Zhu Hai-Fei, Sun Xiao-Wei, Song Ting, Wen Xiao-Dong, Liu Xi-Xuan, Feng Jin-Shan, Liu Zi-Jiang
School of Mathematics and Physics, Lanzhou Jiaotong University, Lanzhou, 730070, China.
Department of Physics, Lanzhou City University, Lanzhou, 730070, China.
Sci Rep. 2021 Apr 16;11(1):8389. doi: 10.1038/s41598-021-87904-6.
In view of the influence of variability of low-frequency noise frequency on noise prevention in real life, we present a novel two-dimensional tunable phononic crystal plate which is consisted of lead columns deposited in a silicone rubber plate with periodic holes and calculate its bandgap characteristics by finite element method. The low-frequency bandgap mechanism of the designed model is discussed simultaneously. Accordingly, the influence of geometric parameters of the phononic crystal plate on the bandgap characteristics is analyzed and the bandgap adjustability under prestretch strain is further studied. Results show that the new designed phononic crystal plate has lower bandgap starting frequency and wider bandwidth than the traditional single-sided structure, which is due to the coupling between the resonance mode of the scatterer and the long traveling wave in the matrix with the introduction of periodic holes. Applying prestretch strain to the matrix can realize active realtime control of low-frequency bandgap under slight deformation and broaden the low-frequency bandgap, which can be explained as the multiple bands tend to be flattened due to the localization degree of unit cell vibration increases with the rise of prestrain. The presented structure improves the realtime adjustability of sound isolation and vibration reduction frequency for phononic crystal in complex acoustic vibration environments.
考虑到低频噪声频率变化对实际生活中噪声防治的影响,我们提出了一种新型二维可调谐声子晶体板,它由沉积在带有周期性孔洞的硅橡胶板中的铅柱组成,并通过有限元方法计算其带隙特性。同时讨论了所设计模型的低频带隙机理。据此,分析了声子晶体板几何参数对带隙特性的影响,并进一步研究了预拉伸应变下的带隙可调性。结果表明,新设计的声子晶体板比传统的单面结构具有更低的带隙起始频率和更宽的带宽,这是由于引入周期性孔洞后,散射体的共振模式与基体中的长行波之间的耦合所致。对基体施加预拉伸应变可以在微小变形下实现对低频带隙的主动实时控制并拓宽低频带隙,这可以解释为随着预应变的增加,由于晶胞振动的局域化程度增加,多个能带趋于扁平化。所提出的结构提高了声子晶体在复杂声振动环境中隔音和减振频率的实时可调性。