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Multifunctional One-Dimensional Phononic Crystal Structures Exploiting Interfacial Acoustic Waves

机译:利用界面声波的多功能一维声晶结构

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The present study demonstrates that interfacial acoustic waves can be excited at the interface between two phononic crystals. The interfacial wave existing between two phononic crystals is the counterpart of the surface electromagnetic wave existing between two photonic crystals. While past works on phononic crystals exploit the unique bandgap phenomenon in periodic structures, the present work employs the Bloch wave in the stop band to excite interfacial waves that propagate along the interface and decay away from the interface. As a result, the proposed structure can be used as a wave filter as well as a thermal barrier. In wave filter design, for instance, the incident mechanical wave energy can be guided by the interfacial wave to the lateral direction; thus, its propagation into the depth is inhibited. Similarly, in thermal barrier design, incident phonons can be coupled with the interfacial acoustic wave, and the heat will be localized and eventually dissipated at the interface between two phononic crystals. Consequently, the thermal conductivity in the direction normal to the layers can be greatly reduced. The advantage of using two phononic crystals is that the interfacial wave can be excited even at normal incidence, which is critical in many engineering applications. Since the proposed concept is based on a one-dimensional periodic structure, the analysis, design, and fabrication are relatively simple compared to other higher dimensional material designs.
机译:本研究表明,界面声波可以在两个声子晶体之间的界面处激发。在两个声子晶体之间存在的界面波是存在于两个光子晶体之间存在的表面电磁波的对应部分。虽然过去的工作在Phononic Crystals上,在周期性结构中利用独特的带隙现象,但是本作的工作采用STOP频带中的BLOCH波来激发沿接口传播的界面波,衰减远离界面。结果,所提出的结构可以用作波过滤器以及热屏障。例如,在波过滤器设计中,入射机械波能量可以通过界面波引导到横向;因此,将其传播到深度中被抑制。类似地,在热阻挡设计中,入射声子可以与界面声波耦合,并且热量将被定位并最终在两个声子晶体之间的界面处消散。因此,可以大大减少到垂直于层的方向上的导热率。使用两个声子晶体的优点是即使在正常发病率下也可以促进界面波,这在许多工程应用中至关重要。由于所提出的概念基于一维周期性结构,与其他高尺寸材料设计相比,分析,设计和制造相对简单。

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