Numerical study on thermal conductivity of nanomaterials - coarse Grained Molecular Dynamics Approach

T. Falat, B. Platek, M. Zawierta, J. Felba
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引用次数: 1

Abstract

The increasing requirements for heat dissipation in modern microelectronic devices makes it necessary to develop new materials (e.g. thermal interface materials) with high thermal conductivity. Due to excellent thermal and thermo-mechanical properties some nanomaterials, like carbon nanotubes, are increasingly being used to create new thermally conductive composites. The development of such composites requires the good understanding of physical parameters of used materials. There is a consensus that numerical methods can greatly accelerate research on such parameters especially while nanomaterials are studied. In case of nanomaterials the best way to obtain such a physical parameters as thermal conductivity is the molecular dynamics approach. Nevertheless the simulations based on atomic-scale are very time consuming, therefore more and more attention is paid for mesoscale, where the coarse-graining approach reduces amount of particles (the groups of atoms are represented by “quasi atoms” called beads). Coarse-graining procedure reduces the amount of equation which has to be solved during simulation therefore it reduces the time of simulation. In the current paper the Coarse Grained Molecular Dynamics Approach (CGMD) to calculate the thermal conductivity of carbon nanotube is presented. The obtained results are on an acceptable level of confidence and the the acceleration of calculation of thermal conductivity was more than 5 times while the CGMD was used instead the atomic-level molecular dynamics.
纳米材料热导率的数值研究——粗粒分子动力学方法
现代微电子器件对散热的要求越来越高,因此有必要开发具有高导热性的新型材料(如热界面材料)。由于优异的热学和热机械性能,一些纳米材料,如碳纳米管,越来越多地被用于制造新的导热复合材料。这种复合材料的开发需要对所用材料的物理参数有很好的了解。人们一致认为,数值方法可以极大地加快这些参数的研究,特别是在纳米材料的研究中。对于纳米材料而言,获得热导率等物理参数的最佳方法是分子动力学方法。然而,基于原子尺度的模拟非常耗时,因此越来越多的人关注中尺度,其中粗粒化方法减少了粒子的数量(原子群由称为珠子的“准原子”表示)。粗粒化过程减少了仿真过程中需要求解的方程的数量,从而缩短了仿真时间。本文提出了用粗粒度分子动力学方法计算碳纳米管导热系数的方法。所得结果在可接受的置信水平上,用CGMD代替原子水平的分子动力学时,热导率的计算速度加快了5倍以上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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