An improved method for the calculation of Near-Field Acoustic Radiation Modes

被引:8
|
作者
Liu, Zu-Bin [1 ,2 ]
Maury, Cedric [2 ]
机构
[1] Zhejiang Univ, Ocean Coll, Hangzhou 310058, Zhejiang, Peoples R China
[2] CNRS, Lab Mecan & Acoust, F-13402 Marseille 20, France
关键词
ACTIVE CONTROL; MODAL DECOMPOSITION; ANALYTIC SOLUTIONS; SOUND; COMPUTATION; NEARFIELD; BEHAVIOR;
D O I
10.1016/j.jsv.2015.10.005
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Sensing and controlling Acoustic Radiation Modes (ARMs) in the near-field of vibrating structures is of great interest for broadband noise reduction or enhancement, as ARMs are velocity distributions defined over a vibrating surface, that independently and optimally contribute to the acoustic power in the acoustic field. But present methods only provide far-field ARMs (FFARMs) that are inadequate for the acoustic near-field problem. The Near-Field Acoustic Radiation Modes (NFARMs) are firstly studied with an improved numerical method, the Pressure-Velocity method, which rely on the eigen decomposition of the acoustic transfers between the vibrating source and a conformal observation surface, including sound pressure and velocity transfer matrices. The active and reactive parts of the sound power are separated and lead to the active and reactive ARMs. NFARMs are studied for a 2D baffled beam and for a 3D baffled plate, and so as differences between the NFARMS and the classical FFARMs. Comparisons of the NFARMs are analyzed when varying frequency and observation distance to the source. It is found that the efficiencies and shapes of the optimal active ARMs are independent on the distance while that of the reactive ones are distinctly related on. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:316 / 328
页数:13
相关论文
共 50 条
  • [21] Near-field acoustic densimeter and viscosimeter
    Patois, R
    Vairac, P
    Cretin, B
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2000, 71 (10): : 3860 - 3863
  • [22] Near-field acoustic streaming jet
    Moudjed, B.
    Botton, V.
    Henry, D.
    Millet, S.
    Garandet, J. P.
    Ben Hadid, H.
    PHYSICAL REVIEW E, 2015, 91 (03):
  • [23] THE ACOUSTIC NEAR-FIELD OF A DANCING HONEYBEE
    MICHELSEN, A
    TOWNE, WF
    KIRCHNER, WH
    KRYGER, P
    JOURNAL OF COMPARATIVE PHYSIOLOGY A-SENSORY NEURAL AND BEHAVIORAL PHYSIOLOGY, 1987, 161 (05): : 633 - 643
  • [24] Rapid rise of planar object by near-field acoustic levitation on recessed acoustic radiation surface
    Aono, Kohei
    Aoyagi, Manabu
    ULTRASONICS, 2022, 119
  • [25] Significance of the Higher-order Modes to the Near-field Calculation of the Spherical Helix Antennas
    Fujita, Keisuke
    2022 IEEE-APS TOPICAL CONFERENCE ON ANTENNAS AND PROPAGATION IN WIRELESS COMMUNICATIONS (IEEE APWC), 2022, : 48 - 48
  • [26] ACOUSTIC RADIATION FORCE ON A RIGID SPHERE IN THE NEAR-FIELD OF A CIRCULAR PISTON VIBRATOR
    HASEGAWA, T
    KIDO, T
    TAKEDA, S
    INOUE, N
    MATSUZAWA, K
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1990, 88 (03): : 1578 - 1583
  • [27] On Sparse Reconstructions in Near-Field Acoustic Holography Using the Method of Superposition
    Abusag, Nadia M.
    Chappell, David J.
    JOURNAL OF COMPUTATIONAL ACOUSTICS, 2016, 24 (03)
  • [28] Characteristics of underwater near-field acoustic radiation force acting on a planar object
    Hatanaka, T
    Koike, Y
    Nakamura, K
    Ueha, S
    Hashimoto, Y
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 2-LETTERS, 1999, 38 (11A): : L1284 - L1285
  • [29] Evaluation of textural properties of mango tissue by a near-field acoustic method
    Valente, M
    Ferrandis, JY
    POSTHARVEST BIOLOGY AND TECHNOLOGY, 2003, 29 (02) : 219 - 228
  • [30] Data Extrapolation Method Based on Patch Near-Field Acoustic Holography
    Jia, Wen-qiang
    Chen, Jin
    Li, Jia-qing
    Yang, Chao
    ACTA ACUSTICA UNITED WITH ACUSTICA, 2009, 95 (01) : 142 - 150