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Thermal Transport in a 2D Nanophononic Solid: Role of bi-Phasic Materials Properties on Acoustic Attenuation and Thermal Diffusivity

机译:2D纳秒固体中的热传输:双相材料特性在声学衰减和热扩散性上的作用

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摘要

Nanophononic materials have recently arisen as a promising way for controlling heat transport, mirroring the results in macroscopic phononic materials for sound transmission, filtering and attenuation applications. Here we present a Finite Element numerical simulation of the transient propagation of an acoustic Wave-Packet in a 2D nanophononic material, which allows to identify the effect of the nanostructuration on the acoustic attenuation length and thus on the transport regime for the vibrational energy. Assuming elastic behavior in the matrix and in the inclusions, we find that the rigidity contrast between them not only tunes the apparent attenuation length of the wave packet along its main trajectory, but gives rise to different behaviours, from weak to strong scattering, and waves pinning. As a consequence, different energy transport regimes can be identified in the three-parameter space of the excitation frequency, inclusions size and rigidity contrast, leading to the identification of a combination of parameters allowing for the shortest attenuation distance. These results could have applications both in the field of acoustic insulation, and for the control of heat transfer.
机译:纳米咽材料最近出现为控制热传输的有希望的方式,镜像在宏观声子材料中的结果,用于声音传输,过滤和衰减应用。这里我们介绍了2D纳米咽材料中声波包的瞬态传播的有限元数值模拟,这允许识别纳米结构对声学衰减长度的影响,从而识别振动能量的传送方案。假设矩阵和夹杂物中的弹性行为,我们发现它们之间的刚性对比度不仅沿着其主要轨迹调谐波包的表观衰减长度,而且产生不同的行为,从弱到强散射,波浪钉扎。结果,可以在激发频率的三个参数空间中识别不同的能量传输制度,夹杂物尺寸和刚度对比度,从而识别允许最短衰减距离的参数的组合。这些结果可以在声学绝缘领域和控制热传递的应用。

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