Computational analysis of magnetized bio-convective partially ionized flow of second-order fluid on a bidirectional porous stretching sheet with Cattaneo–Christov theory

Author:

Khan Muhammad Naveed1,Khan Aamir Abbas2,Alhowaity Awatif3,Masmoudi Atef4,Daradkeh Yousef Ibrahim5,Afikuzzaman Mohammad6

Affiliation:

1. School of Energy and Power Engineering, Jiangsu University , PO Box 28, Zhenjiang, Jiangsu 212013 , China

2. Department of Mathematics, University of Sargodha , Sargodha 40100 , Pakistan

3. Department of Mathematics, University of Jeddah , Jeddah 21959 , Saudi Arabia

4. College of Computer Science, King Khalid University , Abha 62521 , Saudi Arabia

5. Department of Computer Engineering and Information, College of Engineering in Wadi Alddawasir, Prince Sattam bin Abdulaziz University , Al-Kharj 16273 , Saudi Arabia

6. UniSA STEM, University of South Australia , Adelaide, SA 5000 , Australia

Abstract

Abstract After applying a magnetic field, the behavior of the partly ionized liquids is completely different from that of the ordinary fluids. In this study, we concentrated on the Cattaneo–Christov heat flux model-based three-dimensional partly ionized bio-convective flow of a second-order fluid on a bidirectional permeable stretching surface. The development of the thermal and solutal flow models takes into account the impacts of non-uniform sources and sinks, Ohmic viscous dissipation, and chemical reactions. In addition, the surface boundary effects of electron and ion collisions with convective boundary conditions are seen. The mathematical flow model is transformed appropriately to create an ordinary differential equations, which is then numerically solved with MATLAB’s BVP4C approach. To demonstrate the physical relevance of the flow field along various developing parameters, graphical and tabular results are created. It is noteworthy to note that while fluid temperature decreases with stronger values of the second-order fluid parameter, fluid velocity improves in both directions. In addition, it is shown that raising the thermal and concentration relaxation parameters, respectively, causes a drop in the fluid temperature and nanoparticle concentration.

Funder

Deanship of Scientific Research, King Khalid University

Publisher

Oxford University Press (OUP)

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