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首页> 外文期刊>Applied optics >Analyzing the propagation behavior of coherence and polarization degrees of a phase-locked partially coherent radial flat-topped array laser beam in underwater turbulence
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Analyzing the propagation behavior of coherence and polarization degrees of a phase-locked partially coherent radial flat-topped array laser beam in underwater turbulence

机译:分析水下湍流中锁相的部分相干径向平顶阵列激光束的相干和偏振度的传播行为

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摘要

In this research, based on an analytical expression for cross-spectral density (CSD) matrix elements, coherence and polarization properties of phase-locked partially coherent flat-topped (PCFT) radial array laser beams propagating through weak oceanic turbulence are analyzed. Spectral degrees of coherence and polarization are analytically calculated using CSD matrix elements. Also, the effective width of spatial degree of coherence (EWSDC) is calculated numerically. The simulation is done by considering the effects of source parameters (such as radius of the array setup's circle, effective width of the spectral degree of coherence, and wavelength) and turbulent ocean factors (such as the rate of dissipation of the turbulent kinetic energy per unit mass of fluid and relative strength of temperature and salinity fluctuations, Kolmogorov micro-scale, and rate of dissipation of the mean squared temperature) in detail. Results indicate that any change in the amount of turbulence factors that increase the turbulence power reduces the EWSDC significantly and causes the reduction in the degree of polarization, and occurs at shorter propagation distances but with smaller magnitudes. In addition, being valid for all conditions, the degradation rate of the EWSDC of Gaussian array beams are more in comparison with the PCFT ones. The simulation and calculation results are shown by graphs. (C) 2016 Optical Society of America
机译:在这项研究中,基于对互谱密度(CSD)矩阵元素的解析表达式,分析了通过弱海洋湍流传播的锁相部分相干平顶(PCFT)径向阵列激光束的相干性和偏振特性。使用CSD矩阵元素可解析地计算光谱的相干度和极化度。同样,通过数值计算有效空间相干度(EWSDC)宽度。通过考虑源参数(例如阵列设置的圆的半径,光谱相干度的有效宽度和波长)和湍流海洋因素(例如每单位湍动能的耗散率)的影响来完成仿真。流体的单位质量以及温度和盐度波动的相对强度,Kolmogorov微观尺度以及均方温度的耗散率)。结果表明,增加湍流功率的湍流因子数量的任何变化都会显着降低EWSDC并导致极化度降低,并且发生在传播距离较短但幅度较小的情况下。另外,在所有情况下都有效,与PCFT相比,高斯阵列光束的EWSDC的退化率更高。仿真和计算结果以图形显示。 (C)2016美国眼镜学会

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