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首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Applicability of the Rayleigh-Gans approximation for scattering by snowflakes at microwave frequencies in vertical incidence
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Applicability of the Rayleigh-Gans approximation for scattering by snowflakes at microwave frequencies in vertical incidence

机译:瑞利-甘斯近似在垂直入射微波频率下雪花散射的适用性

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The applicability of the Rayleigh-Gans approximation (RGA) for scattering by snowflakes is studied in the microwave region of the electromagnetic spectrum. Both the shapes of the single ice crystals, or monomers, and their amounts in the modeled snowflakes are varied. For reference, the discrete-dipole approximation (DDA) is used to produce numerically accurate solutions to the single-scattering properties, such as the backscattering and extinction cross-sections, single-scattering albedo, and the asymmetry parameter. We find that the single-scattering albedo is the most accurate with only about 10% relative bias at maximum. The asymmetry parameter has about 0.12 absolute bias at maximum. The backscattering and extinction cross-sections show about - 65% relative biases at maximum, corresponding to about - 4.6 dB difference. Overall, the RGA agrees well with the DDA computations for all the cases studied and is more accurate for the integrated quantities, such as the single-scattering albedo and the asymmetry parameter than the cross-sections for the same snowflakes. The accuracy of the RGA seems to improve, when the number of monomers is increased in an aggregate, and decrease, when the frequency increases. It is also more accurate for less dense monomer shapes, such as stellar dendrites. The DDA and RGA results are well correlated; the sample correlation coefficients of those are close to unity throughout the study. Therefore, the accuracy of the RGA could be improved by applying appropriate correction factors. Key PointsRayleigh-Gans approximation is applicable for snowflakes at microwavesThe biases are well correlated and can be improved by correction factorsSSA and asymmetry parameter are more accurate than cross sections
机译:研究了瑞利甘斯近似(RGA)在雪花散射中的电磁频谱的微波区域的适用性。单个冰晶或单体的形状,以及它们在模拟雪花中的数量都不同。作为参考,离散偶极近似(DDA)用于为单散射特性(例如反向散射和消光截面,单散射反照率和不对称参数)产生数值精确的解。我们发现单散射反照率是最准确的,最大相对偏差仅为10%。不对称参数的最大绝对偏差约为0.12。反向散射和消光截面最大显示出大约-65%的相对偏置,相当于大约-4.6 dB的差异。总体而言,RGA与所有研究案例的DDA计算结果非常吻合,并且对于积分量(例如单散射反照率和不对称参数)比相同雪花的横截面更精确。当单体总数增加时,RGA的精度似乎会提高,而当频率增加时,RGA的精度会降低。对于密度较小的单体形状(例如,恒星状树枝状晶体),它也更准确。 DDA和RGA结果具有很好的相关性;在整个研究中,这些样本的相关系数接近统一。因此,可以通过应用适当的校正因子来提高RGA的精度。关键点瑞利-甘斯(Rayleigh-Gans)近似适用于微波下的雪花偏差具有很好的相关性,可以通过校正因子进行改善SSA和不对称参数比横截面更精确

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