Entropy generation approach with heat and mass transfer in magnetohydrodynamic stagnation point flow of a tangent hyperbolic nanofluid

被引:0
|
作者
Tiehong ZHAO [1 ]
M.R.KHAN [2 ,3 ]
Yuming CHU [4 ]
A.ISSAKHOV [5 ,6 ]
R.ALI [7 ]
S.KHAN [7 ]
机构
[1] Department of Mathematics, Hangzhou Normal University
[2] LSEC and ICMSEC, Academy of Mathematics and Systems Science,Chinese Academy of Sciences
[3] School of Mathematical Science, University of Chinese Academy of Sciences
[4] Department of Mathematics, Huzhou University
[5] Department of Mathematical and Computer Modeling, Al-Farabi Kazakh National University
[6] Department of Mathematical and Computer Modeling, Kazakh British-Technical University
[7] School of Mathematics and Statistics, Central South University
关键词
tangent hyperbolic fluid; magnetohydrodynamic(MHD); viscous dissipation; stagnation point flow; heat generation/absorption; thermal radiation;
D O I
暂无
中图分类号
O361.3 [磁流体力学];
学科分类号
080103 ;
摘要
This work examines the entropy generation with heat and mass transfer in magnetohydrodynamic(MHD) stagnation point flow across a stretchable surface. The heat transport process is investigated with respect to the viscous dissipation and thermal radiation, whereas the mass transport is observed under the influence of a chemical reaction. The irreversibe factor is measured through the application of the second law of thermodynamics. The established non-linear partial differential equations(PDEs) have been replaced by acceptable ordinary differential equations(ODEs), which are solved numerically via the bvp4 c method(built-in package in MATLAB). The numerical analysis of the resulting ODEs is carried out on the different flow parameters, and their effects on the rate of heat transport, friction drag, concentration, and the entropy generation are considered. It is determined that the concentration estimation and the Sherwood number reduce and enhance for higher values of the chemical reaction parameter and the Schmidt number, although the rate of heat transport is increased for the Eckert number and heat generation/absorption parameter, respectively. The entropy generation augments with boosting values of the Brinkman number, and decays with escalating values of both the radiation parameter and the Weissenberg number.
引用
收藏
页码:1205 / 1218
页数:14
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