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Kvantovaya Elektronika, 2006, Volume 36, Number 3, Pages 287–291 (Mi qe13136)  

This article is cited in 40 scientific papers (total in 40 papers)

Laser applications and other topics in quantum electronics

Use of Spun optical fibres in current sensors

V. P. Gubin, V. A. Isaev, S. K. Morshnev, A. I. Sazonov, N. I. Starostin, Yu. K. Chamorovsky, A. I. Oussov

Institute of Radioengineering and Electronics, Fryazino Branch, Russian Academy of Sciences, Fryazino, Moscow region

Abstract: The polarisation properties of a Spun optical fibre are studied in connection with their applications in fibreoptic current sensors based on the Faraday effect. A model of this fibre is proposed which represents it as an anisotropic medium with the spiral structure of the fast and slow birefringence axes. A sensor is developed based on an all-fibre low-coherence linear interferometer with a threshold sensitivity of 70 mA Hz-1/2, a maximum measured current of 3000 A, and a scale-factor reproducibility of ±0.6%. It is found that for a given diameter of the fibre contour, the normalised sensitivity is independent of the fibre length. The experimental results confirm the theory.

Full text: PDF file (170 kB)

English version:
Quantum Electronics, 2006, 36:3, 287–291

Bibliographic databases:

PACS: 42.81.Pa
Received: 08.09.2005

Citation: V. P. Gubin, V. A. Isaev, S. K. Morshnev, A. I. Sazonov, N. I. Starostin, Yu. K. Chamorovsky, A. I. Oussov, “Use of Spun optical fibres in current sensors”, Kvantovaya Elektronika, 36:3 (2006), 287–291 [Quantum Electron., 36:3 (2006), 287–291]

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  • http://mi.mathnet.ru/eng/qe/v36/i3/p287

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    Citing articles on Google Scholar: Russian citations, English citations
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    This publication is cited in the following articles:
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    2. S. K. Morshnev, V. P. Gubin, V. A. Isaev, N. I. Starostin, A. I. Sazonov, Yu. K. Chamorovsky, N. M. Korotkov, Opt Mem Neural Networks, 17:4 (2008), 258  crossref
    3. Yu. K. Chamorovsky, N. I. Starostin, M. V. Ryabko, A. I. Sazonov, S. K. Morshnev, V. P. Gubin, I. L. Vorob’ev, Opt Mem Neural Networks, 18:4 (2009), 278  crossref  elib  scopus
    4. Alexander Argyros, Jarryd Pla, François Ladouceur, Leon Poladian, Opt Express, 17:18 (2009), 15983  crossref  adsnasa  isi  scopus
    5. Sergey K Morshnev, Vladimir P Gubin, I P Vorob'ev, I I Starostin, Aleksandr I Sazonov, Yury K Chamorovsky, N M Korotkov, QUANTUM ELECTRON, 39:3 (2009), 287  mathnet  crossref  isi  scopus
    6. Yu.K. Chamorovskiy, N.I. Starostin, M.V. Ryabko, A.I. Sazonov, S.K. Morshnev, V.P. Gubin, I.L. Vorob’ev, S.A. Nikitov, Optics Communications, 282:23 (2009), 4618  crossref  adsnasa  isi  elib  scopus
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    22. Vasiliev S.A., Przhiyalkovsky Ya.V., Gnusin P.I., Medvedkov O.I., Dianov E.M., Opt. Express, 24:11 (2016), 1290–1298  crossref  isi  scopus
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    27. Przhiyalkovsky Y.V., Vasiliev S.A., Medvedkov O.I., Morshnev S.K., Dianov E.M., J. Appl. Phys., 122:12 (2017), 123104  crossref  isi  scopus
    28. Quantum Electron., 48:1 (2018), 62–69  mathnet  crossref  isi  elib
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    31. Bohnert K., Frank A., Mueller G.M., Yang L., Lenner M., Gabus Ph., Gu X., Marchese S.V., Fiber Optic Sensors and Applications Xv, Proceedings of Spie, 10654, eds. Mendez A., Baldwin C., Du H., Spie-Int Soc Optical Engineering, 2018, UNSP 1065402  crossref  isi  scopus
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    34. Quantum Electron., 49:9 (2019), 887–893  mathnet  crossref  isi  elib
    35. Mueller G.M., Frank A., Yang L., Gu X., Bohnert K., J. Lightwave Technol., 37:18 (2019), 4507–4513  crossref  isi  scopus
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    37. Quantum Electron., 50:10 (2020), 904–909  mathnet  crossref  isi  elib
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  • Квантовая электроника Quantum Electronics
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