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Electrical anisotropy in sea ice and a dual-polarization radar system to mitigate the effects of preferential attenuation in imaging sea ice

机译:海冰中的电各向异性和双极化雷达系统,以减轻海冰成像中优先衰减的影响

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Preferential alignment in the physical structure of the sea ice crystal matrix results in anisotropy in the electrical properties of the bulk sea ice. Previous field data and our data demonstrate that both sea ice conductivity and its electrical anisotropy can impede ice thickness profiling using ground penetrating radar (GPR). Preferential attenuation caused by conductive anisotropy can reduce or eliminate ice bottom reflections when the polarization is not optimally aligned. A dual-polarization GPR configuration reliably imaged the sea ice/water interface, even in the presence of well-developed conductivity anisotropy. Additionally, by combining data from both polarizations, the system provides information about the horizontal direction of the ice matrix alignment, which may indicate the direction of dominant current flow underlying sea water. (C) 2015 Elsevier B.V. All rights reserved.
机译:海冰晶体基质的物理结构中的优先排列导致了散装海冰的电学性能的各向异性。先前的现场数据和我们的数据表明,使用地面穿透雷达(GPR)进行的海冰电导率及其电各向异性都可以阻止冰厚分布。当极化未最佳对准时,由导电各向异性引起的优先衰减可以减少或消除冰底反射。即使在电导率各向异性发展良好的情况下,双极化GPR配置也能可靠地对海冰/水界面进行成像。另外,通过组合来自两个极化的数据,系统可提供有关冰基质排列的水平方向的信息,该信息可指示海水下主导电流的方向。 (C)2015 Elsevier B.V.保留所有权利。

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