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首页> 外文期刊>International Journal of Thermal Sciences >Rayleigh-Benard convection of nanofluids based on the pseudo-single-phase continuum model
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Rayleigh-Benard convection of nanofluids based on the pseudo-single-phase continuum model

机译:基于拟单相连续模型的纳米流体的瑞利-贝纳德对流

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Nanofluids are composed of fluids and dispersed submicron solid particles. The presence of nanoparticles in the fluids enhances the effective thermal conductivity. In order to predict the enhancement of heat transfer in the nanofluids, it is necessary to model the nanofluid systems rigorously from the viewpoint of fluid dynamics. In the present investigation, we suggest a fluid mechanical model of nanofluids based on a rigorous theory of continuum mechanics. Starting from a two-fluid model, a pseudo-single-phase model is derived exploiting the fact that the velocity and temperature of nanoparticles follow tightly those of base fluid. The resulting pseudo-single-phase model of nanofluids is employed to investigate the Rayleigh-Benard convection of nanofluids. It is revealed that the presence of nanoparticles retards onset of convection and reduces convective fluid motion. Although the Nusselt number Nu and the heat transfer coefficient Is are increasing functions of the Rayleigh number Ra for all values of particle mass fraction w(p), Nu is almost independent of w(p) while Is increases with respect to w(p) because the thermal conductivity increases as w(p) increases. The present pseudo-single-phase model of nanofluids may be adopted to predict heat and mass transfer as well as fluid dynamic characteristics in various nanofluid systems. (C) 2014 Elsevier Masson SAS. All rights reserved.
机译:纳米流体由流体和分散的亚微米固体颗粒组成。流体中纳米颗粒的存在增强了有效的热导率。为了预测纳米流体中传热的增强,必须从流体动力学的角度对纳米流体系统进行严格建模。在目前的研究中,我们建议基于严格的连续体力学理论的纳米流体的流体力学模型。从二流体模型开始,利用纳米颗粒的速度和温度紧随基础流体的速度和温度这一事实,得出了伪单相模型。所得的纳米流体的拟单相模型用于研究纳米流体的瑞利-贝纳德对流。揭示了纳米颗粒的存在阻碍了对流的发生并降低了对流流体的运动。尽管对于粒子质量分数w(p)的所有值,努塞尔数Nu和传热系数Is是瑞利数Ra的增加函数,但Nu几乎与w(p)无关,而Is相对于w(p)增大因为热导率随w(p)的增加而增加。本纳米流体的拟单相模型可以用来预测各种纳米流体系统中的传热和传质以及流体动力学特性。 (C)2014 Elsevier Masson SAS。版权所有。

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