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A PHYSICAL INTERPRETATION FOR BROKEN RECIPROCITY IN SPATIOTEMPORAL MODULATED PERIODIC RODS

机译:时空调制周期杆破损可靠性的物理解释

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Periodic systems have long been known for their peculiar characteristics in wave propagation and have been studied in many fields over the last century, going from electro-magnetics and optics to elastic structures, which drew an increasing interest in structural and mechanical engineering for vibration suppression and control spanning over broadband frequency ranges. Recently, on the stream of other studies conducted in different fields, spatiotemporal modulated elastic structures have been studied, showing promising results for wave control in that one-way propagation in the so called directional-bands can be achieved, constituting what may be called a mechanical diode. Despite of the fact that mathematical methods for the analysis of such structures have already been developed, often physics behind them is difficult to grasp. In this work, a simplified interpretation of the undergoing phenomena is thus given relating wave propagation in the mean to its physical characteristics as well as to modulation parameters. Exploiting Doppler effect and passive equivalent structures, it is shown that the broken reciprocity is due to the fact that opposite travelling waves effectively see two different periodic structures. To this aim the rod case is analysed for low modulation speeds and low modulation amplitudes; finally, in the light of the previous analysis, an explanation for First Brillouin Zone's asymmetry is given.
机译:周期性系统因其独特的波传播特性而广为人知,并且在上个世纪以来,从电磁,光学到弹性结构,许多领域都对其进行了研究,这引起了人们对于抑制振动和振动的结构和机械工程的兴趣日益浓厚。控制跨越宽带频率范围。近来,在不同领域进行的其他研究中,对时空调制弹性结构进行了研究,显示了波控制的有希望的结果,因为可以实现在所谓的方向带中的单向传播,从而构成了所谓的波带。机械二极管。尽管已经开发了用于分析此类结构的数学方法,但通常很难掌握它们背后的物理原理。因此,在这项工作中,给出了对正在发生的现象的简化解释,该解释将波的传播平均地与其物理特性以及调制参数相关联。利用多普勒效应和无源等效结构,证明了互易性的破坏是由于相反的行波有效地看到了两种不同的周期性结构。为此目的,分析了杆箱的低调制速度和低调制幅度。最后,根据先前的分析,给出了第一布里渊区的不对称性的解释。

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