Giraldo Guzman Daniel, Pillarisetti Lalith Sai Srinivas, Frecker Mary, Lissenden Cliff J, Shokouhi Parisa
Department of Mechanical Engineering, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, Pennsylvania 16802, USA.
J Acoust Soc Am. 2024 May 1;155(5):3172-3182. doi: 10.1121/10.0025989.
Locally resonant elastodynamic metasurfaces for suppressing surface waves have gained popularity in recent years, especially because of their potential in low-frequency applications such as seismic barriers. Their design strategy typically involves tailoring geometrical features of local resonators to attain a desired frequency bandgap through extensive dispersion analyses. In this paper, a systematic design methodology is presented to conceive these local resonators using topology optimization, where frequency bandgaps develop by matching multiple antiresonances with predefined target frequencies. The design approach modifies an individual resonator's response to unidirectional harmonic excitations in the in-plane and out-of-plane directions, mimicking the elliptical motion of surface waves. Once an arrangement of optimized resonators composes a locally resonant metasurface, frequency bandgaps appear around the designed antiresonance frequencies. Numerical investigations analyze three case studies, showing that longitudinal-like and flexural-like antiresonances lead to nonoverlapping bandgaps unless both antiresonance modes are combined to generate a single and wider bandgap. Experimental data demonstrate good agreement with the numerical results, validating the proposed design methodology as an effective tool to realize locally resonant metasurfaces by matching multiple antiresonances such that bandgaps generated as a result of in-plane and out-of-plane surface wave motion combine into wider bandgaps.
近年来,用于抑制表面波的局部共振弹性动力学超表面越来越受到关注,特别是因其在地震屏障等低频应用中的潜力。其设计策略通常包括通过广泛的色散分析来调整局部谐振器的几何特征,以获得所需的频率带隙。本文提出了一种系统的设计方法,利用拓扑优化来构思这些局部谐振器,通过将多个反共振与预定义的目标频率相匹配来产生频率带隙。该设计方法修改了单个谐振器对平面内和平面外单向谐波激励的响应,模拟了表面波的椭圆运动。一旦优化谐振器的排列构成局部共振超表面,频率带隙就会出现在设计的反共振频率附近。数值研究分析了三个案例,结果表明,除非将两种反共振模式结合以产生单个更宽的带隙,否则纵向类和弯曲类反共振会导致不重叠的带隙。实验数据与数值结果吻合良好,验证了所提出的设计方法是一种有效的工具,可通过匹配多个反共振来实现局部共振超表面,使平面内和平面外表面波运动产生的带隙合并为更宽的带隙。