利用辐射传递方程(RTE)估算非均匀云下光信号衰减

M. Zaman, Malik, S. Sheikh, Muhammad
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引用次数: 3

摘要

高数据速率要求必须使用从卫星到地面的光学无线链路,这些链路总是要穿过不均匀的云层。因此,有必要对散射通道进行精确建模,并估计携带信息的光信号在穿越多重散射非均匀云时所遭受的衰减。本文介绍了利用三维辐射传递方程RTE来预测光信号在穿越云层时的衰减。三维辐射传输方程明确地处理了非均匀云的空间复杂性和多重散射效应,并在不调用数学假设的情况下提供了准确的传播信道估计。云滴主要由液态水组成,通过吸收和向前散射使光束衰减。因此,有必要生成能够真实反映云结构空间分布的三维云场。利用实验数据统计生成的云场作为三维辐射传输模型的输入,计算云底透射辐照度,预测积云场景中的衰减。本文采用蒙特卡罗模拟的三维辐射传递方程的数值解,采用随机方法模拟非均匀云层内散射和吸收的物理过程。选择开放源代码I3RC蒙特卡罗代码在常用的850 nm和1550 nm光波长下进行模拟。对10 μm波段进行了专门的分析,以深入了解光通过云层传播时的波长依赖性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Use of Radiative Transfer Equation (RTE) for Estimating Optical Signal Attenuation through Inhomogeneous Clouds
High data rate requirement has necessitated the use of optical wireless links from satellite-to-ground that invariably pass through the inhomogeneous cloud layers. It has thus become necessary to accurately model the scattering channel and estimate attenuation suffered by the information bearing optical signal traversing the multiple scattering inhomogeneous clouds. This paper introduces the utilization of three dimensional radiative transfer equation RTE for prediction of attenuation in the optical signal traversing the cloud layers. The three dimensional radiative transfer equation explicitly handles the spatial complexity and multiple scattering effects of inhomogeneous clouds and provides accurate propagation channel estimation without invoking mathematical assumptions. Cloud droplets mainly composed of liquid water attenuates the beam of light through absorption and scattering in forward direction. Therefore, it is necessary to generate three dimensional cloud fields that exhibit realistic spatial distribution of the cloud structure. This statistically generated cloud field from experimental data is used as an input to three dimensional radiative transfer model to calculate transmitted irradiance at the bottom of cloud to predict attenuation in cumulus cloud scene. This paper employs the numerical solution of three dimensional radiative transfer equation using Monte Carlo simulation that uses stochastic methods to simulate physical processes of scattering and absorption within inhomogeneous cloud layers. The open source I3RC Monte Carlo code has been chosen to perform simulations at commonly employed optical wavelengths of 850 nm and 1550 nm. The 10 μm has been specifically analyzed to gain insight of wavelength dependence in optical propagation through clouds.
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