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Microstructure-induced phonon focusing effects and opportunities for improved material quantification

机译:微观结构引起的声子聚焦效果和改进材料量化的机会

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It is well known that single-crystal materials such as silicon have anisotropic elastic properties which depend on crystalline direction, causing the characteristic properties of a propagating elastic wave to have spatial and directional dependencies. As a result, variations in the speed and energy flux of an elastic waves propagating in a single crystal material typically produce spatial patterns, which can be used to infer the internal structure of a crystalline material. For polycrystalline materials, similar effects can be manifested when textured or single phase, equiaxed grains are involved, and coherent wave interference processes exist. Three examples of this are presented in this paper, where the propagation of longitudinal waves within single crystal silicon, textured titanium, and polycrystalline nickel materials are characterized using scanning laser vibrometry in a thru-transmission detection mode. By measuring and studying the resulting patterns, it is anticipated that inversion methods can be developed for the quantitative evaluation of single crystal and polycrystalline materials.
机译:众所周知,诸如硅的单晶材料具有取决于晶体方向的各向异性弹性特性,从而引起传播弹性波的特性特性具有空间和方向依赖性。结果,在单晶材料中传播的弹性波的速度和能量通量的变化通常产生空间图案,其可用于推断晶体材料的内部结构。对于多晶材料,涉及纹理或单相时,可以表现出类似的效果,并且存在相干波干扰过程。本文提出了三个的示例,其中单晶硅,纹理钛和多晶镍材料内的纵向波在通过扫描激光检测模式下的特征在于使用扫描激光振动器的传播。通过测量和研究所得到的图案,预计可以开发反转方法以用于单晶和多晶材料的定量评估。

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