论文标题

时间调节的非线性音调晶格的动力学

Dynamics of Time-Modulated, Nonlinear Phononic Lattices

论文作者

Kim, Brian L., Chong, Christoper, Hajarolasvadi, Setare, Wang, Yifan, Daraio, Chiara

论文摘要

与传统的空间变化,暂时性的媒介相比,随着时间变化的空间均匀介质的传播和弹性波的传播可以表现出不同的现象。在目前的工作中,通过实验,数值和理论方法研究了一维的语音晶格与时间周期性弹性特性的响应。该系统由排斥磁性质量组成,其接地刚度由电信号驱动的电气线圈控制。对于小振幅激发,与理论预测一致,波数带镜头出现。通过Floquet理论研究了与波数带镜相关的潜在不稳定性,并在理论和实验中都观察到所得的参数扩增。与真正的线性系统相反,大幅度响应通过系统的磁相互作用的非线性性质稳定。特别是,通过波数带隙诱导的参数扩增会导致有界和稳定的响应,这些响应在时间上是准周期性的。通过平衡非线性和外部调制来控制声学和弹性波的传播为实现高级信号处理和电信设备的新维度提供了新的维度。例如,它可以实现时变,跨频操作,模式和频率转换以及信噪比增强率。

The propagation of acoustic and elastic waves in time-varying, spatially homogeneous media can exhibit different phenomena when compared to traditional spatially-varying, temporally-homogeneous media. In the present work, the response of a one-dimensional phononic lattice with time-periodic elastic properties is studied with experimental, numerical and theoretical approaches. The system consists of repelling magnetic masses with grounding stiffness controlled by electrical coils driven with electrical signals that vary periodically in time. For small amplitude excitation, in agreement with theoretical predictions, wavenumber bandgaps emerge. The underlying instabilities associated to the wavenumber bandgaps are investigated with Floquet theory and the resulting parametric amplification is observed in both theory and experiments. In contrast to genuinely linear systems, large amplitude responses are stabilized via the nonlinear nature of the magnetic interactions of the system. In particular, the parametric amplification induced by the wavenumber bandgap can lead to bounded and stable responses that are temporally quasi-periodic. Controlling the propagation of acoustic and elastic waves by balancing nonlinearity and external modulation offers a new dimension in the realization of advanced signal processing and telecommunication devices. For example, it could enable time-varying, cross-frequency operation, mode- and frequency-conversion, and signal-to-noise ratio enhancements.

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