论文标题
展开工程超材料设计:大规模声学元结构的轻松的微态建模
Unfolding engineering metamaterials design: relaxed micromorphic modeling of large-scale acoustic meta-structures
论文作者
论文摘要
在本文中,我们提出了一个单位单元,显示了下部声学结构域中的带隙。相应的超材料由该单位电池的周期性排列组成。我们严格地表明,一旦考虑了较大的大型标本,就可以将松弛的微态模型用于超尺度的超材料设计。我们通过应用于钛板的金属蚀刻程序生产超材料,以表明其用于现实应用的生产是可行的。还进行了实验测试,确认超材料的响应与理论设计非常吻合。为了证明我们的微态模型在跨结构设计中打开了前所未有的可能性,我们设想了一个有限尺寸的结构,能够将弹性能量集中在密闭区域中,从而实现其后续的重复使用。确实,由于引入了一组良好的微态边界条件,我们可以将不同的超材料和经典的库奇材料结合在一起,以使振动源产生的弹性能量集中在特定的收集点上。由于元结构的尺寸较大,可以计算数百个单位细胞,因此该结构的设计是不可能的(例如,通过直接模拟)。
In this paper, we present a unit cell showing a band-gap in the lower acoustic domain. The corresponding metamaterial is made up of a periodic arrangement of this unit cell. We rigorously show that the relaxed micromorphic model can be used for metamaterials' design at large scales as soon as suficiently large specimens are considered. We manufacture the metamaterial via metal etching procedures applied to a titanium plate so as to show that its production for realistic applications is viable. Experimental tests are also carried out confirming that the metamaterials' response is in good agreement with the theoretical design. In order to show that our micromorphic model opens unprecedented possibilities in metastructural design, we conceive a finite-size structure that is able to focus elastic energy in a confined region, thus enabling its possible subsequent re-use. Indeed, thanks to the introduction of a well-posed set of micromorphic boundary conditions, we can combine different metamaterials and classical Cauchy materials in such a way that the elastic energy produced by a source of vibrations is focused in specific collection points. The design of this structure would have not been otherwise possible (via e.g., direct simulations), due to the large dimensions of the metastructure, couting hundreds of unit cells.