Heatline and Massline Visualization of Hydromagnetic Double Diffusive Convective Flow of Nanofluid Within a Porous Trapezoidal Cavity
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Published:2021-06-01
Issue:2
Volume:10
Page:270-284
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ISSN:2169-432X
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Container-title:Journal of Nanofluids
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language:en
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Short-container-title:j nanofluids
Author:
Saha Bikash C.1,
Mahapatra T. R.1,
Pal Dulal1
Affiliation:
1. Department of Mathematics, Visva-Bharati (A Central University), Institute of Science, Santiniketan 731235, West-Bengal, India
Abstract
Double diffusive convective flow of nanofluid within a porous trapezoidal cavity of various aspect ratios consisting of Al2O3 nanoparticle in the presence of applied magnetic field in the direction perpendicular to the parallel top and bottom walls is analysed.
The side walls of the cavity are maintained at constant temperature and concentration while its horizontal walls are insulated and impermeable. The irregular physical domain of the problem is transformed to a regular unit square computational domain. The governing equations have been solved
by second order of finite difference method (FDM). Based upon numerical predictions, the effects of pertinent parameters such as Rayleigh number, Darcy number, aspect ratio, solid volume fraction and inclination angle on the flow and temperature fields and the heat transfer performance of
the enclosure are examined. It is found that the intensity of heat and mass transfer increases with the increase in the Darcy number and aspect ratio. It is also observed that as the solid volume fraction increases there is increase in the average Nusselt number but reverse effect is observed
on the average Sherwood number.
Publisher
American Scientific Publishers
Subject
Fluid Flow and Transfer Processes,Mechanical Engineering
Cited by
2 articles.
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1. Turbulent heat and mass lines in finite difference regime;ZAMM - Journal of Applied Mathematics and Mechanics / Zeitschrift für Angewandte Mathematik und Mechanik;2023-10-14
2. Turbulent cylindrical heat flow visualization in free convection regime;Indian Journal of Physics;2023-06-26