Theoretical and computational study of a partially coherent laser beam in a marine environment

被引:14
作者
Chib, Salma [1 ]
Bayraktar, Mert [2 ]
Belafhal, Abdelmajid [1 ]
机构
[1] Chouaib Doukkali Univ, Fac Sci, Dept Phys, Lab LPNAMME,Laser Phys Grp, PB 20, El Jadida 24000, Morocco
[2] Turkish Aerosp Ind, Havacilik Bulvari 17, Ankara, Turkiye
关键词
partially coherent Generalized Flattened Hermite-Cosh-Gaussian; maritime atmospheric turbulence; cross-spectral density function; beam width; TURBULENT ATMOSPHERE; MODEL; SCINTILLATION; PROPAGATION; REDUCTION; INDEX;
D O I
10.1088/1402-4896/acaa70
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The propagation formula of a partially coherent Generalized Flattened Hermite-Cosh-Gaussian (GFHChG) beam in maritime atmospheric turbulence is derived with the help of the extended Huygens-Fresnel principle. In addition, the analytical expression for the beam width of a partially coherent GFHChG beam in the considered environment is investigated. From the numerical results based on the analytical formulae, we find that the analyzed beam can take different shapes of the profile, depending on the turbulence and beam parameters. And also, it can significantly resist turbulence with small wavelength and waist width values. On the other hand, when the medium becomes turbulent, the beam loses its characteristics and its resistance to fluctuations. Furthermore, the results reveal that the beam spreads more rapidly with the increase of the strength of turbulence, the outer scale size, and the decrease of the inner scale size. We should mention that the results gained represent a general form of numerous partially coherent laser beams such as Generalized Flattened Hermite Gaussian, Generalized Flattened Cosh-Gaussian, Hermite-Cosh-Gaussian, Cosh-Gaussian, Hermite-Gaussian and Gaussian Schell model beams.
引用
收藏
页数:14
相关论文
共 32 条
  • [1] Abramowitz M., 1964, HDB MATH FUNCTIONS F
  • [2] ANDREWS L. C., 2005, LASER BEAM PROPAGATI, V2nd
  • [3] Flatness parameter influence on scintillation reduction for multi-Gaussian Schell-model beams propagating in turbulent air
    Avramov-Zamurovic, S.
    Nelson, C.
    Guth, S.
    Korotkova, O.
    [J]. APPLIED OPTICS, 2016, 55 (13) : 3442 - 3446
  • [4] Experimental study of electromagnetic Bessel-Gaussian Schell Model beams propagating in a turbulent channel
    Avramov-Zamurovic, S.
    Nelson, C.
    Guth, S.
    Korotkova, O.
    Malek-Madani, R.
    [J]. OPTICS COMMUNICATIONS, 2016, 359 : 207 - 215
  • [5] Bayraktar M, 2021, OPTIK, V245
  • [6] Average intensity of astigmatic hyperbolic sinusoidal Gaussian beam propagating in oceanic turbulence
    Bayraktar, Mert
    [J]. PHYSICA SCRIPTA, 2021, 96 (02)
  • [7] Evaluation of integral transforms using special functions with applications to biological tissues
    Belafhal, A.
    Chib, S.
    Khannous, F.
    Usman, T.
    [J]. COMPUTATIONAL & APPLIED MATHEMATICS, 2021, 40 (04)
  • [8] Belafhal A., 2020, ADV MATH MOD APPL, V5, P313
  • [9] Introduction of generalized Bessel-Laguerre-Gaussian beams and its central intensity travelling a turbulent atmosphere
    Boufalah, F.
    Dalil-Essakali, L.
    Ez-zariy, L.
    Belafhal, A.
    [J]. OPTICAL AND QUANTUM ELECTRONICS, 2018, 50 (08)
  • [10] Effects of turbulent atmosphere on the spectral density of Bessel-modulated Gaussian Schell-model beams
    Chib, S.
    Dalil-Essakali, L.
    Belafhal, A.
    [J]. OPTICAL AND QUANTUM ELECTRONICS, 2022, 54 (08)