Frequency-dependent viscoelasticity effects on the wave attenuation performance of multi-layered periodic foundations

被引:0
|
作者
Safi, M. [1 ]
Vakilifard, M. [2 ]
Mahmoodi, M. J. [1 ]
机构
[1] Shahid Beheshti Univ, Fac Civil Water & Environm Engn, Tehran 1983969411, Iran
[2] Shahid Beheshti Univ, Fac Mech & Energy Engn, Tehran 1983969411, Iran
关键词
layered metamaterial; periodic foundation; complex dispersion curve; wave transmission diagram; O347;
D O I
10.1007/s10483-024-3091-9
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
In this paper, layered periodic foundations (LPFs) are numerically examined for their responses to longitudinal and transverse modes in the time and frequency domains. Three different unit-cells, i.e., 2-layer, 4-layer, and 6-layer unit-cells, comprising concrete/rubber, concrete/rubber/steel/rubber, and concrete/rubber/steel/rubber/lead/rubber materials, respectively, are taken into account. Also, the viscoelasticity behavior of the rubber is modeled with two factors, i.e., a frequency-independent (FI) loss factor and a linear frequency-dependent (FD) loss factor. Following the extraction of the complex dispersion curves and the identification of the band gaps (BGs), the simulations of wave transmission in the time and frequency domains are performed using the COMSOL software. Subsequent parametric studies evaluate the effects of the rubber viscoelasticity models on the dispersion curves and the wave transmission for the longitudinal and transverse modes. The results show that considering the rubber viscoelasticity enhances the wave attenuation performance. Moreover, the transverse-mode damping is more sensitive to the viscoelasticity model than its longitudinal counterpart. The 6-layer unit-cell LPF exhibits the lowest BG, ranging from 4.8 Hz to 6.5 Hz.
引用
收藏
页码:407 / 424
页数:18
相关论文
共 50 条
  • [22] Frequency-dependent effects on global S-wave traveltimes: wavefront-healing, scattering and attenuation
    Zaroli, Christophe
    Debayle, Eric
    Sambridge, Malcolm
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2010, 182 (02) : 1025 - 1042
  • [23] Application of Absorbers with Frequency-Dependent Attenuation in Powerful Broadband Traveling Wave Tubes
    Danilov, Andrey B.
    Il'ina, Elena M.
    IEEE INTERNATIONAL VACUUM ELECTRONICS CONFERENCE, 2014, : 271 - 272
  • [24] ATTENUATION OF SURFACE ACOUSTIC-WAVE THROUGH SPUTTERED MULTI-LAYERED NICKEL FILMS
    YOSHIDA, H
    FUJIMORI, H
    KANEKO, T
    ABE, S
    MORITA, H
    JOURNAL DE PHYSIQUE, 1988, 49 (C-8): : 1795 - 1796
  • [25] FREQUENCY-DEPENDENT ATTENUATION EFFECTS IN PULSED DOPPLER ULTRASOUND - EXPERIMENTAL RESULTS
    HOLLAND, SK
    ORPHANOUDAKIS, SC
    JAFFE, CC
    IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1984, 31 (09) : 626 - 631
  • [26] Effects of intrinsic anisotropy on seismic dispersion, attenuation and frequency-dependent anisotropy
    Guo, Junxin
    Cao, Chenghao
    Chen, Xiaofei
    Liao, Jianping
    CHINESE SCIENCE BULLETIN-CHINESE, 2023, 68 (26): : 3491 - 3505
  • [27] Damping properties of bi-dimensional sandwich structures with multi-layered frequency-dependent vis co-elastic cores
    Adessina, Ayodele
    Hamdaoui, Mohamed
    Xu, Chao
    Daya, El Mostafa
    COMPOSITE STRUCTURES, 2016, 154 : 334 - 343
  • [28] Frequency-Dependent Attenuation and Phase Velocity Dispersion of an Acoustic Wave Propagating in the Media with Damages
    Stulov, Anatoli
    Erofeev, Vladimir I.
    GENERALIZED CONTINUA AS MODELS FOR CLASSICAL AND ADVANCED MATERIALS, 2016, 42 : 413 - 423
  • [29] Lapse time and frequency-dependent coda wave attenuation for Delhi and its surrounding regions
    Das, Rabin
    Mukhopadhyay, Sagarika
    Singh, Ravi Kant
    Baidya, Pushap R.
    TECTONOPHYSICS, 2018, 738 : 51 - 63
  • [30] Frequency-dependent shear wave attenuation across the Central Anatolia region, Türkiye
    Izgi, Gizem
    Eken, Tuna
    Gaebler, Peter
    Kaya-Eken, Tulay
    Taymaz, Tuncay
    SOLID EARTH, 2024, 15 (06) : 657 - 669