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Review of Recent Developments on Using an Off-Lattice Monte Carlo Approach to Predict the Effective Thermal Conductivity of Composite Systems with Complex Structures

机译:用格点蒙特卡洛方法预测复杂结构复合系统的有效导热系数的最新研究进展

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Here, we present a review of recent developments for an off-lattice Monte Carlo approach used to investigate the thermal transport properties of multiphase composites with complex structure. The thermal energy was quantified by a large number of randomly moving thermal walkers. Different modes of heat conduction were modeled in appropriate ways. The diffusive heat conduction in the polymer matrix was modeled with random Brownian motion of thermal walkers within the polymer, and the ballistic heat transfer within the carbon nanotubes (CNTs) was modeled by assigning infinite speed of thermal walkers in the CNTs. Three case studies were conducted to validate the developed approach, including three-phase single-walled CNTs/tungsten disulfide (WS 2 )/(poly(ether ether ketone) (PEEK) composites, single-walled CNT/WS 2 /PEEK composites with the CNTs clustered in bundles, and complex graphene/poly(methyl methacrylate) (PMMA) composites. In all cases, resistance to heat transfer due to nanoscale phenomena was also modeled. By quantitatively studying the influencing factors on the thermal transport properties of the multiphase composites, it was found that the orientation, aggregation and morphology of fillers, as well as the interfacial thermal resistance at filler-matrix interfaces would limit the transfer of heat in the composites. These quantitative findings may be applied in the design and synthesis of multiphase composites with specific thermal transport properties.
机译:在这里,我们提出了一种用于研究具有复杂结构的多相复合材料的热输运特性的非晶格蒙特卡洛方法的最新进展的综述。通过大量随机移动的热助行器来量化热能。以适当的方式对不同的热传导模式进行了建模。聚合物基体中的扩散热传导是通过聚合物内热助行器的随机布朗运动来建模的,而碳纳米管(CNT)内的弹道传热是通过在CNT中分配无限量的热助行器来建模的。进行了三个案例研究以验证所开发的方法,包括三相单壁CNTs /二硫化钨(WS 2)/(聚醚醚酮)(PEEK)复合材料,单壁CNT / WS 2 / PEEK复合材料碳纳米管成束成束,并形成复杂的石墨烯/聚甲基丙烯酸甲酯(PMMA)复合材料,在所有情况下,均模拟了由于纳米级现象引起的传热阻力,并定量研究了影响多相热传输性能的因素研究发现,填料的取向,聚集和形态以及填料-基体界面的界面热阻会限制复合材料中的热传递,这些定量结果可用于多相的设计和合成中。具有特定热传输特性的复合材料。

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