Computational optimization for the deposition of bioconvection thin Oldroyd-B nanofluid with entropy generation

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作者
Auwalu Hamisu Usman
Noor Saeed Khan
Usa Wannasingha Humphries
Zafar Ullah
Qayyum Shah
Poom Kumam
Phatiphat Thounthong
Waris Khan
Attapol Kaewkhao
Amyia Bhaumik
机构
[1] King Mongkut’s University of Technology Thonburi (KMUTT),Department of Mathematics, Faculty of Science
[2] King Mongkut’s University of Technology Thonburi (KMUTT),KMUTTFixed Point Research Laboratory, Room SCL 802 Fixed Point Laboratory, Science Laboratory Building, Department of Mathematics, Faculty of Science
[3] Bayero University,Department of Mathematical Sciences
[4] Kano,Department of Mathematics, Division of Science and Technology
[5] University of Education,Center of Excellence in Theoretical and Computational Science (TaCS
[6] King Mongkut’s University of Technology Thonburi (KMUTT),CoE), Science Laboratory Building, Faculty of Science
[7] University of Engineering and Technology,Department of Basic Sciences and Islamiyat
[8] Hazara University,Department of Mathematics and Statistics
[9] Lincoln University College (LUC),Faculty of Engineering
[10] China Medical University,Department of Medical Research, China Medical University Hospital
[11] King Mongkut’s University of Technology North Bangkok,Department of Teacher Training in Electrical Engineering, Faculty of Technical Education, Renewable Energy Research Centre
[12] Chiang Mai University,Research Center in Mathematics and Applied Mathematics, Department of Mathematics, Faculty of Science
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摘要
The behavior of an Oldroyd-B nanoliquid film sprayed on a stretching cylinder is investigated. The system also contains gyrotactic microorganisms with heat and mass transfer flow. Similarity transformations are used to make the governing equations non-dimensional ordinary differential equations and subsequently are solved through an efficient and powerful analytic technique namely homotopy analysis method (HAM). The roles of all dimensionless profiles and spray rate have been investigated. Velocity decreases with the magnetic field strength and Oldroyd-B nanofluid parameter. Temperature is increased with increasing the Brownian motion parameter while it is decreased with the increasing values of Prandtl and Reynolds numbers. Nanoparticle’s concentration is enhanced with the higher values of Reynolds number and activation energy parameter. Gyrotactic microorganism density increases with bioconvection Rayleigh number while it decreases with Peclet number. The film size naturally increases with the spray rate in a nonlinear way. A close agreement is achieved by comparing the present results with the published results.
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