Near-resonance scattering from arrays of artificial fish swimbladders

被引:5
|
作者
Nero, R. W. [1 ]
Feuillade, C.
Thompson, C. H.
Love, R. H.
机构
[1] USN, Natl Marine Fisheries Serv, Res Lab, Stennis Space Ctr, Stennis Space Ctr, MS 39529 USA
[2] BayouAcoustics, Ft Worth, TX 76179 USA
来源
关键词
D O I
10.1121/1.2382277
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The air-filled swimbladders of fish resonate like damped air bubbles, and are very efficient acoustic scatterers at low to mid frequencies (typically < 20 kHz). Scattering experiments were performed on an artificial "fish school" constructed from polyethylene bubbles. A mathematical model, developed to describe near-resonance backscattering from schooling fish [J. Acoust. Soc. Am. 99, 196-208 (1996)], was used to analyze the physical behavior for three different arrays of these bubbles. The measurements gave excellent agreement with the model, showing that coupled-resonance and interference effects cause the frequency response of tightly packed arrays, with spacing corresponding to the order of a body length for fish, to differ significantly from those of more dispersed arrays. As the array spacing is increased to the equivalent of several body lengths, these effects rapidly diminish. The results of this comparison demonstrate that, at low to mid frequencies, coupled resonance and interference effects are likely in schooling fish, and need to be considered in applications of underwater acoustic methods to the study of fish populations. (c) 2007 Acoustical Society of America.
引用
收藏
页码:132 / 143
页数:12
相关论文
共 50 条
  • [41] Chaos-Assisted Quantum Tunneling and Delocalization Caused by Resonance or Near-Resonance
    Danfu Liang
    Jiawei Zhang
    Xili Zhang
    International Journal of Theoretical Physics, 2018, 57 : 2437 - 2446
  • [42] ARE THE KEPLER NEAR-RESONANCE PLANET PAIRS DUE TO TIDAL DISSIPATION?
    Lee, Man Hoi
    Fabrycky, D.
    Lin, D. N. C.
    ASTROPHYSICAL JOURNAL, 2013, 774 (01):
  • [43] Application of the Symbolic (Complex) Method to Study Near-Resonance Phenomena
    I. P. Popov
    Journal of Machinery Manufacture and Reliability, 2020, 49 : 1053 - 1063
  • [44] Forced oscillations in control systems under near-resonance conditions
    Rachinskii, DI
    AUTOMATION AND REMOTE CONTROL, 1995, 56 (11) : 1575 - 1584
  • [45] Near-resonance frequency control in the presence of random perturbations of parameters
    Kovaleva, AS
    PMM JOURNAL OF APPLIED MATHEMATICS AND MECHANICS, 2004, 68 (02): : 259 - 268
  • [46] Near-resonance plasmonic trapping of single and multiple Au nanoparticles
    Toussaint, Kimani C., Jr.
    Liu, Mingzhao
    Pelton, Matthew
    Pesic, Jelena
    Guyot-Sionnest, Philippe
    Scherer, Norbert F.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 233
  • [47] Near-resonance approximation of rotating Navier-Stokes equations
    Cheng, Bin
    Sakellaris, Zisis N.
    NONLINEARITY, 2023, 36 (04) : 2074 - 2127
  • [48] Application of the Symbolic (Complex) Method to Study Near-Resonance Phenomena
    Popov, I. P.
    JOURNAL OF MACHINERY MANUFACTURE AND RELIABILITY, 2020, 49 (12) : 1053 - 1063
  • [49] Saturation in the near-resonance nonlinearities in a triazole-quinone derivative
    Rangel-Rojo, R
    Stranges, L
    Kar, AK
    Mendez-Rojas, MA
    Watson, WH
    OPTICS COMMUNICATIONS, 2002, 203 (3-6) : 385 - 391
  • [50] NEAR-RESONANCE RAMAN-SCATTERING OF LONGITUDINAL OPTICAL PHONON MODES AND INTERFACE MODES IN GAAS/ALAS SUPERLATTICES
    WANG, ZP
    HAN, HX
    LI, GH
    JIANG, DS
    PLOOG, K
    JOURNAL OF PHYSICS-CONDENSED MATTER, 1992, 4 (02) : 367 - 373