Case Studies in Thermal Engineering | |
Dynamics of radiative Eyring-Powell MHD nanofluid containing gyrotactic microorganisms exposed to surface suction and viscosity variation | |
M.A. Aljohani1  Fakhirah Alotaibi2  Ilyas Khan3  Abdulaziz H. Alghtani4  Ahmed M. Galal5  Awatef Abidi6  Naseer M. Khan7  | |
[1] Corresponding author.;Higher School of Sciences and Technology of Hammam Sousse, Sousse University, Tunisia;Research Laboratory of Metrology and Energetic Systems, National Engineering School, Energy Engineering Department, Monastir University, Monastir City, Tunisia;Department of Mathematics, College of Science Al-Zulfi, Majmaah University, Al-Majmaah, 11952, Saudi Arabia;Department of Mathematics, Faculty of Applied Sciences, Umm Al-Qura University, Makkah, Saudi Arabia;Physics Department, College of Sciences Abha, King Khalid University, Saudi Arabia;School of Mathematics and Statistics, Central South University Changsha, 410083, Hunan, PR China; | |
关键词: Eyring powell nanofluid; Bioconvection; Porous surface; Thermal radiations; Numerical analysis; | |
DOI : | |
来源: DOAJ |
【 摘 要 】
Inspired by the widespread use of bioconvective nanofluids used in the formation of microbial fuel cells, microbial oil extraction processes, the food industry and more. Therefore, a two-dimensional flow of Eyring-Powell's nanofluid containing gyrotactic microorganisms has been developed by moving across a porous plate that is exposed to thermal radiation and surface suction. The Buongiorno nanofluid model is introduced to incorporate the energy and momentum equations, while the Rosseland nonlinear approximation was introduced to incorporate solar radiation properties into the energy equations. The MATLAB ‘bvp4c’ scheme was implemented to find a numerical solution to the problem. The influence of various physical parameters on the velocity, temperature and concentration distribution is analyzed. Suction lowers the temperature but increases the heat transfer rate. In addition, the suction velocity can be compensated by implanting a magnetic field in the flow field. With the enhancement of the Brownian movement and the thermophoretic movement, the temperature distribution of the brown movement increases faster than the temperature distribution of the thermophoretic movement, as does the volume fraction of the nanoparticles. The opposite trend can be observed as the Peclet number Pe increases. The suction reduces the concentration of the microorganisms and the magnetic field increases the concentration of the microorganisms. The higher the Lewis number, the lower the concentration of microorganisms. The Biot number Bi can increase the temperature and concentration of nanoparticles.
【 授权许可】
Unknown