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Heat conduction in multifunctional nanotrusses studied using Boltzmann transport equation

机译:用玻尔兹曼输运方程研究多功能纳米桁架中的热传导

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摘要

Materials that possess low density, low thermal conductivity, and high stiffness are desirable for engineering applications, but most materials cannot realize these properties simultaneously due to the coupling between them. Nanotrusses, which consist of hollow nanoscale beams architected into a periodic truss structure, can potentially break these couplings due to their lattice architecture and nanoscale features. In this work, we study heat conduction in the exact nanotruss geometry by solving the frequency-dependent Boltzmann transport equation using a variance-reduced Monte Carlo algorithm. We show that their thermal conductivity can be described with only two parameters, solid fraction and wall thickness. Our simulations predict that nanotrusses can realize unique combinations of mechanical and thermal properties that are challenging to achieve in typical materials.
机译:具有低密度,低导热性和高刚度的材料对于工程应用是理想的,但是大多数材料由于它们之间的耦合而不能同时实现这些特性。纳米桁架由构造成周期性桁架结构的中空纳米级梁组成,由于其晶格结构和纳米级特征,它们有可能破坏这些耦合。在这项工作中,我们通过使用减少方差的蒙特卡洛算法求解频率相关的玻尔兹曼输运方程,研究确切纳米桁架几何结构中的热传导。我们表明,它们的导热系数只能用两个参数来描述,即固体分数和壁厚。我们的模拟预测,纳米桁架可以实现机械性能和热性能的独特组合,而这在典型材料中很难实现。

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