John A. Paulson School of Engineering and Applied Science, Harvard University, Cambridge, MA 02138, USA.
John A. Paulson School of Engineering and Applied Science, Harvard University, Cambridge, MA 02138, USA.; Foundation for Fundamental Research on Matter (FOM) Institute AMOLF, Science Park 104, 1098 XG Amsterdam, Netherlands.
Sci Adv. 2016 Nov 23;2(11):e1601019. doi: 10.1126/sciadv.1601019. eCollection 2016 Nov.
We combine numerical simulations and experiments to design a new class of reconfigurable waveguides based on three-dimensional origami-inspired metamaterials. Our strategy builds on the fact that the rigid plates and hinges forming these structures define networks of tubes that can be easily reconfigured. As such, they provide an ideal platform to actively control and redirect the propagation of sound. We design reconfigurable systems that, depending on the externally applied deformation, can act as networks of waveguides oriented along one, two, or three preferential directions. Moreover, we demonstrate that the capability of the structure to guide and radiate acoustic energy along predefined directions can be easily switched on and off, as the networks of tubes are reversibly formed and disrupted. The proposed designs expand the ability of existing acoustic metamaterials and exploit complex waveguiding to enhance control over propagation and radiation of acoustic energy, opening avenues for the design of a new class of tunable acoustic functional systems.
我们通过数值模拟和实验相结合,设计了一类基于三维折纸启发的超材料的新型可重构波导。我们的策略基于以下事实:构成这些结构的刚性板和铰链定义了可以轻松重新配置的管网络。因此,它们为主动控制和重新引导声音传播提供了理想的平台。我们设计了可重构系统,根据外部施加的变形,可以作为沿着一个、两个或三个优先方向定向的波导网络。此外,我们证明,随着管网络的可逆形成和破坏,该结构引导和沿预定方向辐射声能的能力可以轻松地开启和关闭。所提出的设计扩展了现有声超材料的能力,并利用复杂的波导来增强对声能传播和辐射的控制,为设计一类新的可调谐声功能系统开辟了道路。