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Optimization of Free Convection Heat Transfer From Vertical Plates Using Nanofluids

机译:利用纳米流体优化垂直板自由对流传热

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Free convection heat transfer in nanofluids from vertical flat plates at uniform temperature is investigated theoretically. The main idea upon which the present work is based is that nanofluids behave more like single-phase fluids rather than like conventional solid-liquid mixtures. This assumption implies that all the eonvective heat transfer correlations available in the literature for single-phase flows can be extended to nanoparticle suspensions, provided that the thermophysical properties appearing in them are the nanofluid effective properties calculated at the reference temperature. In this connection, two empirical equations, based on a wide variety of experimental data reported in the literature, are used for the evaluation of the nanofluid effective thermal conductivity and dynamic viscosity. Conversely, the other effective properties are computed by the traditional mixing theory. The heat transfer enhancement that derives from the dispersion of nanosized solid particles into the base liquid is calculated for different operating conditions, nanoparticle diameters, and combinations of solid and liquid phases. The fundamental result obtained is the existence of an optimal particle loading for maximum heat transfer. In particular, for any assigned combination of suspended nanoparticles and base liquid, it is found that the optimal volume fraction increases as the nanofluid average temperature increases, the nanoparticle size decreases, and the Rayleigh number of the base fluid decreases.
机译:理论上研究了均匀温度下垂直平板中纳米流体中的自由对流传热。本工作所基于的主要思想是,纳米流体的行为更像是单相流体,而不是常规的固液混合物。该假设意味着,文献中可用于单相流的所有对流传热相关性都可以扩展到纳米颗粒悬浮液,前提是其中出现的热物理性质是在参考温度下计算出的纳米流体有效性质。在这方面,基于文献中报道的各种实验数据的两个经验方程式被用于评估纳米流体的有效导热率和动态粘度。相反,其他有效特性是通过传统混合理论计算得出的。对于不同的操作条件,纳米颗粒直径以及固相和液相的组合,可以计算出纳米级固体颗粒向基础液中的分散所产生的传热增强。获得的基本结果是存在用于最大热传递的最佳颗粒负载。特别地,对于悬浮纳米颗粒和基础液体的任何指定组合,发现最佳体积分数随着纳米流体平均温度的升高,纳米颗粒尺寸的减小和基础流体的瑞利数的减小而增加。

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