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Reflection and refraction of a thermal wave at an ideal interface

机译:理想界面上热波的反射和折射

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Thermal waves are of great significance as non-Fourier effects arise with ultrafast heating rates and small system length. This study analytically and numerically investigated the behavior of thermal waves based on the Cattaneo-Vernotte model at an ideal interface. A stable, fast algorithm based on the alternative direction implicit method is introduced to solve the two-dimensional heat conduction problem. When thermal waves meet with an ideal interface, some energy is reflected back while the rest is conveyed across the interface, which are called the reflection and refraction of thermal waves. The changes of the profile and direction and the energy distribution between the reflection and refraction of the thermal waves are studied both analytically and numerically. Regardless of the boundary conditions imposed on the interface, the reflection angle is always identical to the incident angle, and the ratio of the sine of the refraction angle of the thermal waves to that of the incident angle is equal to the ratio of the thermal wave speeds in the two material layers. A theoretical equation to describe the relationships between the energy distribution and the material thermal properties shows that the thermal wave speeds in the materials, the specific heat and the incident angle determine the thermal energy transmittance ratio. Total reflection can occur for some conditions, and the nature of the energy conveyed by thermal waves is interesting and instructive.
机译:热波具有重要意义,因为非傅立叶效应会以超快的加热速率和较小的系统长度产生。这项研究基于理想状态下的Cattaneo-Vernotte模型,通过分析和数值研究了热波的行为。为了解决二维热传导问题,提出了一种基于交替方向隐式方法的稳定,快速的算法。当热波与理想界面相遇时,一些能量会反射回来,而其余的能量则通过界面传播,这称为热波的反射和折射。分析和数值研究了热波在反射和折射之间的轮廓和方向的变化以及能量分布。不管界面上施加的边界条件如何,反射角始终与入射角相同,并且热波的折射角与入射角的正弦之比等于热波的比率在两个材料层中的速度。描述能量分布与材料热性能之间关系的理论方程表明,材料中的热波速度,比热和入射角决定了热能透射比。在某些情况下可能会发生全反射,并且热波传递的能量的性质非常有趣且具有启发性。

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