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Chemically reactive viscoelastic fluid flow in presence of nano particle through porous stretching sheet

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posted on 2025-05-10, 14:56 authored by S. M. Arifuzzaman, Md Shakhaoath Khan, Khan Enaet Hossain, Md Sirajul Islam, Sonia Akter, Raju Roy
Present study concerned with the theoretical work with numerical investigation of MHD transient naturally convective and higher order chemically reactive viscoelastic fluid with nano-particle flow through a vertical porous stretching sheet with the effects of heat generation and radiation absorption. A boundary layer approximation is carried out to develop a flow model representing time dependent momentum, energy, and concentration equations. The governing model equations in partial differential equations (PDEs) form were transformed into a set of nonlinear ordinary differential equation (ODEs) by using non-similar technique. Explicit Finite Difference Method (EFDM) was employed by implementing an algorithm in Compaq Visual Fortran 6.6a to solve the obtained set of nonlinear coupled ODEs. For optimizing the system parameter and accuracy of the system, the stability and convergence analysis (SCA) was carried out. It was observed that with initial boundary conditions, for Δt = 0.005, ΔX =0.20 and ΔY =0.25, the system converged at Prandtl number, P<sub>r</sub> ≥ 0.253 and Lewis number, L<sub>e</sub> ≥ 0.16. The velocity, temperature and concentration flow are investigated and shown graphically with the effect of system parameters and numerical comparison.

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Journal title

Frontiers in Heat and Mass Transfer

Volume

9

Article number

5

Publisher

Global Digital Central

Language

  • en, English

College/Research Centre

Faculty of Engineering and Built Environment

School

School of Engineering

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© The Author(s) 2017. This article is distributed under the terms of the Creative Commons Attribution 3.0 International License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.

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