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Stagnation-point heat transfer of nanofluids toward stretching sheets with variable thermo-physical properties

机译:纳米流体向具有可变热物理性质的拉伸片的停滞点传热

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The objective of this study is to investigate stagnation-point flow of nanofluids over an isothermal stretching sheet. The volume fraction of nanoparticles at the sheet is assumed to be passively controlled. Furthermore, due to low volume fraction of nanoparticles and dilute nanofluid, the thermal conductivity and dynamic viscosity of the nanofluid are assumed to be linear functions of the volume fraction of nanoparticles. In order to study the effects of a plethora of parameters on the boundary layer flow and heat and mass transfer, a practical range of these parameters have been utilized. An accurate numerical solution of the governing equations based on the finite difference method is obtained and the effect of various physical parameters such as the Prandtl number, Lewis number, thermophoresis parameter, and the Brownian motion parameter on the thermal, hydrodynamic, and concentration boundary layers is evaluated. In order to examine the alteration of the thermal convective coefficient, a dimensionless heat transfer enhancement ratio parameter is introduced. The results show that the variation of different thermodynamic parameters induces substantial impression on the behavior of the nanoparticles distribution. For example, it is found that an increase in the value of the Lewis number leads to a decrease in the value of the non-dimensional nanoparticles volume fraction at the sheet, but it does not have any influence on the thermal and hydrodynamic boundary layers. Increasing the Prandtl number is predicted to decrease the thermal boundary layer thickness and the volume fraction of nanoparticles at the surface. In most instances, the heat transfer augments in the presence of nanoparticles. (C) 2015 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:这项研究的目的是研究等温拉伸片上纳米流体的停滞点流动。假定薄片上纳米颗粒的体积分数是被动控制的。此外,由于纳米颗粒的体积分数低和稀释的纳米流体,纳米流体的导热率和动态粘度被假定为纳米颗粒的体积分数的线性函数。为了研究过多参数对边界层流动以及传热和传质的影响,已经利用了这些参数的实际范围。获得了基于有限差分法的控制方程的精确数值解,并获得了各种物理参数(例如,Prandtl数,Lewis数,热泳参数和布朗运动参数)对热,流体动力学和浓度边界层的影响被评估。为了研究热对流系数的变化,引入了无量纲的传热增强比参数。结果表明,不同热力学参数的变化引起了对纳米颗粒分布行为的实质印象。例如,发现路易斯数值的增加导致片材上无量纲纳米颗粒体积分数的值减小,但是对热和流体动力边界层没有任何影响。预测增加Prandtl数将减少热边界层厚度和表面纳米颗粒的体积分数。在大多数情况下,在纳米颗粒的存在下传热增加。 (C)2015年日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。版权所有。

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