MHD CASSON FLUID STAGNATION POINT FLOW AND HEAT TRANSFER OVER AN EXPONENTIALLY STRETCHING SURFACE IN PRESENCE OF UNIFORM HEAT SOURCE AND SINK WITH SUCTION EFFECT

IF 0.3 Q4 MULTIDISCIPLINARY SCIENCES
B. Lakshmi, G. Pradeep, C. B. Mohan
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引用次数: 0

Abstract

The present study reveals the analysis of steady mixed convection MHD stagnation point flow of Casson fluid of non-Newtonian nature and Heat transfer over an exponentially stretching surface where the consequence of uniform heat source and sink are taken in to consideration. The presiding Non-linear Partial differential equations and the corresponding boundary conditions are formulated and thus transformed into pair of non-linear ordinary differential equations. The equations thus obtained are deciphered using Runge-Kutta fourth - order method with the help of MATLAB software. The results obtained for Skin friction coefficient and heat transfer rate for the case of Newtonian fluid are determined, which are in good harmony with the previously proclaimed results of other researchers.The impact of physical quantities such as Casson parameter, buoyancy parameter, Hartmann number, Prandtl number, heat source and sink, Suction parameter, on the fluid velocity and temperature are discussed through graphs for both assisting and opposing flow. The variation in Skin friction coefficient and Nusselt number are tabulated for various values of Hartmann number. Divergence in the velocity profile is observed for increase in Suction for two different values of Velocity ratio parameter. As Skin friction coefficient escalates with suction parameter indicating the exertion of drag force by the surface on the fluid flow. Also, the study reveals that the impact of Hartmann number is to minimize the boundary layer separation.
具有吸力效应的均匀热源和吸汇存在时,MHD卡森流体在指数拉伸表面上的滞止点流动和换热
本文研究了非牛顿性质卡森流体的稳态混合对流MHD滞止点流动和指数拉伸表面上的传热问题,其中考虑了热源和汇均匀的影响。将主非线性偏微分方程和相应的边界条件转化为一对非线性常微分方程。在MATLAB软件的帮助下,利用龙格-库塔四阶法对得到的方程进行了解译。确定了牛顿流体的表面摩擦系数和换热率的计算结果,与前人的研究结果基本一致。通过图表分析了卡森参数、浮力参数、哈特曼数、普朗特数、热源和吸力参数等物理量对流体速度和温度的影响。对于不同的哈特曼数,表列了表面摩擦系数和努塞尔数的变化。在两种不同的速比参数值下,随着吸力的增加,速度分布出现了发散。表面摩擦系数随着吸力参数的增大而增大,吸力参数表示表面对流体流动施加的阻力。研究还表明,哈特曼数的影响是使边界层分离最小化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Science and Arts
Journal of Science and Arts MULTIDISCIPLINARY SCIENCES-
自引率
25.00%
发文量
57
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