Publications des scientifiques de l'IRD

Ardhuin F., Lavanant T., Obrebski M., Marie L., Royer J. Y., d'Eu J. F., Howe B. M., Lukas R., Aucan Jerôme. (2013). A numerical model for ocean ultra-low frequency noise : wave-generated acoustic-gravity and Rayleigh modes. Journal of the Acoustical Society of America, 134 (4), p. 3242-3259. ISSN 0001-4966.

Titre du document
A numerical model for ocean ultra-low frequency noise : wave-generated acoustic-gravity and Rayleigh modes
Année de publication
2013
Type de document
Article référencé dans le Web of Science WOS:000330119700074
Auteurs
Ardhuin F., Lavanant T., Obrebski M., Marie L., Royer J. Y., d'Eu J. F., Howe B. M., Lukas R., Aucan Jerôme
Source
Journal of the Acoustical Society of America, 2013, 134 (4), p. 3242-3259 ISSN 0001-4966
The generation of ultra-low frequency acoustic noise (0.1 to 1 Hz) by the nonlinear interaction of ocean surface gravity waves is well established. More controversial are the quantitative theories that attempt to predict the recorded noise levels and their variability. Here a single theoretical framework is used to predict the noise level associated with propagating pseudo-Rayleigh modes and evanescent acoustic-gravity modes. The latter are dominant only within 200 m from the sea surface, in shallow or deep water. At depths larger than 500 m, the comparison of a numerical noise model with hydrophone records from two open-ocean sites near Hawaii and the Kerguelen islands reveal: (a) Deep ocean acoustic noise at frequencies 0.1 to 1 Hz is consistent with the Rayleigh wave theory, in which the presence of the ocean bottom amplifies the noise by 10 to 20 dB; (b) in agreement with previous results, the local maxima in the noise spectrum support the theoretical prediction for the vertical structure of acoustic modes; and (c) noise level and variability are well predicted for frequencies up to 0.4 Hz. Above 0.6 Hz, the model results are less accurate, probably due to the poor estimation of the directional properties of wind-waves with frequencies higher than 0.3 Hz.
Plan de classement
Limnologie physique / Océanographie physique [032]
Localisation
Fonds IRD [F B010061504]
Identifiant IRD
fdi:010061504
Contact