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EFFECTS OF 'FINITENESS' ON WAVE PROPAGATION AND VIBRATION IN ELASTIC PERIODIC STRUCTURES

机译:“有限度”对弹性周期结构中波传播和振动的影响

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摘要

The dynamics of finite elastic periodically layered structures is compared to that of the constituent periodic media. The focus is on both the frequency behavior and the spatial response. Through simulations of harmonically induced wave motion within a finite number of unit cells, the frequency band structure and attenuation characteristics of infinite and finite periodic systems are shown to conform under certain conditions. It is concluded that only one or two unit cells of a periodic material are required for "frequency bandness" to carry through to a finite structure, and only three to four unit cells are necessary for significant wave attenuation to take place when the structure is excited at a stop-band frequency. Furthermore, vibration analyses are conducted on a bounded fully periodic structure. The natural frequency spread is shown to conform with the frequency band layout of the infinite periodic material, and the steady-state forced response is observed to exhibit mode localization patterns that resemble those of the infinite periodic medium. These results could be used for setting guidelines for the design of periodic structures for vibration isolation and frequency filtering.
机译:将有限弹性周期性分层结构的动力学与组成周期性介质的动力学进行比较。重点是频率行为和空间响应。通过对有限数量的晶胞内的谐波感应波运动进行仿真,表明无限和有限周期系统的频带结构和衰减特性在一定条件下是一致的。得出的结论是,只有一种或两种周期性材料的单位晶格才能使“频带”传递到有限的结构,并且只有三到四个单位晶格对于激发结构时发生的显着波衰减是必需的在阻带频率。此外,振动是在有限的全周期结构上进行的。示出了自然频率扩展与无限周期材料的频带布局一致,并且观察到稳态强制响应表现出类似于无限周期介质的模式定位模式。这些结果可用于为振动隔离和频率滤波的周期性结构设计提供指导。

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