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Temporal power spectral models of angle of arrival fluctuations for optical waves propagating through weak non-Kolmogorov turbulence 被引量:1

Temporal power spectral models of angle of arrival fluctuations for optical waves propagating through weak non-Kolmogorov turbulence
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摘要 Analytical expressions of the temporal power spectral models of angle of arrival (AOA) fluctuations are derived using the generalized exponential spectral model for optical waves propagating through weak non- Kolmogorov turbulence. Compared with expressions of temporal power spectral models derived from the general non-Kolmogorov spectral model, the new expressions consider the influences of the inner and outer scales of finite turbulence. Numerical calculations show that large outer scales of turbulence increase the value of the temporal power spectrum of AOA fluctuations in low-frequency regions. Analytical expressions of the temporal power spectral models of angle of arrival (AOA) fluctuations are derived using the generalized exponential spectral model for optical waves propagating through weak non- Kolmogorov turbulence. Compared with expressions of temporal power spectral models derived from the general non-Kolmogorov spectral model, the new expressions consider the influences of the inner and outer scales of finite turbulence. Numerical calculations show that large outer scales of turbulence increase the value of the temporal power spectrum of AOA fluctuations in low-frequency regions.
出处 《Chinese Optics Letters》 SCIE EI CAS CSCD 2013年第11期5-8,共4页 中国光学快报(英文版)
基金 supported by the Beijing Natural Sci-ence Foundation(No.4122047) the Innovation Foundation of AVIC(No.CXY2010BH02),the Fundamental Research Fund for the Central Universities the Open Research Fund of Key Laboratory of Atmospheric Composition and Optical Radiation,Chinese Academy of Sciences
关键词 Turbulence models Turbulence models
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  • 1V. I. Tatarskii, The Effects of the Turbulent Atmosphere on Wave Propagation (trans. for NOAA by Israel Pro gram for Scientific Translations, Jerusalem, 1971).
  • 2D. T. Kyrazis: J. B. Wissler, D. B. Keating, A. J. Preble, and K. P. Bishop, Proc. SPIE 2120, 43 (1994).
  • 3M. S. Belen'kii, S. J. Karis, J. M. Brown, and R. Q. ::gate, Proc. SPIE 3126, 113 (1997).
  • 4M. S. Belen'kii, E. Cuellar, K. A. Hughes, and V. A. Rye, Proe. SPIE 6304, 63040U (2006).
  • 5A. Zilberman, E. Golbraikh, N. S. Kopeika, A. Virtser, I. Kupershmidt, and Y. Shtemler, Atmos. Res. 88: 66 (2008).
  • 6A. S. Gurvich and M. S. Belen'kii, J. Opt. Soc. Am. A 12, 2517 (1995).
  • 7M. S. Belen'kii, Opt. Lett. 20, 1359 (1995).
  • 8X. Zhou, Y. Yang, Y. Shao, and J. Liu, Chin. Opt. Lett. i0, 110603 (2012).
  • 9W. Du, L. Tan, J. Ma, and Y. Jiang, Opt. Express 18, 5763 (2010).
  • 10L. C. Andrews and R. L. Phillips: Laser Beam Propaga tion through Random Media (SHE Optical Engineering Press, Bellingham, 2005).

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