• Infrared and Laser Engineering
  • Vol. 53, Issue 2, 20230441 (2024)
Pengfei Wu1,2, Chengyu Li1, Sichen Lei1,2,*, Zhenkun Tan3, and Jiao Wang4
Author Affiliations
  • 1School of Automation and Information Engineering, Xi'an University of Technology, Xi'an 710048, China
  • 2Xi'an Key Laboratory of Wireless Optical Communication and Network Research, Xi'an 710048, China
  • 3Faculty of Optoelectronic Engineering, Xi'an Technological University, Xi'an 710021, China
  • 4School of Electronic Information and Artificial Intelligence, Shaanxi University of Science and Technology, Xi'an 710021, China
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    DOI: 10.3788/IRLA20230441 Cite this Article
    Pengfei Wu, Chengyu Li, Sichen Lei, Zhenkun Tan, Jiao Wang. Propagation properties of the vortex beam in the slant path of ocean turbulence under weak wind model[J]. Infrared and Laser Engineering, 2024, 53(2): 20230441 Copy Citation Text show less
    References

    [1] I C Ijeh, M A Khalighi, M Elamassie, et al. Outage probability analysis of a vertical underwater wireless optical link subject to oceanic turbulence and pointing errors. Journal of Optical Communications and Networking, 14, 439-453(2022).

    [2] Feng Zhang, Mingming Zhang, Youyou Hu, . Propagation properties of ince-gaussian beams in oceanic turbulence. Applied Laser, 42, 92-98(2022).

    [3] Yi Yang, Huan Nie, Xiaobo Wang, . Influence of outer scale of ocean turbulence on propagation characteristics of gaussian beams. Acta Photonica Sinica, 52, 0401002(2023).

    [4] Yiwei Zhang, Mingjun Wang. Intensity and phase characteristics of anomalous vortex beams in stratified ocean turbulence. Laser Journal, 43, 13-18(2022).

    [5] D Pompili, I F Akyildiz. Overview of networking protocols for underwater wireless communications. IEEE Communications Magazine, 47, 97-102(2009).

    [6] Mcglamery B L. Computer simulation studies compensation of turbulence degraded images [C]Pacific Grove, Image processing, SPIE, 1976, 74: 225233.

    [7] R J Noll. Zernike polynomials and atmospheric turbulence. Journal of the Optical Society of America, 66, 207-211(1976).

    [8] D G Perez, L Zunino, M Garavaglia. Modeling turbulent wave-front phase as a fractional Brownian motion: a new approach. Journal of the Optical Society of America A, 21, 1962-1969(2004).

    [9] J A Fleck, J R Morris, M D Feit. Time-dependent propagation of high energy laser beams through the atmosphere. Applied Physics, 10, 129-160(1976).

    [10] R G Lane, A Glindemann, J C Dainty. Simulation of a Kolmogorov phase screen. Waves in Random Media, 2, 209-224(1992).

    [11] Farwell N H, Kotkova O. Multiple phasescreen simulation of oceanic beam propagation[C]Laser communication propagation through the atmosphere oceans III, SPIE, 2014, 9224: 374380.

    [12] Tianxing Yang, Shengmei Zhao. Random phase screen model of ocean turbulence. Acta Optica Sinica, 37, 9-14(2017).

    [13] Chaojun Niu, Fang Lu, Xiang’e Han. Propagation properties of gaussian array beams transmitted in oceanic turbulence simulated by phase screen method. Acta Optica Sinica, 38, 31-36(2018).

    [14] S Pan, L Wang, W Wang, et al. An effective way for simulating oceanic turbulence channel on the beam carrying orbital angular momentum. Scientific Reports, 9, 1-8(2019).

    [15] Kaining Zhang, Yongxin Liu, Jixiong Pu. Scintillation index of vortex beams propagating in oceanic turbulence. Chinese Journal of Lasers, 46, 247-252(2019).

    [16] Ye Li, Baolong Li, Haolin Jiang. Displacements of a spatially limited light beam in the slant path of oceanic turbulence. Optics Express, 30, 24232-24244(2022).

    [17] Huan Pu, Xiaoling Ji. Oceanic turbulence effects on long-exposure and short-exposure imaging. Journal of Optics, 18, 105704(2016).

    [18] Feistel, R, Nausch, G, Hangen, E. Unusual Baltic inflow activity in 2002-2003 and varying deep-water properties. Oceanologia, 48, 21-35(2006).

    [19] S Chhabra, J Paue, A N Ramaprakash, et al. Generalized approach to compensate for low-and high-frequency errors in fast Fourier transform-based phase screen simulations. Journal of Astronomical Telescopes, Instruments, and Systems, 7, 025007(2021).

    [20] Chuankai Luo, Fang Lu, Xiang’e Han. Propagation and evolution of rectangular vortex beam array through atmospheric turbulence. Optik, 218, 164913(2020).

    [21] Mingjun Wang, Qun Cheng, Jianqing Li, et al. Transmission characteristics of blue-green vortex beams in the lower atmosphere-upper ocean link. Journal of Quantitative Spectroscopy and Radiative Transfer, 286, 108205(2022).

    [22] rews L C, Phillips R L. Laser Beam Propagation Through Rom Media[M]. 2nd ed. Bellingham: Laser Beam Propagation Through Rom Media, 2005.

    [23] Lu Lu, Xiaoling Ji, Y Baykal. Wave structure function and spatial coherence radius of plane and spherical waves propagating through oceanic turbulence. Optics Express, 22, 27112(2014).

    [24] Tong Wu, Xiaoling Ji, Xiaoqing Li, . Characteristic parameters of optical wave and short-term beam spreading in oceanic turbulence. Acta Physica Sinica, 67, 271-279(2018).

    [25] D L Fried. Optical resolution through a randomly inhomogeneous medium for very long and very short exposures. Journal of the Optical Society of America, 56, 1372-1379(1966).

    [26] Ye Li, Yixin Zhang, Yun Zhu. Oceanic spectrum of unstable stratification turbulence with outer scale and scintillation index of Gaussian-beam wave. Optics Express, 27, 7656-7672(2019).

    Pengfei Wu, Chengyu Li, Sichen Lei, Zhenkun Tan, Jiao Wang. Propagation properties of the vortex beam in the slant path of ocean turbulence under weak wind model[J]. Infrared and Laser Engineering, 2024, 53(2): 20230441
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