4.7 Article

Thermally radioactive bioconvection flow of Carreau nanofluid with modified Cattaneo-Christov expressions and exponential space-based heat source

Journal

ALEXANDRIA ENGINEERING JOURNAL
Volume 60, Issue 3, Pages 3073-3086

Publisher

ELSEVIER
DOI: 10.1016/j.aej.2021.01.050

Keywords

Carreau nanofluid; Cattaneo-Christov heat/mass flux; Thermal radiation; Activation energy; Shooting scheme

Funding

  1. National Natural Science Foundation of China [11971142, 11871202, 61673169, 11701176, 11626101, 11601485]

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The research explores a new approach for heat transfer and biomedicine/bioengineering using nanoparticles in base fluid. Numerical simulations were conducted to examine the heat/mass transportation of nanofluid and bioconvection characteristics under various thermal consequences. The study reveals the effects of different parameters on velocity, temperature distribution, concentration field, and microorganism profile in the nanofluid flow.
The nanoparticles proved a motivating research area in the fourth generation of the world due to their extensive use in science and infrastructure, such as vehicle cooling, higher heat transfer rates in microchips, food manufacturing, biotechnology, biochemistry, transportation, metrology and nuclear reactors. Dispersing the nanoparticles within base fluid is a newly approach for implementations of heat transfer and biomedicine/bioengineering. The current determination is committed to explore the features of bioconvection in Carreau nanofluid flow under the influence of various thermal consequences. The flow is originated by a stretched cylinder. The characteristics of Cattaneo-Christov heat and mass flux are applied to examine the heat/mass transportation of nano fluid. The effects of thermal radiation and activation energy are also considered. The consequences of Brownian movement and thermophoresis features are analyzed by incorporating Buongiorno's nanofluid model. The governing partial differential equations are transmuted into the structure of nonlinear ordinary differential equations by introducing suitable transformation. The shooting technique is used to achieve the numerical simulations of nonlinear system. The physical impacts of prominent parameters on velocity, temperature distribution, concentration field and microorganisms profile are examined and captured graphically. The numerical outcomes against various flow quantities are also presented in tabular form. The results convey that a higher temperature profile is observed with larger values of thermal Biot number, exponential base sink parameter and thermal relaxation parameter while a decrement in temperature is noticed with increasing mixed convection parameter. The concentration profile shows an increasing trend with mass concentration parameter and concentration relaxation parameter. Moreover, the microorganism field decline with Peclet number and bioconvection Lewis number. (C) 2021 THE AUTHORS. Published by Elsevier BV on behalf of Faculty of Engineering, Alexandria University. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

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