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MHD 3D free convective flow of nanofluid over an exponentially stretching sheet with chemical reaction

机译:MHD 3D通过化学反应的指数拉伸板上的纳米流体的自由对流流动

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This paper deals with a problem where the effect of variable magnetic field and chemical reaction on free convective flow of an electrically conducting incompressible water based nanofluid over an exponentially stretching sheet has been investigated. In the present study, Buongiorno model associated with Brownian motion and thermophoretic diffusion is employed to describe the heat transfer enhancement of nanofluids. Some suitable similarity transformations reduced the governing boundary layer non-linear partial differential equations into a set of ordinary non-linear differential equations. The transformed equations are then solved numerically using fourth order Runga-Kutta method along with Shooting technique. The major outcomes of the present study is that the magnetic field impedes the fluid motion while thermal as well as mass buoyancy forces accelerate it, the thermophoretic diffusion enhances dimensionless fluid temperature as well as concentration leading to thicker thermal and concentration boundary layers. On the other hand, concentration exponent, Brownian motion parameter and chemical reaction parameter exhibit reverse trend on temperature and concentration. In addition, the presence of magnetic field under the influence of thermal as well as mass buoyancies supports to reduce the rate of heat transfer as well as wall shear stress while the first order chemical reaction develops a thinner concentration boundary layer. (C) 2017 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:本文研究了在指数拉伸板上的可变磁场和化学反应对导电不可压制水基纳米流体的自由对流流动的影响的问题。在本研究中,采用与褐色运动和硫化机扩散相关的Buongiorno模型来描述纳米流体的热传递增强。一些合适的相似性变换将控制边界层非线性偏微分方程还原为一组普通的非线性微分方程。然后使用第四阶runga-Kutta方法在数值上进行了转换的等式,以及拍摄技术。本研究的主要结果是磁场将流体运动撞击,同时热量和大众浮力力加速它,热渗扩散增强了无量纲的流体温度以及导致热和浓度边界层较厚的浓度。另一方面,浓度指数,布朗运动参数和化学反应参数表现出温度和浓度的反向趋势。另外,在热量和质量浮标的影响下存在磁场的存在,以降低传热以及壁剪切应力的速度,而第一阶化学反应显影较薄的浓度边界层。 (c)2017年日本粉末科技学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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