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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Effect of atmospheric refraction on radiative transfer in visible and near-infrared band: Model development, validation, and applications
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Effect of atmospheric refraction on radiative transfer in visible and near-infrared band: Model development, validation, and applications

机译:大气折射对可见光和近红外波段辐射传输的影响:模型开发,验证和应用

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摘要

Refraction is an important factor influencing radiative transfer since it can modify the propagation trajectory and polarization states of lights; therefore, it is necessary to quantitively evaluate the effect of atmospheric refraction on radiative transfer process. To this end, a new atmospheric radiative transfer model including refraction process is proposed. The model accuracy is validated against benchmark results, literature results, and well-tested radiative transfer models such as discrete coordinate method and RT3/PolRadtran. The impact of atmospheric refraction on both polarized radiance and fluxes is discussed for pure Rayleigh scattering atmosphere, atmosphere with aerosol, and cloud. The results show that atmospheric refraction has a significant influence on both the radiance and polarization states of diffuse light, where the relative change of the radiance of reflected light and transmitted light due to refraction can achieve 6.3% and 7.4% for Rayleigh scattering atmosphere, 7.2% and 7.8% for atmosphere with aerosol, and 6.2% and 6.8% for cloudy atmosphere, respectively. The relative change of the degree of polarization ranges fromnear zero in the horizon to 9.5%near neutral points. The angular distribution pattern of the relative change of the radiance for atmosphere with aerosol and cloud is very similar to that for pure Rayleigh scattering case, where its magnitude decreases gradually with the increasing of zenith angle for reflected light; but for transmitted light, the variation characteristics is opposite. The impact of refraction is gradually enhanced with the increasing of solar zenith angles and the optical depth of aerosol and cloud. As the wavelength of incident light increases, the impact declines rapidly for Rayleigh scattering medium. The relative change of the fluxes due to refraction is most notable for Middle Latitude Winter profile (about 8.2043% and 7.3225% for the transmitted and reflected light, respectively, at 0.35 μm).With increasing the optical depth of aerosol, the influence of refraction on the fluxes is gradually enhanced. For cloudy atmosphere, the relative changes of the fluxes due to refraction are not very sensitive to the variation of cloud optical depth and effective radius of cloud drops.
机译:折射是影响辐射传递的重要因素,因为它可以改变光的传播轨迹和偏振态。因此,有必要定量评估大气折射对辐射传递过程的影响。为此,提出了一种新的包括折射过程的大气辐射传递模型。通过基准测试结果,文献结果以及经过充分测试的辐射传输模型(例如离散坐标法和RT3 / PolRadtran)验证了模型的准确性。讨论了纯瑞利散射,含气溶胶和云的大气折射对极化辐射和通量的影响。结果表明,大气折射对漫射光的辐射度和偏振态均具有显着影响,其中反射光和透射光的折射因折射而产生的相对变化在瑞利散射环境下可分别达到6.3%和7.4%,7.2含气溶胶的大气分别为%和7.8%,混浊的大气分别为6.2%和6.8%。极化程度的相对变化范围从地平线附近的零到中性点附近的9.5%。气溶胶和云的大气辐射率相对变化的角度分布模式与纯瑞利散射情况非常相似,后者的大小随反射光的天顶角的增加而逐渐减小。但是对于透射光,其变化特性相反。随着太阳天顶角和气溶胶及云层光学深度的增加,折射的影响逐渐增强。随着入射光波长的增加,对瑞利散射介质的影响迅速减小。在中纬度冬季剖面中,折射引起的通量相对变化最为明显(在0.35μm处,透射光和反射光分别约为8.2043%和7.3225%)。随着气溶胶光学深度的增加,折射的影响在通量上逐渐增强。对于多云的大气,由于折射引起的通量的相对变化对云的光学深度和云滴有效半径的变化不是很敏感。

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