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首页> 外文期刊>International Communications in Heat and Mass Transfer >Numerical simulation of nanoparticles size/aspect ratio effect on thermal conductivity of nanofluids using lattice Boltzmann method
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Numerical simulation of nanoparticles size/aspect ratio effect on thermal conductivity of nanofluids using lattice Boltzmann method

机译:纳米颗粒尺寸/宽高比效果对纳米流体的纳米流体热导率的数值模拟方法

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摘要

Recent developments in nanofluids have led to a renewed interest in the geometrical effects of nanoparticles on the effective thermal conductivity (ETC) of nanofluids. Although the experimental data for the effect of nanoparticles shapes (the aspect ratio) on ETC are quite consistent, there are still controversial results regarding the effect of the nanoparticles size. Theoretical approaches have been proposed to shed light on the experimental observations in both macroscopic and microscopic scales. However, these approaches cannot be generalized due to the collective interrelated behaviours of nanoparticles. In this paper, a mesoscale numerical simulation, Lattice Boltzmann method (LBM), is implemented to study the effect of nanoparticle geometry on the nanofluids thermal conductivity. The results demonstrate that the nanofluids thermal conductivity and the nanoparticles volume fraction can be linearly correlated. In essence, increasing the nanoparticles aspect ratio can improve ETC of nanofluids. However, the nanoparticle size is not statistically significant (P-value>0.05) to be considered as an influencing parameter (as observed in the controversial results of the experiments) when the interfacial phenomena are not taken into account. The surface to volume ratio of the particle is the parameter that should be studied as all the solid/liquid interfacial interactions depends on this ratio.
机译:纳米流体最近的发展导致了对纳米颗粒对纳米流体的有效导热性(ETC)的几何效果的重新感兴趣。尽管纳米颗粒形状(纵横比)的实验数据等等,但是仍然存在关于纳米颗粒尺寸的影响的争议结果。已经提出了理论方法来揭示宏观和微观尺度的实验观察。然而,由于纳米颗粒的集体相互关联行为,这些方法无法推广。本文实施了Messcale数值模拟,Lattice Boltzmann方法(LBM),以研究纳米颗粒几何形状对纳米流体导热率的影响。结果表明,纳米流体导热率和纳米颗粒体积分数可以线性相关。从本质上讲,增加纳米颗粒纵横比可以改善纳米流体。然而,当未考虑界面现象时,纳米颗粒尺寸没有统计学意义(p值> 0.05)被认为是影响参数(如在实验的有争议的结果中观察到)。颗粒的表面与体积比是应研究的参数,因为所有固体/液相界面相互作用取决于该比率。

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