Meng Han, Chronopoulos Dimitrios, Bailey Nick, Wang Lei
Institute for Aerospace Technology & The Composites Group, University of Nottingham, Nottingham NG8 1BB, UK.
Department of Mechanical and Construction Engineering, University of Northumbria, Newcastle upon Tyne NE1 8QH, UK.
Materials (Basel). 2020 Nov 19;13(22):5225. doi: 10.3390/ma13225225.
Phononic crystals (PnCs) and metamaterials are widely investigated for vibration suppression owing to the bandgaps, within which, wave propagation is prohibited or the attenuation level is above requirements. The application of PnCs and metamaterials is, however, limited by the widths of bandgaps. The recently developed rainbow structures consisting of spatially varied profiles have been shown to generate wider bandgaps than periodic structures. Inspired by this design strategy, rainbow metamaterials composed of nonperiodic mass blocks in two-dimensional (2D) space were proposed in the present study. The blocks were connected by curved beams and tessellated with internal voids to adjust their masses. In order to demonstrate the effects of the rainbow design, two 2D metamaterials, with periodic and nonperiodic units, respectively, were investigated and manufactured using additive manufacturing technologies. Receptance functions, i.e., displacement frequency response functions, of the manufactured metamaterials were calculated with finite element models and measured with a testing system containing a mechanical shaker, an impedance head, and a laser Doppler vibrometer. The obtained numerical and experimental results showed that the metamaterial with rainbow blocks has extended bandgaps compared with the periodic metamaterial.
声子晶体(PnCs)和超材料因其带隙而被广泛研究用于振动抑制,在带隙内,波的传播被禁止或衰减水平超过要求。然而,PnCs和超材料的应用受到带隙宽度的限制。最近开发的由空间变化轮廓组成的彩虹结构已被证明能产生比周期性结构更宽的带隙。受此设计策略的启发,本研究提出了由二维(2D)空间中的非周期性质量块组成的彩虹超材料。这些块通过弯曲梁连接,并镶嵌内部空隙以调整其质量。为了证明彩虹设计的效果,分别研究并使用增材制造技术制造了两种具有周期性和非周期性单元的二维超材料。利用有限元模型计算了制造的超材料的 receptance 函数,即位移频率响应函数,并使用包含机械振动台、阻抗头和激光多普勒振动计的测试系统进行了测量。获得的数值和实验结果表明,与周期性超材料相比,具有彩虹块的超材料具有更宽的带隙。