具有双稳电路分流的压电超材料自适应非倒易弹性波传输

Yisheng Zheng, Zhen Wu, Xinong Zhang, Kon-Well Wang
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引用次数: 1

摘要

本文提出了一种集成双稳态电路的压电超材料,可实现自适应非倒易弹性波传输。数值研究了双稳电路和压电材料的动力学特性,分析了该系统的波传输特性。结果表明,当激发幅值超过一定阈值时,波能在压电超材料的局域共振带隙内随激发频率均匀传播。这种带隙传输现象也被称为超传输。结果表明,通过引入空间不对称性,系统在相反方向驱动时可以表现出不同的超传输阈值,从而存在一个波能只能向一个方向传播的激励范围。此外,通过调整双稳态电路的稳定平衡,可以方便地利用直流电压源调谐该激励范围以促进非互反能量传输。此外,通过调整稳定平衡,可以很容易地逆转波的传播方向,类似于电二极管的前进方向。最后,与许多非线性非互易系统相比,该系统能够实现非互易弹性能量传输,并且大部分传输能量保持在原始输入频率。总的来说,这些结果说明了利用非线性压电超材料来操纵弹性波传输的新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Piezoelectric Metamaterial With Bistable Circuit Shunts for Adaptive Non-Reciprocal Elastic Wave Transmission
In this paper, we present a piezoelectric metamaterial integrated with bistable circuits to realize adaptive non-reciprocal elastic wave transmission. Dynamics of the bistable circuit and the piezoelectric metamaterial are investigated numerically to analyze the wave transmission characteristics of the proposed system. Results reveal that when the excitation amplitude exceeds certain threshold, wave energy is able to propagate even with excitation frequency inside the local-resonance bandgap of the piezoelectric metamaterial. This bandgap transmission phenomenon is also known as supratransmission. It is shown that by introducing spatial asymmetry, the system could exhibit different supratransmission thresholds when it is actuated in opposite directions, and hence there exists an excitation range within which wave energy is only able to propagate in one direction. Furthermore, this excitation range to facilitate non-reciprocal energy transmission is adaptable by adjusting the stable equilibria of the bistable circuits, which can be conveniently tuned utilizing only DC voltage sources. Additionally, it is shown that by adjusting the stable equilibria, the wave propagation direction, analogous to the forward direction of an electrical diode, can be easily reversed. Lastly, in contrast to many nonlinearity enabled non-reciprocal systems, the proposed system is able to realize non-reciprocal elastic energy transmission with majority of the transmitted energy preserved at the original input frequency. Overall, these results illustrate a new means of utilizing nonlinear piezoelectric metamaterial to manipulate elastic wave transmission.
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