Song Zhenzhen, Han Zhiyuan, Ye Jingfei, Liu Zhengjun, Liu Shutian, Liu Bo
J Opt Soc Am A Opt Image Sci Vis. 2019 Oct 1;36(10):1719-1726. doi: 10.1364/JOSAA.36.001719.
By utilizing the extended Huygens-Fresnel principle, we derive the analytical formulas for the cross-spectral density matrix elements of a radially polarized multi-Gaussian Schell-model (RPMGSM) beam propagating in oceanic turbulence. Effects of beam parameters and oceanic turbulence parameters on the propagation properties of RPMGSM beams are investigated in detail by numerical simulation. Our results show that the RPMGSM beam with larger beam order has an advantage over the radially polarized Gaussian Schell-model beam for reducing turbulence-induced degradation. Compared with temperature-induced turbulence fluctuation, the salinity-induced turbulence fluctuation makes a greater contribution to the influence on propagation properties of RPMGSM beams.
通过利用扩展的惠更斯 - 菲涅耳原理,我们推导了径向偏振多高斯谢尔模型(RPMGSM)光束在海洋湍流中传播时交叉谱密度矩阵元素的解析公式。通过数值模拟详细研究了光束参数和海洋湍流参数对RPMGSM光束传播特性的影响。我们的结果表明,光束阶数较大的RPMGSM光束在减少湍流引起的退化方面比径向偏振高斯谢尔模型光束具有优势。与温度引起的湍流波动相比,盐度引起的湍流波动对RPMGSM光束传播特性的影响更大。