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Fibre optic Bragg structures with monotonic apodisation characteristics

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Warianty tytułu
PL
Światłowodowe struktury Bragga o monotonicznej charakterystyce apodyzacji
Języki publikacji
EN
Abstrakty
EN
The article discussesthe principle of operation and the structure of chirped and uniformgratings. It presents the method of producing gratings with monotonic apodisation characteristics, and compares the spectral features of produced gratings with the those obtained by mathematical modelling.
PL
W artykule omówiono zasadędziałania i budowę siatek chirpowych oraz siatek jednorodnych., przedstawiono sposób wytwarzania siateko monotonicznej charakterystyce apodyzacji, porównano charakterystyki spektralne siatek wytworzonych z charakterystykami uzyskanymi metodą modelowania matematycznego.
Rocznik
Strony
42--46
Opis fizyczny
Bibliogr. 19 poz., rys., wykr.
Twórcy
autor
  • Lublin University of Technology, Faculty Electrical Engineeringand Computer Science, Lublin, Poland
Bibliografia
  • [1] Chehura E., James S. W., Tatam R. P.: Temperature and strain discrimination using a single tilted fibre Bragg grating. Optics Communications 275, 2007, 344–347.
  • [2] Dong B. et al.: Simultaneous measurement of temperature and force basedon a special strain-function-chirped FBG. Sensors and Actuators A 147, 2008, 169–172.
  • [3] Ecke W. et al.: Optical fiber grating sensor networkfor monitoring refractive index and temperature distributions in fluids. Proc. SPIE 3783, 1999, 176–183.
  • [4] Ennser, K., Zervas, N.,Laming, R. L.:Optimization of apodized linearly chirped fiber gratings for optical communications. IEEE Journal of Quantum Electronics 34(5), 1998, 770–778.
  • [5] Gillooly A. M. et al.: Implementation Of Chirped Fiber Bragg Gratings (CFBG) As Optical Wear Sensors. Lasers and Electro-Optics Society.The 16th Annual Meeting of the IEEE 2003.
  • [6] Guo T.:Fiber Grating-Assisted Surface Plasmon Resonance for Biochemical and Electrochemical Sensing. Journal of Lightwave Technology 35(16), 2017, 3323–3333.
  • [7] Hill K.,Meltz G.:Fibre Bragg grating technology fundamentals and overview.Jr. Lightwave Techno.15, 1997, 1263–1276.
  • [8] Hwang G. S. et al.: Numerical Study on Reflection Spectra of an Apodized Fiber Bragg Grating Subjected to Strain Gradients. Procedia Engineering 79, 2014, 631–639.
  • [9] Khalid K. S.et al.: Simulation and analysis of Gaussian apodized fiber Bragg grating strain sensor. Journal of Optical Technology 79(10), 2012, 667–673.
  • [10] Kinet D. et al.: Fiber Bragg Grating Sensors toward Structural Health Monitoring in Composite Materials: Challenges and Solutions. Sensors 14, 2014, 7394–7419.
  • [11] KisałaP.:Metrological conditions of strain measurement optoelectronic method by the use of fibre Bragg gratings. Metrology and Measurement Systems 19(3), 2012, 471–480.
  • [12] Kisala P., Cieszczyk S.:Method of simultaneous measurement of two direction force and temperature using FBG sensor head. Applied Optics 54(10), 2015, 2677–2687.
  • [13] Lin Z. et al.:A novel method for fabricating apodized fiberber Bragg gratings. Optics and Laser Technology 35, 2003, 315–318.
  • [14] Markowski K. et al.: Custom FBGs inscription using modified phase maskmethod with precise micro-and nano-positioning. Proc. of SPIE10031, 2016, 100311H.
  • [15] WaluyoT. et al.: The effect of macro-bending on power confinement factorin single mode fiber.Journal of Physics: Conference Series985, 2017, 012001.
  • [16] WeilinL. et al.: Real-Time Interrogation of a Linearly Chirped Fiber Bragg Grating Sensor for Simultaneous Measurement of Strain and Temperature. IEEE Photonics Technology Letters 23(18), 2011, 1340–1342.
  • [17] Zhan Y.et al.:A linearity interrogation technique withenlarged dynamic range for fiber Bragg grating sensing. Optics Communications 283, 2010, 3428–3433.
  • [18] Zhang H.:A novel method of optimal apodization selection for chirped fiber Bragg gratings. Optik –International Journal for Light and Electron Optics 125(5), 2014, 1646–1649.
  • [19] Zychowicz Ł. et al.: Methods of producing apodized fiber Bragg gratings and examples of their applications. Informatyka, Automatyka, Pomiary w Gospodarce i Ochronie Środowiska 89(1), 2018, 60–63.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5ad2dfaa-1929-4acb-b8c4-7dc1bdb77749
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