Time-domain simulation of acoustic wave propagation and interaction with flexible structures using Chebyshev collocation method

被引:11
|
作者
Wang, Chunqi [1 ]
Huang, Lixi [1 ]
机构
[1] Univ Hong Kong, Dept Mech Engn, Hong Kong, Hong Kong, Peoples R China
关键词
SCHEME; PREDICTION;
D O I
10.1016/j.jsv.2012.05.015
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A time-domain Chebyshev collocation (ChC) method is used to simulate acoustic wave propagation and its interaction with flexible structures in ducts. The numerical formulation is described using a two-dimensional duct noise control system, which consists of an expansion chamber and a tensioned membrane covering the side-branch cavity. Full coupling between the acoustic wave and the structural vibration of the tensioned membrane is considered in the modelling. A systematic method of solution is developed for the discretized differential equations over multiple physical domains. The time-domain ChC model is tested against analytical solutions under two conditions: one with an initial state of wave motion; the other with a time-dependent acoustic source. Comparisons with the finite-difference time-domain (FDTD) method are also made. Results show that the time-domain ChC method is highly accurate and computationally efficient for the time-dependent solution of duct acoustic problems. For illustrative purposes, the time-domain ChC method is applied to investigate the acoustic performance of three typical duct noise control devices: the expansion chamber, the quarter wavelength resonator and the drum silencer. The time-dependent simulation of the sound-structure interaction in the drum silencer reveals the delicate role of the membrane mass and tension in its sound reflection capability. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:4343 / 4358
页数:16
相关论文
共 50 条
  • [1] Parallel simulation of time-domain acoustic wave propagation
    Mocnik-Berljavac, Jure
    Slak, Jure
    Kosec, Gregor
    2019 42ND INTERNATIONAL CONVENTION ON INFORMATION AND COMMUNICATION TECHNOLOGY, ELECTRONICS AND MICROELECTRONICS (MIPRO), 2019, : 212 - 217
  • [2] Efficient SPH simulation of time-domain acoustic wave propagation
    Zhang, Y. O.
    Zhang, T.
    Ouyang, H.
    Li, T. Y.
    ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 2016, 62 : 112 - 122
  • [3] An explicit and stable time-domain method for simulation wave propagation in optical structures
    Ju, ZL
    Fu, JM
    Feng, EX
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 1997, 14 (04) : 249 - 252
  • [4] A MOVING ZONAL METHOD IN THE TIME-DOMAIN SIMULATION FOR ACOUSTIC PROPAGATION
    Zheng, Z. Charlie
    Ke, Guoyi
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION 2010, VOL 13, 2012, : 239 - 245
  • [5] Modeling of acoustic wave propagation in time-domain using the discontinuous Galerkin method - A comparison with measurements
    Simonaho, Simo-Pekka
    Lahivaara, Timo
    Huttunen, Tomi
    APPLIED ACOUSTICS, 2012, 73 (02) : 173 - 183
  • [6] A Hybrid Chebyshev Pseudo-Spectral Finite-Difference Time-Domain Method for Numerical Simulation of 2D Acoustic Wave Propagation
    Tong, Xiaozhong
    Sun, Ya
    MATHEMATICS, 2024, 12 (01)
  • [7] Time-domain simulation of acoustic propagation in a lined duct
    Reichert, R
    Biringen, S
    APPLIED ACOUSTICS, 2001, 62 (09) : 1049 - 1068
  • [8] TIME-DOMAIN WAVE-PROPAGATION IN OPTICAL STRUCTURES
    CHAN, RY
    LIU, JM
    IEEE PHOTONICS TECHNOLOGY LETTERS, 1994, 6 (08) : 1001 - 1003
  • [9] ON THE STABILITY OF TIME-DOMAIN INTEGRAL EQUATIONS FOR ACOUSTIC WAVE PROPAGATION
    Epstein, Charles L.
    Greengard, Leslie
    Hagstrom, Thomas
    DISCRETE AND CONTINUOUS DYNAMICAL SYSTEMS, 2016, 36 (08) : 4367 - 4382
  • [10] Wave propagation analysis for functionally graded material structures using time-domain spectral element method
    Xu, Chao
    Wang, Teng
    Zhendong yu Chongji/Journal of Vibration and Shock, 2015, 34 (13): : 18 - 23