A scientific report on the flow of Maxwell fluid with heat transfer in vertical oscillating cylinder

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DOI:

https://doi.org/10.33959/cuijca.v1i1.18

Abstract

The nonlinear nature of viscoelastic non-Newtonian fluids, introduce a unique challenge to physicists and mathematicians. By developing and utilizing viscoelastic models can play a special role in saving and treatments of every living species and to describe its particular characteristics. In the past three decades, viscoelastic fluid models are focused to improve its accuracy and reliability. Some rate type viscoelastic fluids include Maxwell fluid which effects in relaxation time. Such effect of relaxation time cannot be predicted by differential-type fluids. The polymers of low molecular weight are usefully described by Maxwell model. However, a keen interest of the researchers is seen in studying rate type fluids due to the fact that they incorporate both the elastic nature and memory behaviour together. In this article, viscoelastic Maxwell fluid is considered in cylindrical tube together with heat transfer due to convection caused by the buoyancy force. This problem is modelled using the classical approach and then solved for exact solution using joint the Laplace and Hankel transforms. Effects of pertinent parameters on Maxwell fluid velocity have been shown graphically. Behaviour of temperature is studied for various values of Prandtl number.

Author Biography

Nadeem Ahmad Sheikh, City University of Science and Information Technology, Peshawar

Mr. Nadeem Ahmad Sheikh is Lecturer in Department of Mathematics. His Area of research covers Exact Solutions of fluid flow problems, fractional derivatives, nanofluids, heat and mass transfer, porous media and MHD.

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Published

2019-07-08

How to Cite

Khan, N., Ali, F., Khan, I., & Sheikh, N. A. (2019). A scientific report on the flow of Maxwell fluid with heat transfer in vertical oscillating cylinder. City University International Journal of Computational Analysis, 1(1), 10–19. https://doi.org/10.33959/cuijca.v1i1.18

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