Prediction of sound level at high-frequency bands by means of a simplified boundary element method

被引:14
|
作者
Kim, JK [1 ]
Ih, JG [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Dept Mech Engn, Ctr Noise & Vibrat Control, Taejon 305701, South Korea
来源
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA | 2002年 / 112卷 / 06期
关键词
D O I
10.1121/1.1517254
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
A simplified boundary element method (BEM) for dealing with high-frequency sound is proposed. The boundary integral equation is modified into a quadratic form to enable the prediction of sound levels in the one-third octave band analysis. Monopole and dipole source terms in the conventional BEM are transformed into the auto- and cross-spectra of two vibrating sources, in which the cross-spectra are eventually neglected by assuming that the correlation coefficients involved are negligible. The present method is compared with the Rayleigh integral for calculating the sound pressure radiated from a baffled panel, in terms of the application limit. The characteristic length of the boundary element and the applicable frequency range can be determined by the lower limit value of the correlation coefficient. As a test example, the field pressure radiated from a partially vibrating sphere is predicted and the resultant trend is in good agreement with the analytic solution as far as the related correlation coefficient satisfies the assumption. The overdetermination process for overcoming nonuniqueness in exterior radiation problems is unnecessary in the present method because phase information can be ignored. The results of the calculation show that the proposed method is acceptable for solving the exterior radiation problem at a high-frequency range in a timely manner. (C) 2002 Acoustical Society of America.
引用
收藏
页码:2645 / 2655
页数:11
相关论文
共 50 条
  • [31] SIMPLIFIED HIGH-FREQUENCY MOS CAPACITANCE FORMULA
    BREWS, JR
    SOLID-STATE ELECTRONICS, 1977, 20 (07) : 607 - 608
  • [32] A high-frequency open boundary for transient seepage analyses of semi-infinite layers by extending the scaled boundary finite element method
    Prempramote, Suriyon
    INTERNATIONAL JOURNAL FOR NUMERICAL AND ANALYTICAL METHODS IN GEOMECHANICS, 2016, 40 (06) : 919 - 941
  • [33] A dual-level singular boundary method for large-scale high frequency sound field analysis
    Li J.
    Chen W.
    2018, Chinese Society of Theoretical and Applied Mechanics (50): : 961 - 969
  • [34] Simplified high-frequency model for AC drives
    Gubía-Villabona, E
    Sanchis-Gúrpide, P
    Alonso-Sádaba, O
    Lumbreras-Azanza, A
    IECON-2002: PROCEEDINGS OF THE 2002 28TH ANNUAL CONFERENCE OF THE IEEE INDUSTRIAL ELECTRONICS SOCIETY, VOLS 1-4, 2002, : 1144 - 1149
  • [35] Reconstruction of sound sources by means of an inverse Boundary Element Formulation
    Nolte, B
    JOURNAL OF COMPUTATIONAL ACOUSTICS, 2005, 13 (01) : 187 - 201
  • [36] Multilevel Boundary-Coupled Method for the Efficient Thermal Prediction of High-Frequency Transformers (HFTs) With Cylindrical Windings
    Dang, Yongliang
    Zhu, Lingyu
    Liu, Fengshuo
    Zhang, Fan
    Liu, Zhanlei
    Ji, Shengchang
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2025, 40 (04) : 5566 - 5582
  • [37] A BOUNDARY INTEGRAL-EQUATION METHOD FOR HIGH-FREQUENCY EDDY CURRENTS
    ANCELLE, B
    NICOLAS, A
    SABONNADIERE, JC
    IEEE TRANSACTIONS ON MAGNETICS, 1981, 17 (06) : 2568 - 2570
  • [38] THE METHOD OF BOUNDARY INTEGRAL-EQUATIONS FOR DESIGNING HIGH-FREQUENCY RESONATORS
    IVANOV, VY
    KARLINER, MM
    TERYAYEV, VE
    YAKOVLEV, VP
    USSR COMPUTATIONAL MATHEMATICS AND MATHEMATICAL PHYSICS, 1986, 26 (06): : 194 - 199
  • [39] AN IMPROVED ALGORITHM OF MULTI-FREQUENCY PREDICTION IN ACOUSTICAL BOUNDARY ELEMENT METHOD
    Miao Yuyue
    Li Tianyun
    Zhu Xiang
    Guo Wenjie
    Xiong Yeping
    PROCEEDINGS OF THE 22ND INTERNATIONAL CONGRESS ON SOUND AND VIBRATION: MAJOR CHALLENGES IN ACOUSTICS, NOISE AND VIBRATION RESEARCH, 2015, 2015,
  • [40] A Spectrum Prediction Method for Bursty Frequency Bands
    Yang, Chao
    Peng, Tao
    Zuo, Peiliang
    Wang, Xinyue
    2021 IEEE WIRELESS COMMUNICATIONS AND NETWORKING CONFERENCE WORKSHOPS (WCNCW), 2021,