circuits,automotive industries,and microcomputers conduct the study of microsystems as essential.Flow and thermic field characteristics of the coherent nanofluid-guided microchannel heat sink are described in this perusal.The porous media approximate was used to search the heat distribution in the expanded sheet and Cu:γ-AlOOH/water.A hybrid blend of Boehme copper and aluminum nanoparticles is evaluated to have a cooling effect on the microchannel heat sink.By using Akbari Ganji and finite element methods,linear and non-linear differential equations as well as simple dimensionless equations have been analyzed.The purpose of this study is to investigate the fluid and thermal parameters of copper hybrid solution added to water,such as Nusselt number and Darcy number so that we can reach the best cooling of the fluid.Also,by installing a piece of fin on the wall of the heat sink,the coefficient of conductive heat transfer and displacement heat transfer with the surrounding air fluid increases,and the efficiency of the system increases.The overall results show that expanding values on the NP(series heat transfer fluid system maximizes performance with temperatures)volume division of copper,as well as boehmite alumina particles,lead to a decrease within the stream velocity of the Cu:AlOOH/water.Increasing the volume fraction of nanoparticles in the hybrid mixture decreases the temperature of the solid surface and the hybrid nanofluid.The Brownian movement improves as the volume percentage of nanoparticles in the hybrid mixture grows,spreading the heat across the environment.As a result,heat transmission rates rise.As the Darcy number increases,the thermal field for solid sections and Cu:AlOOH/water improves.
ISSN:2095-0349
DOI:10.3969/j.issn.2095-0349.2023.03.004