• DocumentCode
    1465294
  • Title

    A modeling study of acoustic propagation through moving shallow-water solitary wave packets

  • Author

    Duda, Timothy F. ; Preisig, James C.

  • Author_Institution
    Dept. of Appl. Ocean Phys. & Eng., Woods Hole Oceanogr. Instn., MA, USA
  • Volume
    24
  • Issue
    1
  • fYear
    1999
  • fDate
    1/1/1999 12:00:00 AM
  • Firstpage
    16
  • Lastpage
    32
  • Abstract
    Propagation of 400-Hz sound through continental-shelf internal solitary wave packets is shown by numerical simulation to be strongly influenced by coupling of normal modes. Coupling in a packet is controlled by the mode coefficients at the point where sound enters the packet, the dimensions of the waves and packet, and the ambient depth structures of temperature and salinity. In the case of a moving packet, changes of phases of the incident modes with respect to each other dominate over the other factors, altering the coupling over time and thus inducing signal fluctuations. The phasing within a moving packet varies with time scales of minutes, causing coupling and signal fluctuations with comparable time scales. The directionality of energy flux between high-order acoustic modes and (less attenuated) low-order modes determines a gain factor for long-range propagation. A significant finding is that energy flux toward low-order modes through the effect of a packet near a source favoring high-order modes will give net amplification at distant ranges. Conversely, a packet far from a source sends energy into otherwise quiet higher modes. The intermittency of the coupling and of high-mode attenuation via bottom interaction means that signal energy fluctuations and modal diversity fluctuations at a distant receiver are complementary, with energy fluctuations suggesting a source-region packet and mode fluctuations suggesting a receiver-region packet. Simulations entailing 33-km propagation are used in the analyses, imitating the SWARM experiment geometry, allowing comparison with observations
  • Keywords
    coupled mode analysis; ocean waves; parabolic equations; solitons; underwater acoustic propagation; SWARM experiment geometry; ambient depth structures; bottom interaction; continental-shelf internal solitary wave packets; coupling of normal modes; directionality of energy flux; distant receiver; gain factor; high-mode attenuation; high-order acoustic modes; long-range propagation; low-order modes; modal diversity fluctuations; mode coefficients; moving shallow-water solitary wave packets; nonlinear internal waves; numerical simulation; parabolic equation; receiver-region packet; salinity structures; signal fluctuations; source-region packet; temperature structures; temporal coherence; time scales; underwater acoustic propagation; Acoustic propagation; Acoustic waveguides; Acoustic waves; Attenuation; Fluctuations; Numerical simulation; Ocean temperature; Sea measurements; Temperature control; Underwater acoustics;
  • fLanguage
    English
  • Journal_Title
    Oceanic Engineering, IEEE Journal of
  • Publisher
    ieee
  • ISSN
    0364-9059
  • Type

    jour

  • DOI
    10.1109/48.740153
  • Filename
    740153