Gu Tianyu, Wen Zhihui, He Liangshu, Yu Minle, Li Yong, Li Yan, Jin Yabin
School of Aerospace Engineering and Applied Mechanics, Tongji University, 200092 Shanghai, China.
Institute of Acoustics, School of Physics Science and Engineering, Tongji University, 200092 Shanghai, China.
J Acoust Soc Am. 2023 Jan;153(1):96. doi: 10.1121/10.0016824.
We theoretically, numerically, and experimentally study a lightweight metastructure that can simultaneously reduce vibration and noise in a broad low-frequency range. We introduce spiral slits and micro-perforations in the panel and core plate of a face-centered cubic sandwich structure, respectively. A bottom-up acoustic impedance theory is developed to describe the impedance of a single unit cell. Broadband low-frequency sound absorption is achieved for a 3 × 3 supercell via reinforcement learning optimization. The resonant coupling of the upper spiral panel and the lower panel of the unit can form a wide hybridized bandgap for flexural waves, which is further validated for vibration isolation with a one-dimensional supercell. The proposed multifunctional metastructure provides a new route to design lightweight load-bearing structures with noise and vibration reduction performance for potential applications such as aerospace engineering and transportation vehicles, among others.
我们从理论、数值和实验方面研究了一种轻质超结构,它能够在宽广的低频范围内同时降低振动和噪声。我们分别在面心立方夹心结构的面板和芯板中引入了螺旋狭缝和微穿孔。我们发展了一种自底向上的声阻抗理论来描述单个晶胞的阻抗。通过强化学习优化,在一个3×3的超胞中实现了宽带低频吸声。单元的上螺旋面板和下面板的共振耦合可以形成一个宽的弯曲波杂化带隙,这在一维超胞的隔振中得到了进一步验证。所提出的多功能超结构为设计具有降噪和减振性能的轻质承重结构提供了一条新途径,可用于航空航天工程和运输车辆等潜在应用领域。