VARIATION OF THERMAL CONDUCTIVITY AND HEAT ON MAGNETIC MAXWELL HYBRID NANOFLUID VISCOUS FLOW IN A POROUS SYSTEM WITH HIGHER-ORDER CHEMICAL REACT
-
Published:2023
Issue:2
Volume:14
Page:17-32
-
ISSN:2151-4798
-
Container-title:Special Topics & Reviews in Porous Media: An International Journal
-
language:en
-
Short-container-title:Special Topics Rev Porous Media
Author:
Rashad Ahmed M.,Nafe Mohamed Abdelhady,Eisa Dalia A.
Abstract
More demanding applications of nanofluids are of tremendous interest in research and engineering. The implementation of nanotechnology in modern science has prompted researchers to examine nanofluid models from a variety of directions. The current study's major goal is to characterize the impacts of an incompressible, time-independent, viscous, two-dimensional, and laminar Maxwell hybrid nanofluid flow in a porous system under the effect of magnetic field, thermal conductivity, and heat sink/source over a stretching sheet. The hybrid nanofluid is created by immersing various silver and titanium dioxide nanoparticles in a water simple fluid. Additionally, the actions of Joule heating, Maxwell parameter, and higher-order chemical reaction are considered in this model. Within the shooting mechanism, the resulting nonlinear ordinary differential equations are numerically computed utilizing the RKF45 solver given in the computational MATLAB program. It is found that heat and mass transfer are diminished by increasing the magnetic field, Maxwell parameter, and permeability of porous media. Furthermore, an increase in the order of chemical reactions increases mass transfer. Increasing thermal conductivity and heat source/sink increases mass transfer but decreases heat transfer. The created thermal flow model's results have applications in cooling systems, thermal engineering, nuclear heating, heating/cooling of diverse appliances, safety in astronomical equipment, solar problems, magnetic retention, and so on.
Subject
General Engineering,General Materials Science
Reference44 articles.
1. Alshehri, N.A., Abidi, A., Khan, M.R., Reddy, Y.D., Rasheed, S., Alali, E., and Galal, A.M., Unsteady Convective MHD Flow and Heat Transfer of a Viscous Nanofluid across a Porous Stretching/Shrinking Surface: Existence of Multiple Solutions, Crystals, vol. 11, no. 11, Article ID 1359, 2021. 2. Abdelhafez, M.A., Awad, A., Nafe, M.A., and Eisa, D.A., Flow of Mixed Convection for Radiative and Magnetic Hybrid Nanofluid in a Porous Material with Joule Heating, Heat Transf., vol. 51, no. 4, pp. 2995-3017, 2021a. 3. Abdelhafez, M.A., Awad, A., Nafe, M.A., and Eisa, D.A., Time-Dependent Viscous Flow of Higher-Order Reactive MHD Maxwell Nanofluid with Joule Heating in a Porous Regime, Wave Random Complex, 2021b. DOI: 10.1080/17455030.2021.1927237 4. Abdelhafez, M.A., Awad, A., Nafe, M.A., and Eisa, D.A., Effects of Yield Stress and Chemical Reaction on Magnetic Two-Phase Nanofluid Flow in a Porous Regime with Thermal Ray, Indian J. Phys., vol. 96, pp. 3579-3589, 2022. 5. Abel, M.S., Tawade, J.V., and Nandeppanavar, M.M., MHD Flow and Heat Transfer for the Upper-Convected Maxwell Fluid over a Stretching Sheet, Meccanica, vol. 47, pp. 385-393, 2012.
Cited by
4 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|