Analysis of ray trajectories of flexural waves propagating over generalized acoustic black hole indentations

被引:67
|
作者
Huang, Wei [1 ]
Ji, Hongli [1 ]
Qiu, Jinhao [1 ]
Cheng, Li [2 ]
机构
[1] Nanjing Univ Aeronaut & Astronaut, State Key Lab Mech & Control Mech Struct, Nanjing, Jiangsu, Peoples R China
[2] Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong, Peoples R China
基金
中国国家自然科学基金;
关键词
Flexural wave; Acoustic black hole; Focalization; Ray trajectories; PLATES; VIBRATIONS; FLOW;
D O I
10.1016/j.jsv.2017.12.012
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
An Acoustic Black Hole (ABH) indentation embedded in thin-walled structures has been proved remarkably useful for broadband flexural wave focalization, in which the phase velocity of the flexural waves and the refractive index of the media undergo gradual changes from the outside towards the center of the indentation. A generalized two-dimensional ABH indentation can be defined by three geometric parameters: a power index, an extra thickness and a radius of a plateau at the indentation center. The dependence of the energy focalization on these parameters as well as the energy focalization process is of paramount importance for the understanding and design of effective ABH indentations. This work aims at investigating the energy focalization characteristics of flexural waves in such generalized ABH indentations. The calculation of the flexural ray trajectories is conducted to reveal and analyze the wave propagation features through numerical integration of the eikonal equation from the Geometric Acoustics Approximation (GAA). The theoretical results are verified by both experiment using wave visualization technique based on laser acoustic scanning method and finite element (FE) simulations. Finally, the influence of the geometric parameters on the flexural wave focalization characteristics in ABH indentations is discussed in detail. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:216 / 226
页数:11
相关论文
共 50 条
  • [21] Damping of flexural vibrations in turbofan blades using the acoustic black hole effect
    Bowyer, E. P.
    Krylov, V. V.
    APPLIED ACOUSTICS, 2014, 76 : 359 - 365
  • [22] Damping of flexural vibrations in rectangular plates using the acoustic black hole effect
    O'Boy, D. J.
    Krylov, V. V.
    Kralovic, V.
    JOURNAL OF SOUND AND VIBRATION, 2010, 329 (22) : 4672 - 4688
  • [23] Active control of a black hole or concentrator for flexural waves in an elastic metamaterial plate
    Ning, Li
    Wang, Yi-Ze
    Wang, Yue-Sheng
    MECHANICS OF MATERIALS, 2020, 142
  • [24] Thermodynamical analysis of acoustic Schwarzschild black hole
    Yasir, Muhammad
    Tiecheng, Xia
    Ditta, Allah
    Ali, Riasat
    Atamurotov, Farruh
    NEW ASTRONOMY, 2024, 105
  • [25] A generalized harmonic analysis of ultrasound waves propagating in cancellous bone
    Maruo, Satoshi
    Hosokawa, Atsushi
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2014, 53 (07)
  • [26] The entropy of the noncommutative acoustic black hole based on generalized uncertainty principle
    Anacleto, M. A.
    Brito, F. A.
    Passos, E.
    Santos, W. P.
    PHYSICS LETTERS B, 2014, 737 : 6 - 11
  • [27] Evanescent waves in a metabeam attached with lossy acoustic black hole pillars
    Deng, Jie
    Gao, Nansha
    Chen, Xu
    Han, Bing
    Ji, Hongli
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2023, 191
  • [28] Acoustic clouds: Standing sound waves around a black hole analogue
    Benone, Carolina L.
    Crispino, Luis C. B.
    Herdeiro, Carlos
    Radu, Eugen
    PHYSICAL REVIEW D, 2015, 91 (10)
  • [29] A vibro-impact acoustic black hole for passive damping of flexural beam vibrations
    Li, Haiqin
    Touze, Cyril
    Pelat, Adrien
    Gautier, Francois
    Kong, Xianren
    JOURNAL OF SOUND AND VIBRATION, 2019, 450 : 28 - 46
  • [30] Flexural wave propagation characteristics of metabeam with simultaneous acoustic black hole and local resonator
    Mondal, Arghya
    Murugan, Senthil
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2024, 104