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Abstract

Summary

In this paper, we present the first step of an instrumental development of an original environmental sensor, based on a giant magnetic loop. It is a simple electrical cable existing and used for years at the LSBB (France). Its singular location in this specifically transdisciplinary laboratory is an asset for its future use by a large scientific community. We propose to take advantage of the unusual length and surface of the loop and its very specific environment to increase its functionalities. More specifically, we investigate two different approaches : an active method consisting in monitoring the time evolution of its electrical characteristic; and a passive method consisting in measuring the environmental induced electrical voltage. We present both the experimental setup, the experimental protocols and a proof-of-concept for these two methods with surprising first experimental results. We discuss the opportunity offered by sharing this work with different scientific communities.

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/content/papers/10.3997/2214-4609.202120083
2021-08-29
2024-04-23
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References

  1. Laboratoire Souterrain à Bas Bruit de Rustrel
    [2021] Retrieved from https://lsbb.cnrs.fr/
  2. G.Waysand et al.
    [2000] First Characterization of the Ultra-Shielded Chamber in the Low-noise Underground Laboratory (LSBB) of Rustrel Pays d’Apt, Nuclear Instruments and MethodsA444336.
    [Google Scholar]
  3. Lázaro, Roche, I. et al.
    [2020] MUon Survey Tomography based on Micromegas detectors for Unreachable Sites Technology (MUST2) : overview and outlook. Journal of Physics : Conference Series 1498.012048
    [Google Scholar]
  4. Waysand,, G. et al.
    [2011] Azimuthal analysis of [SQUID]2 signals for mesopause and sprites excitations. 02004. 10.1051/idust/201102004.
    https://doi.org/10.1051/idust/201102004 [Google Scholar]
  5. FebvrePascal
    [2010] Private communications
    [Google Scholar]
  6. Tumanski,, S.
    [2007] Induction coil sensors — a review. Meas. Sci. Technol.,18R31
    [Google Scholar]
  7. Kearey et al.
    [2002] An Introduction to Geophysical Exploration (Third edition). Blackwell Science. 1–2
    [Google Scholar]
  8. Keysight Technologies
    . E4980A/AL Precision LCR Meter. Retrieved from www.keysight.com
    [Google Scholar]
  9. Soula et al.
    [2019] Observation and Analysis of Very Large and Luminous Sprites. In AGU Fall Meeting Abstracts (Vol. 2019, pp. AE31B-3100)
    [Google Scholar]
  10. Rohde & Schwarz
    . RTO1000 Digital Oscilloscope. Retrieved from www.rohde-schwarz.com
    [Google Scholar]
  11. Mazzilli et al.
    [2020] Surface Nuclear Magnetic Resonance Monitoring Reveals Karst Unsaturated Zone Recharge Dynamics during a Rain Event. Water2020, 12(11), 3183
    [Google Scholar]
  12. Madden et al.
    [1965] Low-frequency electromagnetic oscillations of the Earth-ionosphere cavity. Rev. Geophys.,3(2), 211–254
    [Google Scholar]
  13. Radio Waves below 22 kHz
    [2021] Retrieved from http://www.vlf.it/
  14. WiendaRené
    [1995] Flicker ou scintillement des sources lumineuses, CT n° 176, Schneider Electric.
    [Google Scholar]
  15. ChalikakisKonstaninos
    [2021] Private communications
    [Google Scholar]
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