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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Geophysical and atmospheric controls on Ku-, X- and C-band backscatter evolution from a saline snow cover on first-year sea ice from late-winter to pre-early melt
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Geophysical and atmospheric controls on Ku-, X- and C-band backscatter evolution from a saline snow cover on first-year sea ice from late-winter to pre-early melt

机译:从冬天到早期冬季盐水雪覆盖的KU - ,X-和C波段对散散散射进化的地球物理和大气控制

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This study investigates changes in Ku-, X- and C-band microwave backscatter, co-polarized ratio and dual-frequency ratios, to changes in in-situ measured snow thermophysical properties, driven by surface radiation measurements, during a 7-day transition from late winter to pre-early melt on a highly saline snow cover on smooth first-year ice. A surface-based Ku-, X- and C-band microwave scatterometer system is used near coincident with in-situ thermophysical snow measurements. A frequency-dependent penetration depth model is utilized to simulate diverse variations in Ku-, X- and C-band penetration during fluctuating snow thermophysical and atmospheric conditions. These results helped improve the interpretation of observed changes in Ku-, X- and C-band backscatter. Overall, dielectric loss associated with presence of brine throughout the snow volume, is observed to be the governing factor affecting microwave penetration. Our results indicate significant differences in observed microwave backscatter and derived co-polarized ratio and dual-frequency ratios, for all three frequencies during the transition from cold late winter phase to warm pre-early melt onset phase. C-band demonstrates the greatest increase in backscatter and co-pol ratios, followed by X- and Ku-bands. The dual-frequency ratio combinations clearly demonstrate their ability to separate sensitivities in frequencies by characterizing changes in bacicscatter during the 7-day transition. Our results indicate strong direct influence of downwelling shortwave and longwave radiation on snow brine volume and dielectric properties, which drives changes to Ku-, X- and C-band microwave bacicscatter and its associated co-polarized ratio and dual-frequency ratios. Our results demonstrate the ability of an observational multi-frequency active microwave approach to illustrate frequency- ,polarization-and incidence angle-dependent changes in microwave backscatter from snow covers on first-year ice, at varying atmospheric and snow thermophysical conditions. (C) 2017 Elsevier Inc All rights reserved.
机译:本研究研究了KU,X和C波段微波反向散射,共偏振率和双频率比率的变化,以原位测量的雪热物理性质的变化,在7天的转换期间由表面辐射测量驱动从晚冬天到早期融化在高度盐水雪地上,在光滑的第一年的冰上。基于表面的KU-,X-和C波段微波散射仪系统在原位热神族雪测量附近使用附近。频率依赖性渗透深度模型用于模拟在波动的积雪热物理和大气条件下的KU,X和C波段渗透中的不同变化。这些结果有助于改善观察到的KU,X-和C波段反向散射的变化的解释。总的来说,观察到在整个雪体积中与盐水存在相关的介电损失,是影响微波渗透的控制因素。我们的结果表明,对于从冷晚冬相到温早期熔化开始期间的所有三个频率,观察到的微波反向散射和衍生共偏振比和双频率比率的显着差异。 C波段展示了反向散射和共同波尔比的最大增加,其次是X和Ku波段。双频率比组合清楚地证明了它们通过在7天的转换期间表征化菌器的变化来分离频率敏感性的能力。我们的结果表明,沉船短波和龙波辐射对散雪盐体积和介电性能的强烈直接影响,其驱动ku - ,X-和C频段微波杆菌器及其相关的共偏振比和双频率比变化。我们的结果表明了观察多频活性微波方法来说明微波反向散射的频率,极化和入射角依赖性变化的能力,在第一年的冰上,不同的大气和雪热物理条件。 (c)2017年elsevier inc保留所有权利。

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