• DocumentCode
    1497977
  • Title

    Deep-water acoustic coherence at long ranges: theoretical prediction and effects on large-array signal processing

  • Author

    Gorodetskaya, Elena Yu ; Malekhanov, Alexander I. ; Sazontov, Alexander G. ; Vdovicheva, Nadezhda K.

  • Author_Institution
    Inst. of Appl. Phys., Acad. of Sci., Nizhny Novgorod, Russia
  • Volume
    24
  • Issue
    2
  • fYear
    1999
  • fDate
    4/1/1999 12:00:00 AM
  • Firstpage
    156
  • Lastpage
    171
  • Abstract
    This paper presents results of combined consideration of sound coherence and array signal processing in long-range deep-water environments. Theoretical evaluation of the acoustic signal mutual coherence function (MCF) of space for a given sound-speed profile and particular scattering mechanism is provided. The predictions of the MCF are employed as input data to investigate the coherence-induced effects on the horizontal and vertical array gains associated with linear and quadratic beamformers with emphasis on the optimal ones. A method of the radiation transport equation is developed to calculate the MCF of the multimode signal under the assumption that internal waves or surface wind waves are the main source of long-range acoustic fluctuations in a deep-water channel. Basic formulations of the array weight vectors and small signal deflection are then exploited to examine optimal linear and quadratic processors in comparison with plane-wave beamformers. For vertical arrays, particular attention is paid also to evaluation of the ambient modal noise factor. The numerical simulations are carried out for range-independent environments from the Northwest Pacific for a sound frequency of 250 Hz and distances up to 1000 km. It was shown distinctly that both signal coherence degradation and modal noise affect large-array gain, and these effects are substantially dependent on the processing technique used. Rough surface sound scattering was determined to cause the most significant effects
  • Keywords
    acoustic arrays; acoustic signal processing; array signal processing; coherence; covariance matrices; geophysical signal processing; oceanographic techniques; space-time adaptive processing; underwater acoustic propagation; 1000 km; 250 Hz; Northwest Pacific; acoustic signal mutual coherence function; ambient modal noise factor; array weight vectors; coherence-induced effects; covariance matrix; deep-water acoustic coherence; horizontal array gains; internal waves; large-array signal processing; linear beamformers; long range propagation; long-range acoustic fluctuations; long-range deep-water environments; multimode signal; numerical simulation; optimal beamformers; plane-wave beamformers; quadratic beamformers; radiation transport equation; rough surface sound scattering; scattering mechanism; signal coherence degradation; small signal deflection; sound-speed profile; surface wind waves; vertical array gains; Acoustic noise; Acoustic scattering; Acoustic signal processing; Array signal processing; Equations; Fluctuations; Gain; Signal processing; Surface acoustic waves; Working environment noise;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/48.757268
  • Filename
    757268