• DocumentCode
    1202370
  • Title

    The calibration of a laser light line scan method for determining local interface roughness of the ocean floor

  • Author

    Varghese, Suja M. ; Isakson, Marcia J.

  • Author_Institution
    Lockheed Martin, NASAs Johnson Space Center, Houston, TX, USA
  • Volume
    30
  • Issue
    2
  • fYear
    2005
  • fDate
    4/1/2005 12:00:00 AM
  • Firstpage
    463
  • Lastpage
    467
  • Abstract
    An accurate model of acoustic interaction with sandy sediments is crucial to the application of SONAR in shallow-water environments. Because acoustic scattering from interface roughness plays a major role in the reverberation from and penetration into sandy sediments, it is imperative to be able to accurately measure the roughness of the sediment/water interface. An interface roughness measurement system has been developed in which a laser light sheet is projected onto the ocean floor. A resulting image can then be analyzed to determine the interface roughness. The system has been shown to achieve a height measurement error of less than 0.9 mm over a spatial frequency range of 15 to 60 cycles/m with about 0.5 mm standard deviation. These spatial frequencies correspond to acoustic Bragg frequencies of 11 to 45 kHz for backscattering applications. The error in wavelength was less than 5 mm with a standard deviation of about 1.0 mm. The system is inexpensive, easily deployable and automated in terms of data extraction. This system could greatly aid in determining the local interface profile for in situ acoustic scattering experiments.
  • Keywords
    acoustic wave scattering; measurement by laser beam; oceanographic techniques; sediments; surface topography measurement; underwater sound; 11 to 45 kHz; SONAR; acoustic Bragg frequencies; acoustic interaction; automatic data extraction; backscattering applications; in situ acoustic scattering; interface roughness measurement; laser light line scan method; local interface profile; local interface roughness; marine sediments; measurement error; ocean floor; sandy sediments; scattering parameters measurement; sediment/water interface; shallow-water environments; spatial frequencies; Acoustic applications; Acoustic measurements; Acoustic scattering; Calibration; Frequency; Laser modes; Oceans; Sea measurements; Sediments; Sonar; Acoustic scattering; imaging; marine sediments; scattering parameters measurement;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/JOE.2004.837140
  • Filename
    1522524