Evolution characteristics of a partially coherent modified anomalous vortex beam through oceanic turbulence

被引:0
作者
Faroq Saad [1 ]
Halima Benzehoua [2 ]
Ahmed Abdulrab Ali Ebrahim [3 ]
Abdelmajid Belafhal [4 ]
机构
[1] Cihan University-Erbil,Department of Radiological Imaging Technologies
[2] Technical Community College,Higher School of Education and Training of El Jadida (ESEF)
[3] Chouaib Doukkali University,Laboratory LPNAMME, Laser Physics Group, Department of Physics, Faculty of Sciences
[4] Ministry of Education,undefined
[5] Chouaïb Doukkali University,undefined
关键词
Partially coherent modified anomalous vortex beam; Huygens–Fresnel integral; Average intensity; Oceanic turbulence;
D O I
10.1007/s11082-025-08164-6
中图分类号
学科分类号
摘要
We introduce a partially coherent modified anomalous vortex beam (PCMAVB) as a new beam focusing on its propagation in oceanic turbulence. The PCMAVB propagating through oceanic turbulence is analyzed according to the Huygens–Fresnel integral and coherence theory. The average intensity of PCMAVB is numerically simulated under various parameters during its propagation in the oceanic turbulence environment. The results discuss in detail how various beam factors, such as coherence length, beam order, modification parameter, topological charge, and underwater oceanic parameters, affect the average intensity distribution of the beam. Our findings highlight the significant implications of the PCMAVB for potential applications in oceanic turbulence.
引用
收藏
相关论文
共 50 条
[21]   Analysing the behaviour of partially coherent divergent Gaussian beams propagating through oceanic turbulence [J].
Yousefi, M. ;
Kashani, F. D. ;
Golmohammady, Sh ;
Kazemian, E. ;
Ghafary, B. .
JOURNAL OF MODERN OPTICS, 2014, 61 (17) :1430-1441
[22]   Properties of partially coherent elegant Laguerre-Gaussian beam in free space and oceanic turbulence [J].
Xia, Tong ;
Liu, Dajun ;
Dong, Aiyi ;
Wang, Guiqiu ;
Zhong, Haiyang ;
Wang, Yaochuan .
OPTIK, 2020, 201
[23]   Average intensity of radial phased-locked partially coherent standard Hermite-Gaussian beam in oceanic turbulence [J].
Liu, Dajun ;
Wang, Yaochuan ;
Zhong, Haiyang .
OPTICS AND LASER TECHNOLOGY, 2018, 106 :495-505
[24]   Propagation of a stochastic electromagnetic vortex beam in the oceanic turbulence [J].
Xu, Jia ;
Zhao, Daomu .
OPTICS AND LASER TECHNOLOGY, 2014, 57 :189-193
[25]   Propagation Factors of Partially Coherent Model Beams in Oceanic Turbulence [J].
Huang, Xianwei ;
Bai, Yanfeng ;
Fu, Xiquan .
IEEE PHOTONICS JOURNAL, 2017, 9 (05)
[26]   Spatial coherence of partially coherent annular beams in oceanic turbulence [J].
Pu, Huan ;
Ji, Xiaoling ;
Yang, Ting .
Guangxue Xuebao/Acta Optica Sinica, 2015, 35
[27]   Coupling Efficiency of Partially Coherent Airy Beam-Few Mode Fiber Under Oceanic Turbulence [J].
Lei Sichen ;
Zhang Rongrong ;
Wu Pengfei ;
Tan Zhenkun ;
Wang Jiao .
LASER & OPTOELECTRONICS PROGRESS, 2024, 61 (13)
[28]   Propagation properties of rotationally-symmetric power-exponent-phase vortex beam through oceanic turbulence [J].
Pan, Yuqi ;
Zhao, Minglin ;
Zhang, Mingming ;
Dou, Jiantai ;
Zhao, Jiang ;
Li, Bo ;
Hu, Youyou .
OPTICS AND LASER TECHNOLOGY, 2023, 159
[29]   Propagation Characteristics of a Partially Coherent Gaussian Schell-model Array Vortex Beam in the Joint Turbulence Effect of a Jet Engine and Atmosphere [J].
Nabil, Hassan ;
Balhamri, Adil ;
Bayraktar, Mert ;
Belafhal, Abdelmajid .
ANNALEN DER PHYSIK, 2023, 535 (10)
[30]   Phase discontinuities induced scintillation enhancement: coherent vortex beams propagating through weak oceanic turbulence [J].
Wang, Hantao ;
Zhang, Huajun ;
Ren, Mingyuan ;
Yao, Jinren ;
Zhang, Yu .
WAVES IN RANDOM AND COMPLEX MEDIA, 2021, :5722-5738