Ye Wenkang, Hu Lingling, Ou Haifeng, Yu Tongxi
Department of Applied Mechanics and Engineering, School of Aeronautics and Astronautics, Sun Yat-sen University, Guangzhou 510275, China.
Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Kowloon, Hong Kong, China.
Sci Adv. 2023 Jul 28;9(30):eadh3870. doi: 10.1126/sciadv.adh3870.
Metamaterials whose properties are inaccessible with conventional materials offer powerful tools for unprecedentedly manipulating physical signals. However, an effective design strategy of metamaterials still remains a challenge for changing the compression or tension characters of stress waves during forward propagation. Here, we introduce a class of spring-linkage-based metamaterials exhibiting mere tension output at the distal end, no matter that the input is an axial impact, a sudden tension, or even alternating tension-compression. The metamaterials can turn compressive waves into pure tension and filter them out from the tension-compression mixed ones while allowing tensile signal stably propagating in soliton form. This is achieved by combining nonuniform and nonlinear properties of the proposed cells. In particular, these extraordinary functions of the metamaterial can be turned on or off and adjusted by tuning a key switch cell; thus, it is anticipated to serve as a start for more complex manipulation and utilization of mechanical signals.
具有传统材料无法实现的特性的超材料为以前所未有的方式操纵物理信号提供了强大工具。然而,对于在向前传播过程中改变应力波的压缩或拉伸特性而言,超材料的有效设计策略仍然是一项挑战。在此,我们介绍一类基于弹簧连杆的超材料,无论输入是轴向冲击、突然拉伸,甚至是交替的拉伸 - 压缩,其在远端都仅表现出拉伸输出。这种超材料可以将压缩波转变为纯拉伸波,并从拉伸 - 压缩混合波中滤除它们,同时允许拉伸信号以孤子形式稳定传播。这是通过结合所提出单元的非均匀和非线性特性来实现的。特别地,这种超材料的这些非凡功能可以通过调节一个关键开关单元来开启或关闭并进行调整;因此,有望作为对机械信号进行更复杂操纵和利用的开端。