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Distributed temperature sensing in optical fibers based on Raman scattering: theory and applications

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Distributed temperature sensing (DTS) based on Raman scattering in optical fibers gains more importance in several applications, due to its accuracy, immunity to electromagnetic interference and corrosion, durability, low cost and availability. DTS systems are configured differently depending on the environment of application, and uses Optical Time Domain Reflectometry (OTDR) or Optical Frequency Domain Reflectometry (OFDR) for data analyzes. This study features a theoretical background and an introduction to DTS systems’ configurations and applications.
Wydawca
Rocznik
Strony
41--44
Opis fizyczny
Bibliogr. 35 poz., rys., wzory
Twórcy
  • Lodz University of Technology, Institute of Electronics 211/215 Wólczańska St., 90-924 Łódź, Poland
autor
  • Lodz University of Technology, Institute of Electronics 211/215 Wólczańska St., 90-924 Łódź, Poland
Bibliografia
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  • [2] Williams G. R., Brown G., Hawthorne W., Hartog A. H., Waite P. C.: Distributed temperature sensing (DTS) to characterize the performance of producing oil wells. Proc. Int. Society for Optical Engineering (SPIE), vol. 4202, pp. 39–54, 2000.
  • [3] Guo J., Xia T., Zhang R., Li X.: A novel multimode fiber for distributed temperature sensing based on anti-stokes Raman scattering. Photonics Global Conference (PGC), 2012.
  • [4] Jensen F. B. H., Takada E., Nakazawa M., Kakuta T., and Yamamoto S.: Consequences of Radiation Effects on Pure-Silica-Core Optical Fibers Used for Raman-Scattering-Based Temperature Measurements. IEEE Transactions on Nuclear Science, vol. 45, no. 1, pp. 50–58, 1998.
  • [5] Ukil A., Braendle H., and Krippner P.: Distributed Temperature Sensing: Review of Technology and Applications. IEEE Sensors Journal, vol. 12, no. 5, pp. 885–892, 2012.
  • [6] C. Cangialosi, S. Girard, M. Cannas, A. Boukenter, E. Marin, S. Agnello, S. Delepine-Lesoille, C. Marcandella, P. Paillet, and Y. Ouerdane: On-Line Characterization of Gamma Radiation Effects on Single-Ended Raman Based Distributed Fiber Optic Sensor. IEEE Transactions on Nuclear Science, vol. 63, no. 4, pp. 2051–2057, 2016.
  • [7] Hausner M. B., Suárez F., Glander K. E., van de Giesen N., Selker J. S., and Tyler S. W.: Calibrating Single-Ended Fiber-Optic Raman Spectra Distributed Temperature Sensing Data. Sensors, vol. 11, pp. 10859–10879, 2011.
  • [8] van de Giesen N., Steele-Dunne S. C., Jansen J., Hoes O., Hausner M. B., Tyler S., and Selker J.: Double-Ended Calibration of Fiber-Optic Raman Spectra Distributed Temperature Sensing Data. Sensors, vol. 12, pp. 5471-5485, 2012.
  • [9] Nuñez-Lopeza V., Muñoz-Torresa J., Zeidounib M.: Temperature monitoring using Distributed Temperature Sensing (DTS) technology. Energy Procedia, vol. 63, pp. 3984–3991, 2014.
  • [10] Keller C.A., Huwald H., Vollmer M.K., Wenger A., Hill M., Parlange M. B., Reinman S.: Fiber optic distributed temperature sensing for the determination of the nocturnal atmospheric boundary layer height. Atmospheric Measurement Techniques, vol. 4, pp. 143-149, 2011.
  • [11] Tyler S. W., Selker J. S., Hausner M. B., Hatch C. E., Torgersen T., Thodal C. E., Schladow S. G.: Environmental temperature sensing using Raman spectra DTS fiber-optic methods. Water Resources Research, vol. 45, doi:10.1029/2008WR007052, 2009.
  • [12] Sayde C., Gregory C., Gil-Rodriguez M., Tufillaro N., Tyler S. W., van de Diesen N. C., English M., Cuenca R., Selker J. S.: Feasibility of soil moisture monitoring with heated fiber optics. Water Resources Research, vol. 46, doi:10.1029/2009WR007846, 2010.
  • [13] Westhoff M. C., Savenije H. H. G. Luxemburg W. M. J., Stelling G. S., van de Giesen N. C., Selker J. S., Pfister L., Uhlenbrook S.: A distributed stream temperature model using high resolution temperature observations. Hydrology and Earth System Sciences, vol. 11, pp. 1469–1480, 2007.
  • [14] Yilmaz G., Karlik S. E.: A distributed optical fiber sensor for temperature detection in power cables. Sensors and Actuators A, vol. 125, pp. 148–155, 2006.
  • [15] Farahani M. A., Gogolla T.: Spontaneous Raman Scattering in Optical
  • [16] Fibers with Modulated Probe Light for Distributed Temperature Raman Remote Sensing. Journal of Lightwave Technology, vol. 17, no. 8, pp. 1379–1391, 1999.
  • [17] Liu Y., Zongjiu Z.: Design of Distributed Fiber Optical Temperature Measurement System Based on Raman Scattering. Proceedings of International Symposium on Signals, Systems and Electronics, 978-1-4244-6355-8/10/$26.00, 2010.
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  • [19] Cheng J. X., X. Xie X. S.: Coherent Raman Scattering Microscopy. CRC Press/ Taylor & Francis Group, pp. 3–42, 2013.
  • [20] Dibble R. W., Masri A. R., Bilger R. W.: The Spontaneous Raman Scattering Technique Applied to Nonpremixed Flames of Methane. COMBUSTION AND FLAME, vol. 67, pp. 189–206, 1987.
  • [21] Culshaw B., Kersey A.: Fiber-Optic Sensing: A Historical Perspective. Journal of Lightwave Technology, vol. 26, no. 9, pp. 1064-1078, 2008.
  • [22] Delepine-Lesoille S.: Industrial qualification process for optical fibers distributed strain and temperature sensing in nuclear waste repositories. Sensors, vol. 2012, pp. 9, 2012.
  • [23] Xia T., Guo J., Li X., Mao X.: A Modified Demodulation Algorithm for Fiber-Optic Distributed Temperature Sensing System Based on Raman Scatterin. Photonics Global Conference (PGC), doi: 10.1109/PGC.2012.6458071, 2012.
  • [24] Barnoski M. K., Jensen S. M.: Fiber waveguides: a novel technique for investigating attenuation characteristics. APPLIED OPTICS, vol. 15, no. 9, pp. 2112–2115, 1976.
  • [25] Placzek G.: The Rayleigh and Raman scattering, edited by: Marx E., Leipzig, Germany: Akademische Verlagsgesellschaft, 1934, Translated by: Werbin A., University of California, California, 1959.
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  • [27] Long D. A.: Raman Spectroscopy. New York: McGraw Hill, 1977.
  • [28] Hwang D., Yoon D. J., Kwon I. B., Seo D. C., Chung Y.: Novel auto-correction method in a fiber-optic distributed-temperature sensor using reflected anti-Stokes Raman scattering. Optics Express, vol. 18, no. 10, pp. 9747–9754, 2010.
  • [29] Suh K., Lee C.: Auto-correction method for differential attenuation in a fiber-optic distributed-temperature sensor. Optics Letters, vol. 33, no. 16, pp. 1845–1847, 2008.
  • [30] Amira Z., Bouyahi M., Ezzedine T.: Measurements of Temperature Through Raman Scattering. Procedia Computer Science, vol. 73, pp. 350–357, 2015.
  • [31] Hartog A. H., Leach A. P.: Distributed Temperature Sensing in Solid-Core Fibers. Electronics Letters, vol. 21, no. 23, pp. 1061–1062, 1985.
  • [32] Toccafondo I., Nannipieri T., Signorini A., Guillermain E., Kuhnhenn J., Brugger M., Di Pasquale F.: Raman Distributed Temperature Sensing at CERN. IEEE Photonics Technology Letters, vol. 27, no. 20, pp. 2182–2185, 2015.
  • [33] Soto M. A., SignoriniA., Nannipieri T., Faralli S., Bolognini G.: High-Performance Raman-Based Distributed Fiber-Optic Sensing Under a Loop Scheme Using anti-Stokes Light Only. IEEE Photonics Technology Letters, vol. 23, no. 9, pp. 534–536, 2011.
  • [34] Fernandez A. F., Rodeghiero P., Brichard B., Berghmans F., Hartog A. H., Hughes P., Williams K., Leach A. P.: Radiation-Tolerant Raman Distributed Temperature Monitoring System for Large Nuclear Infrastructures. IEEE Transactions On Nuclear Science, vol. 52, no. 6, pp. 2789–2694, 2005.
  • [35] Hartog A. H.: A distributed temperature sensor based on liquid-core optical fibres. IEEE Journal of Lightwave Technology, vol. LT-1, no. 3, pp. 498-509, 1983.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4086027f-ebd6-4046-a13d-9aa95074fe51
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