纳米流体在指数拉伸可渗透薄片上的磁流体动力学边界层流动

K. Bhattacharyya, G. Layek
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引用次数: 79

摘要

建立了外磁场作用下指数渗透拉伸片对纳米流体边界层稳定流动的数学模型。该模型考虑了布朗运动和热泳运动对传热和纳米颗粒体积摩擦的影响。利用四阶龙格-库塔法求解变换后的方程。研究表明,磁参数、壁面传质参数、普朗特数、路易斯数、布朗运动参数和热电泳参数等控制参数对流场、传热和纳米颗粒体积分数有重要影响。磁场使温度和纳米颗粒体积分数升高,而通过多孔片的壁传质则使两者降低。对于布朗运动,温度升高,纳米颗粒体积分数减小。传热速率随路易斯数的增加而降低。由于热泳效应,热边界层厚度增大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetohydrodynamic Boundary Layer Flow of Nanofluid over an Exponentially Stretching Permeable Sheet
A mathematical model of the steady boundary layer flow of nanofluid due to an exponentially permeable stretching sheet with external magnetic field is presented. In the model, the effects of Brownian motion and thermophoresis on heat transfer and nanoparticle volume friction are considered. Using shooting technique with fourth-order Runge-Kutta method the transformed equations are solved. The study reveals that the governing parameters, namely, the magnetic parameter, the wall mass transfer parameter, the Prandtl number, the Lewis number, Brownian motion parameter, and thermophoresis parameter, have major effects on the flow field, the heat transfer, and the nanoparticle volume fraction. The magnetic field makes enhancement in temperature and nanoparticle volume fraction, whereas the wall mass transfer through the porous sheet causes reduction of both. For the Brownian motion, the temperature increases and the nanoparticle volume fraction decreases. Heat transfer rate becomes low with increase of Lewis number. For thermophoresis effect, the thermal boundary layer thickness becomes larger.
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