Department of Mechanical Engineering, University of Michigan, Ann Arbor, Michigan 48109-21255, USA.
State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.
Phys Rev E. 2018 Feb;97(2-1):022209. doi: 10.1103/PhysRevE.97.022209.
We present an approach to achieve adaptable band structures and nonreciprocal wave propagation by exploring and exploiting the concept of metastable modular metastructures. Through studying the dynamics of wave propagation in a chain composed of finite metastable modules, we provide experimental and analytical results on nonreciprocal wave propagation and unveil the underlying mechanisms that facilitate such unidirectional energy transmission. In addition, we demonstrate that via transitioning among the numerous metastable states, the proposed metastructure is endowed with a large number of bandgap reconfiguration possibilities. As a result, we illustrate that unprecedented adaptable nonreciprocal wave propagation can be realized using the metastable modular metastructure. Overall, this research elucidates the rich dynamics attainable through the combinations of periodicity, nonlinearity, spatial asymmetry, and metastability and creates a class of adaptive structural and material systems capable of realizing tunable bandgaps and nonreciprocal wave transmissions.
我们提出了一种通过探索和利用亚稳态模块化亚稳态结构的概念来实现自适应能带结构和非互易波传播的方法。通过研究由有限亚稳态模块组成的链中波传播的动力学,我们提供了非互易波传播的实验和分析结果,并揭示了促进这种单向能量传输的基本机制。此外,我们证明通过在众多亚稳态之间转换,所提出的亚稳态结构具有大量的带隙重新配置可能性。因此,我们说明了使用亚稳态模块化亚稳态可以实现前所未有的自适应非互易波传播。总的来说,这项研究阐明了通过周期性、非线性、空间非对称性和亚稳态的组合可以获得的丰富动力学,并创建了一类能够实现可调带隙和非互易波传输的自适应结构和材料系统。