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1.
J Acoust Soc Am ; 148(3): EL234, 2020 09.
Artículo en Inglés | MEDLINE | ID: mdl-33003841

RESUMEN

Multiple scattering of acoustic waves offers a noninvasive method for density estimation of a dense shoal of fish where traditional techniques such as echo-counting or echo-integration fail. Through acoustic experiments with a multi-beam sonar system in open sea cages, multiple scattering of sound in a fish shoal, and, in particular, the coherent backscattering effect, can be observed and interpreted quantitatively. Furthermore, a volumetric scan of the fish shoal allows isolation of a few individual fish from which target strength estimations are possible. The combination of those two methods allows for fish density estimation in the challenging case of dense shoals.


Asunto(s)
Acústica , Peces , Animales , Océanos y Mares , Sonido
2.
Phys Rev Lett ; 119(16): 164301, 2017 Oct 20.
Artículo en Inglés | MEDLINE | ID: mdl-29099211

RESUMEN

The strong impact of scattering resonances on all the key transport parameters of classical waves in disordered media is demonstrated through ultrasonic experiments on monodisperse emulsions. Through accurate measurements of both ballistic and diffusive transport over a wide range of frequencies, we show that the group velocity is large near sharp resonances, whereas the energy velocity (as well as the diffusion coefficient) is significantly slowed down by resonant scattering delay. Excellent agreement between theory and experiment is found, elucidating the effects of resonant scattering on wave transport in both acoustics and optics.

3.
Sci Rep ; 11(1): 17541, 2021 09 02.
Artículo en Inglés | MEDLINE | ID: mdl-34475477

RESUMEN

A dramatic slowing down of acoustic wave transport in dense fish shoals is observed in open-sea fish cages. By employing a multi-beam ultrasonic antenna, we observe the coherent backscattering phenomenon. We extract key parameters of wave transport such as the transport mean free path and the energy transport velocity of diffusive waves from diffusion theory fits to the experimental data. The energy transport velocity is found to be about 10 times smaller than the speed of sound in water, a value that is exceptionally low compared with most observations in acoustics. By studying different models of the fish body, we explain the basic mechanism responsible for the observed very slow transport of ultrasonic waves in dense fish shoals. Our results show that, while the fish swim bladder plays an important role in wave scattering, other organs have to be considered to explain ultra-low energy transport velocities.


Asunto(s)
Peces/fisiología , Sonido , Ondas Ultrasónicas , Acústica , Animales , Difusión , Transferencia de Energía , Modelos Teóricos , Océanos y Mares , Fenómenos Físicos
4.
Sci Rep ; 11(1): 4627, 2021 Feb 25.
Artículo en Inglés | MEDLINE | ID: mdl-33633201

RESUMEN

Negative refraction of acoustic waves is demonstrated through underwater experiments conducted at ultrasonic frequencies on a 3D locally resonant acoustic metafluid made of soft porous silicone-rubber micro-beads suspended in a yield-stress fluid. By measuring the refracted angle of the acoustic beam transmitted through this metafluid shaped as a prism, we determine the acoustic index to water according to Snell's law. These experimental data are then compared with an excellent agreement to calculations performed in the framework of Multiple Scattering Theory showing that the emergence of negative refraction depends on the volume fraction [Formula: see text] of the resonant micro-beads. For diluted metafluid ([Formula: see text]), only positive refraction occurs whereas negative refraction is demonstrated over a broad frequency band with concentrated metafluid ([Formula: see text]).

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