首页> 外文会议>ASME International Conference on Micro/Nanoscale Heat and Mass Transfer >MOLECULAR DYNAMICS SIMULATION ON THE EFFECT OF MICRO-MOTIONS OF NANOPARTICLES IN HEAT TRANSFER ENHANCEMENT OF NANOFLUIDS
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MOLECULAR DYNAMICS SIMULATION ON THE EFFECT OF MICRO-MOTIONS OF NANOPARTICLES IN HEAT TRANSFER ENHANCEMENT OF NANOFLUIDS

机译:分子动力学模拟纳米粒子微观运动效应纳米流体的热传递增强

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The flow and heat transfer characteristics of nanofluids in the near-wall region were studied by non-equilibrium molecular dynamics simulation. The nanofluid model consisted of one spherical copper nanoparticle and argon atoms as base liquid. The effective thermal conductivity (ETC) of nanofluids and base fluid in shear flow fields were obtained. The ETC was increased with the increasing of shear velocity for both base fluid and nanofluids. The heat transfer enhancement of nanofluids in the shear flow field (v≠0) is better than that in the zero-shear flow field (v=0). By analyzing the flow characteristics we proved that the micro-motions of nanoparticles were another mechanism responsible for the heat transfer enhancement of nanofluids in the flow field. Based on the model built in the paper, we found that the thermal properties accounted for 52%-65% heat transfer enhancement and the contribution of micro-motions is 35%-48%.
机译:非平衡分子动力学模拟研究了近壁区域纳米流体的流动和传热特性。纳米流体模型由一个球形铜纳米粒子和氩原子组成,作为基础液体。获得了纳米流体和剪切流场中的基础流体的有效导热性(ETC)。随着基础流体和纳米流体的剪切速度的增加,等等增加。剪切流场中纳米流体的热传递增强比零剪切流场更好(V = 0)。通过分析流动特性,我们证明了纳米颗粒的微观运动是另一种机制,其负责流场中纳米流体的热传递增强。基于本文建立的型号,我们发现热性能占52%-65%的传热增强,微动术的贡献为35%-48%。

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