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An analytical model of the power spatial distribution for underwater optical wireless communication

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Języki publikacji
EN
Abstrakty
EN
Employing optical propagation theory in Hankel transform, an analytical model of the optical power spatial distribution is derived for the ideal point optical source and the Gaussian laser, respectively. Experimental measurements of the spatial distribution of a Gaussian laser are presented. The expected results of our analytical model are in good agreement with experimental data.
Czasopismo
Rocznik
Strony
157--166
Opis fizyczny
Bibliogr. 22 poz.
Twórcy
autor
autor
autor
autor
  • Department of Weaponry Engineering, Naval University of Engineering, No 717, Jiefang Avenue, Wuhan 430033, China
Bibliografia
  • [1] AKYILDIZ I.F., POMPILI D., MELODIA T., Underwater acoustic sensor networks: Research challenges, Ad Hoc Networks 3(3), 2005, pp. 257–279.
  • [2] HANSON F., RADIC S., High bandwidth underwater optical communication, Applied Optics 47(2),2008, pp. 277–283.
  • [3] WEI W., ZHANG X.H., RAO J.H., Study on computing the receiving optical power in underwater optical wireless communication, Chinese Journal of Lasers 38, 2011, article 0905002.
  • [4] JAFFE J.S., Monte Carlo modeling of underwater-image formation: Validity of the linear and small-angle approximations, Applied Optics 34(24), 1995, pp. 5413–5421.
  • [5] WEI WEI, XIAOHUI ZHANG, JIONGHUI RAO, WENBO WANG, Time domain dispersion of underwater optical wireless communication, Chinese Optics Letters 9(3), 2011, article 030101.
  • [6] JARUWATANADILOK S., Underwater wireless optical communication channel modeling and performance evaluation using vector radiative transfer theory, IEEE Journal on Selected Areas in Communications 26(9), 2008 , pp. 1620–1627.
  • [7] SWANSON N.L., GEHMAN V.M., BILLARD B.D., GENNARO T.L., Limits of the small-angle approximation to the radiative transport equation, Journal of the Optical Society of America A 18(2), 2001, pp. 385–391.
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  • [9] SANCHEZ R., MCCORMICK N.J., Analytic beam spread function for ocean optics applications, Applied Optics 41(30), 2002, pp. 6276–6288.
  • [10] JIANQI SHEN, HAITAO YU, JINDENG LU, Light propagation and reflection-refraction event in absorbing media, Chinese Optics Letters 8(1), 2010, pp. 111–114.
  • [11] CHANCEY M.A., Short Range Underwater Optical Communication Links, Master Thesis, North Carolina State University, 2005, pp. 30–31.
  • [12] VASILESCU, Data Collection, Storage, and Retrieval with an Underwater Sensor Network, Proceedings of ACM, SenSys’05, November 2–4, 2005, San Diego, California, USA, p. 154.
  • [13] ARNON S., Underwater optical wireless communication network, Optical Engineering 49(1), 2010, article 015001.
  • [14] JAGDISHLAL G.Y., Underwater Free Space Optics, Master Thesis, North Carolina State University, 2006, pp. 41–57.
  • [15] MULLEN L., Optical propagation in the underwater environment, Proceedings of SPIE 7324, 2009, article 732409.
  • [16] WELLS W.H., Loss of resolution in water as a result of multiple small-angle scattering, Journal of the Optical Society of America 59(6), 1969, pp. 686–691.
  • [17] MCLEAN J.W., VOSS K.J., Point spread function in ocean water: Comparison between theory and experiment, Applied Optics 30(15), 1991, pp. 2027–2030.
  • [18] MCLEAN J.W., FREEMAN J.D., WALKER R.E., Beam spread function with time dispersion, Applied Optics 37(21), 1998, pp. 4701–4711.
  • [19] COCHENOUR B.M., MULLEN L.J., LAUX A.E., Characterization of the beam-spread function for underwater wireless optical communications links, IEEE Journal of Oceanic Engineering 33(4), 2008, pp. 513–521.
  • [20] MOORADIAN G.C., GELLER M., STOTTS L.B., STEPHENS D.H., KRAUTWALD R.A., Blue-green pulsed propagation through fog, Applied Optics 18(4), 1979, pp. 429–441.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPW7-0019-0095
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