<p>Position calibration in the deep sea is typically done by means of acoustic multilateration using three or more acoustic emitters installed at known positions. Rather than using hydrophones as receivers that are exposed to the ambient pressure, the sound signals can be coupled to piezo ceramics glued to the inside of existing containers for electronics or measuring instruments of a deep sea infrastructure. The ANTARES neutrino telescope operated from 2006 until 2022 in the Mediterranean Sea at a depth exceeding <b>2000&#xa0;m</b>. It comprised nearly 900 glass spheres with <b>432&#xa0;mm</b> diameter and <b>15&#xa0;mm</b> thickness, equipped with photomultiplier tubes to detect Cherenkov light from tracks of charged elementary particles. In an experimental setup within ANTARES, piezo sensors have been glued to the inside of such – otherwise empty – glass spheres. These sensors recorded signals from acoustic emitters with frequencies from <b>46545 to 60235&#xa0;Hz</b>. Two waves propagating through the glass sphere are found as a result of the excitation by the waves in the water. These can be qualitatively associated with symmetric and asymmetric Lamb-like waves of zeroth order: a fast (early) one with <InlineEquation ID="IEq1"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="10686_2024_9971_Article_IEq1.gif" Format="GIF" Height="19" Rendition="HTML" Resolution="72" Type="Linedraw" Width="117" /> </InlineMediaObject> <EquationSource Format="TEX">\(\varvec{v_e \approx 5\,{\textbf {mm}}/\mu \text {s}}\)</EquationSource> <EquationSource Format="MATHML"><math> <mrow> <msub> <mi mathvariant="bold-italic">v</mi> <mi mathvariant="bold-italic">e</mi> </msub> <mo mathvariant="bold">≈</mo> <mn mathvariant="bold">5</mn> <mspace width="0.166667em" /> <mi mathvariant="bold">mm</mi> <mo mathvariant="bold" stretchy="false">/</mo> <mi mathvariant="bold-italic">μ</mi> <mtext>s</mtext> </mrow> </math></EquationSource> </InlineEquation> and a slow (late) one with <InlineEquation ID="IEq2"> <InlineMediaObject> <ImageObject Color="BlackWhite" FileRef="10686_2024_9971_Article_IEq2.gif" Format="GIF" Height="19" Rendition="HTML" Resolution="72" Type="Linedraw" Width="120" /> </InlineMediaObject> <EquationSource Format="TEX">\(\varvec{v_\ell \approx \,2\,{\textbf {mm}}/\mu \text {s}}\)</EquationSource> <EquationSource Format="MATHML"><math> <mrow> <msub> <mi mathvariant="bold-italic">v</mi> <mi mathvariant="bold-italic">ℓ</mi> </msub> <mo mathvariant="bold">≈</mo> <mspace width="0.166667em" /> <mn mathvariant="bold">2</mn> <mspace width="0.166667em" /> <mi mathvariant="bold">mm</mi> <mo mathvariant="bold" stretchy="false">/</mo> <mi mathvariant="bold-italic">μ</mi> <mtext>s</mtext> </mrow> </math></EquationSource> </InlineEquation>. Taking these findings into account improves the accuracy of the position calibration. The results can be transferred to the KM3NeT neutrino telescope, currently under construction at multiple sites in the Mediterranean Sea, for which the concept of piezo sensors glued to the inside of glass spheres has been adapted for monitoring the positions of the photomultiplier tubes.</p>

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Acoustic positioning for deep sea neutrino telescopes with a system of piezo sensors integrated into glass spheres

  • A. Albert,
  • S. Alves,
  • M. André,
  • M. Ardid,
  • S. Ardid,
  • J.-J. Aubert,
  • J. Aublin,
  • B. Baret,
  • S. Basa,
  • Y. Becherini,
  • B. Belhorma,
  • M. Bendahman,
  • F. Benfenati,
  • V. Bertin,
  • S. Biagi,
  • J. Boumaaza,
  • M. Bouta,
  • M. C. Bouwhuis,
  • H. Brânzaş,
  • R. Bruijn,
  • J. Brunner,
  • J. Busto,
  • B. Caiffi,
  • D. Calvo,
  • S. Campion,
  • A. Capone,
  • F. Carenini,
  • J. Carr,
  • V. Carretero,
  • S. Celli,
  • L. Cerisy,
  • M. Chabab,
  • R. Cherkaoui El Moursli,
  • T. Chiarusi,
  • M. Circella,
  • J. A. B. Coelho,
  • A. Coleiro,
  • R. Coniglione,
  • P. Coyle,
  • A. Creusot,
  • A. F. Díaz,
  • B. De Martino,
  • C. Distefano,
  • I. Di Palma,
  • C. Donzaud,
  • D. Dornic,
  • D. Drouhin,
  • T. Eberl,
  • A. Eddymaoui,
  • T. van Eeden,
  • D. van Eijk,
  • S. El Hedri,
  • N. El Khayati,
  • A. Enzenhöfer,
  • P. Fermani,
  • G. Ferrara,
  • F. Filippini,
  • L. Fusco,
  • S. Gagliardini,
  • J. García,
  • C. Gatius Oliver,
  • P. Gay,
  • N. Geißelbrecht,
  • H. Glotin,
  • R. Gozzini,
  • R. Gracia Ruiz,
  • K. Graf,
  • C. Guidi,
  • L. Haegel,
  • H. van Haren,
  • A. J. Heijboer,
  • Y. Hello,
  • L. Hennig,
  • J. J. Hernández-Rey,
  • J. Hößl,
  • F. Huang,
  • G. Illuminati,
  • B. Jisse-Jung,
  • M. de Jong,
  • P. de Jong,
  • M. Kadler,
  • O. Kalekin,
  • U. Katz,
  • A. Kouchner,
  • I. Kreykenbohm,
  • V. Kulikovskiy,
  • R. Lahmann,
  • M. Lamoureux,
  • A. Lazo,
  • D. Lefèvre,
  • E. Leonora,
  • G. Levi,
  • S. Le Stum,
  • S. Loucatos,
  • J. Manczak,
  • M. Marcelin,
  • A. Margiotta,
  • A. Marinelli,
  • J. A. Martínez-Mora,
  • P. Migliozzi,
  • A. Moussa,
  • R. Muller,
  • S. Navas,
  • E. Nezri,
  • B. Ó Fearraigh,
  • E. Oukacha,
  • A. Păun,
  • G. E. Păvălaş,
  • S. Peña-Martínez,
  • M. Perrin-Terrin,
  • P. Piattelli,
  • C. Poirè,
  • V. Popa,
  • T. Pradier,
  • N. Randazzo,
  • D. Real,
  • G. Riccobene,
  • A. Romanov,
  • A. Sánchez-Losa,
  • A. Saina,
  • F. Salesa Greus,
  • D. F. E. Samtleben,
  • M. Sanguineti,
  • P. Sapienza,
  • F. Schüssler,
  • J. Seneca,
  • M. Spurio,
  • Th. Stolarczyk,
  • M. Taiuti,
  • Y. Tayalati,
  • B. Vallage,
  • G. Vannoye,
  • V. Van Elewyck,
  • S. Viola,
  • D. Vivolo,
  • J. Wilms,
  • S. Zavatarelli,
  • A. Zegarelli,
  • J. D. Zornoza,
  • J. Zúñiga

摘要

Position calibration in the deep sea is typically done by means of acoustic multilateration using three or more acoustic emitters installed at known positions. Rather than using hydrophones as receivers that are exposed to the ambient pressure, the sound signals can be coupled to piezo ceramics glued to the inside of existing containers for electronics or measuring instruments of a deep sea infrastructure. The ANTARES neutrino telescope operated from 2006 until 2022 in the Mediterranean Sea at a depth exceeding 2000 m. It comprised nearly 900 glass spheres with 432 mm diameter and 15 mm thickness, equipped with photomultiplier tubes to detect Cherenkov light from tracks of charged elementary particles. In an experimental setup within ANTARES, piezo sensors have been glued to the inside of such – otherwise empty – glass spheres. These sensors recorded signals from acoustic emitters with frequencies from 46545 to 60235 Hz. Two waves propagating through the glass sphere are found as a result of the excitation by the waves in the water. These can be qualitatively associated with symmetric and asymmetric Lamb-like waves of zeroth order: a fast (early) one with \(\varvec{v_e \approx 5\,{\textbf {mm}}/\mu \text {s}}\) v e 5 mm / μ s and a slow (late) one with \(\varvec{v_\ell \approx \,2\,{\textbf {mm}}/\mu \text {s}}\) v 2 mm / μ s . Taking these findings into account improves the accuracy of the position calibration. The results can be transferred to the KM3NeT neutrino telescope, currently under construction at multiple sites in the Mediterranean Sea, for which the concept of piezo sensors glued to the inside of glass spheres has been adapted for monitoring the positions of the photomultiplier tubes.