Design of tunable pneumatic metamaterials for low-frequency vibration control

被引:0
|
作者
Zhang, Yingjie [1 ,2 ]
Xu, Wei [1 ,2 ]
Chen, Zhimin [3 ]
Fu, Junqiang [1 ,2 ]
Yin, Lihang [1 ,2 ]
机构
[1] Naval Univ Engn, Inst Noise & Vibrat, Wuhan 430030, Hubei, Peoples R China
[2] Natl Key Lab Ship Vibrat & Noise, Wuhan 430030, Hubei, Peoples R China
[3] Naval Univ Engn, Coll Naval Architecture & Ocean Engn, Wuhan 430030, Hubei, Peoples R China
关键词
ELASTIC-WAVE ABSORPTION; SOFT ROBOT; PLATES; PROPAGATION; ACTUATORS;
D O I
10.1063/5.0209877
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
For addressing the limitations of traditional elastic metamaterials in opening wide bandgaps below 100 Hz, a tunable pneumatic metamaterial plate with airbag local resonators is proposed. Utilizing the characteristics of airbags, such as small volume, large load-bearing capacity, easy stiffness adjustment, and the ability to provide multi-directional restoring forces, a structured low-stiffness local resonator with a certain load-bearing capacity is designed. By varying the gauge pressure of the airbag, the bandgap can be moved toward lower frequencies, thereby achieving a broad low-frequency vibration suppression capability for various wave propagations. The low-frequency vibration bandgap characteristics of the tunable pneumatic metamaterial are analyzed and verified by applying the finite element method. The results illustrate that this tunable pneumatic metamaterial can attenuate bending waves in the range of 22-121 Hz by adjusting the air pressure. Moreover, increasing the gauge pressure will not only shift the complete bandgap toward lower frequencies but also significantly expand the bandwidth of the complete bandgap. For instance, increasing the gauge pressure from 0 to 50 kPa reduces the opening frequency of the complete bandgap from 36 to 22 Hz while enhancing the relative bandwidth from 0.52 to 0.85. Extending from this, a parametric study was conducted to examine the impact of the structural parameters of airbag-type resonant units on bandgap evolution, summarizing the general principles for achieving wide low-frequency bandgaps. Finally, the bandgap characteristics of the tunable pneumatic metamaterial are confirmed through the frequency response function of a finite periodic structure.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Low-Frequency Vibration Control of Cylindrical Shell Structures Based on Piezoelectric Metamaterials
    Yi K.
    Yin D.
    Zhang A.
    Zhu R.
    Tongji Daxue Xuebao/Journal of Tongji University, 2022, 50 (11): : 1557 - 1566
  • [2] Hybrid acousto-elastic metamaterials for simultaneous control of low-frequency sound and vibration
    Chen, Chuanmin
    Guo, Zhaofeng
    Liu, Songtao
    Feng, Hongda
    Qiao, Chuanxi
    JOURNAL OF APPLIED PHYSICS, 2021, 129 (05)
  • [3] Numerical and Experimental Investigations on Tunable Low-frequency Locally Resonant Metamaterials
    Lin, Qida
    Zhou, Jiaxi
    Pan, Hongbin
    Xu, Daolin
    Wen, Guilin
    ACTA MECHANICA SOLIDA SINICA, 2021, 34 (05) : 612 - 623
  • [4] Numerical and Experimental Investigations on Tunable Low-frequency Locally Resonant Metamaterials
    Qida Lin
    Jiaxi Zhou
    Hongbin Pan
    Daolin Xu
    Guilin Wen
    Acta Mechanica Solida Sinica, 2021, 34 : 612 - 623
  • [5] Three-dimensional resonating metamaterials for low-frequency vibration attenuation
    W. Elmadih
    D. Chronopoulos
    W. P. Syam
    I. Maskery
    H. Meng
    R. K. Leach
    Scientific Reports, 9
  • [6] Three-dimensional resonating metamaterials for low-frequency vibration attenuation
    Elmadih, W.
    Chronopoulos, D.
    Syam, W. P.
    Maskery, I.
    Meng, H.
    Leach, R. K.
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [7] Optimal design of lightweight acoustic metamaterials for low-frequency noise and vibration control of high-speed train composite floor
    Zhang, Jie
    Yao, Dan
    Peng, Wang
    Wang, Ruiqian
    Li, Jiang
    Guo, Shaoyun
    APPLIED ACOUSTICS, 2022, 199
  • [8] Low-frequency property and vibration reduction design of chiral star-shaped compositive mechanical metamaterials
    Zhang, Ying
    Wang, Liang
    Ding, Qian
    Han, Hongge
    Xu, Jinxin
    Yan, Hao
    Sun, Yongtao
    Yan, Qun
    Gao, Haoqiang
    MECHANICS OF ADVANCED MATERIALS AND STRUCTURES, 2023, 30 (18) : 3749 - 3763
  • [9] Modular Design for Acoustic Metamaterials: Low-Frequency Noise Attenuation
    Wu, Lingling
    Zhai, Zirui
    Zhao, Xinguang
    Tian, Xiaoyong
    Li, Dichen
    Wang, Qianxuan
    Jiang, Hanqing
    ADVANCED FUNCTIONAL MATERIALS, 2022, 32 (13)
  • [10] Low-frequency vibration and noise control in sandwiched composite locally resonant metamaterials-embedded structures
    Choi, Jewoo
    In, Byung Wook
    Hong, Taehoon
    Lee, Dong-Eun
    Cho, Tongjun
    Park, Hyo Seon
    DEVELOPMENTS IN THE BUILT ENVIRONMENT, 2024, 18