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arXiv · astro-ph/0509455

Development of acoustic devices for ultra-high energy neutrino detectors

Abstract

Acoustic neutrino detection is a promising approach to instrument the large detector volumes needed for the detection of the small neutrino fluxes expected at ultra-high energies (E > 1 EeV). We report on several studies investigating the feasibility of such an acoustic detector. High-precision lab measurements using laser and proton beams aiming at the verification of the thermo-acoustic model have been performed. Different types of acoustic sensors have been developed and characterized. An autonomous acoustic system, attached to the ANTARES prototype string "Line0", has been deployed and operated successfully at 2400 m depth, allowing for in-situ studies of the acoustic background in the Mediterranean Sea.

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Timo Karg, Gisela Anton, Kay Graf, Juergen Hoessl, Alexander Kappes, Uli Katz, Robert Lahmann, Christopher Naumann, Karsten Salomon, Stefanie Schwemmer. 2005-09-15. Development of acoustic devices for ultra-high energy neutrino detectors. https://arxiv.org/abs/astro-ph/0509455

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