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FLOW AND HEAT TRANSFER SIMULATIONS FOR NANOFLUIDS WITH NANOPARTICLES OF VARIOUS DIAMETERS BY MOLECULAR DYNAMICS METHOD

机译:分子动力学方法模拟各种直径纳米颗粒的纳米流体的流动和传热

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This paper performs molecular dynamics simulations on flow and heat transfer process of nanofluids containing spherical nanoparticles with various diameters (2-6 nm). Instantaneous rotational velocity components of nanoparticles in a flow field with and without a temperature difference are outputted and compared. Number density method is used to examine the thickness of absorption layer. And by equally dividing the fluid into 60 fluid layers, temperature distributions of nanofluids and base fluid are examined. It was found that rotational speed of nanoparticle decreases with an increasing diameter. By applying temperature difference rotational speed of nanoparticles are generally increased. The rotational speeds of nanoparticles are generally about 1E9 rad/s. the rotation of nanoparticles is attributed to Brownian motion due to their nanoscale size. The diameter of nanoparticles has little effect on the thickness of the absorption layer, and the thickness of absorption layer is about 0.8 nm. By comparing temperature distributions of nanofluids and base fluid, it was found that the internal temperature difference in nanofluids is less than that of base fluid. And according the temperature gradient in nanofluids near the solid wall will be larger, which is better for heat transfer. This phenomenon is attributed to the fast-rotating nanoparticles accompanied by the absorption layer of liquid atoms. The present work examines the rotation of nanoparticles and absorption layer, which is the basis of understanding heat transfer mechanism in nanofluids and proposing mathematical description for the transfer process.
机译:本文对包含各种直径(2-6 nm)的球形纳米颗粒的纳米流体的流动和传热过程进行了分子动力学模拟。输出和比较具有和不具有温度差的流场中纳米颗粒的瞬时旋转速度分量。数密度法用于检查吸收层的厚度。通过将流体平均分为60个流体层,可以检查纳米流体和基础流体的温度分布。发现纳米颗粒的旋转速度随着直径的增加而降低。通过施加温度差,通常提高纳米颗粒的旋转速度。纳米粒子的旋转速度通常为约1E9 rad / s。纳米粒子的旋转归因于其纳米级尺寸的布朗运动。纳米粒子的直径对吸收层的厚度影响很小,吸收层的厚度约为0.8nm。通过比较纳米流体和基础流体的温度分布,发现纳米流体的内部温差小于基础流体的内部温差。并且据此,固体壁附近的纳米流体中的温度梯度将变大,这对于传热是更好的。该现象归因于伴随着液体原子吸收层的快速旋转的纳米颗粒。本工作研究了纳米颗粒和吸收层的旋转,这是理解纳米流体中传热机理并为传递过程提出数学描述的基础。

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