Entropy generation analysis of natural convective radiative second grade nanofluid flow between parallel plates in a porous medium

被引:0
作者
K. Ramesh
O. Ojjela
机构
[1] Defence Institute of Advanced Technology,Department of Applied Mathematics
来源
Applied Mathematics and Mechanics | 2019年 / 40卷
关键词
nanofluid; thermophoresis; Brownian motion; shooting method; thermal radiation; O357.5; 3; 65L06; 74A15; 76A05; 76R10; 82C35; 76S05;
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学科分类号
摘要
The present article explores the entropy generation of radiating viscoelastic second grade nanofluid in a porous channel confined between two parallel plates. The boundaries of the plates are maintained at distinct temperatures and concentrations while the fluid is being sucked and injected periodically through upper and lower plates. The buoyancy forces, thermophoresis and Brownian motion are also considered due to the temperature and concentration differences across the channel. The system of governing partial differential equations has been transferred into a system of ordinary differential equations (ODEs) by appropriate similarity relations, and a shooting method with the fourth-order Runge-Kutta scheme is used for the solutions. The results are analyzed in detail for dimensionless velocity components. The temperature, concentration distributions, the entropy generation number, and the Bejan number corresponding to various fluid and geometric parameters are shown graphically. The skin friction, heat and mass transfer rates are presented in the form of tables. It is noticed that the temperature profile of the fluid is enhanced with the Brownian motion, whereas the concentration profile of the fluid is decreased with the thermophoresis parameter, and the entropy and Bejan numbers exhibit the opposite trend for the suction and injection ratio.
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页码:481 / 498
页数:17
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