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An ice sheet wide framework for radar-inference of englacial attenuation and basal reflection with application to Greenland

机译:用于雷达推断的冰盖宽框架,用于对格陵兰岛进行基因衰减和基底反射

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摘要

Radar inference of the bulk properties of glacier beds, most notably identifying basal melting, is, in general, derived from the basal reflection coefficient. On the scale of an ice sheet, unambiguous determination of basal reflection is primarily limited by uncertainty in the englacial attenuation of the radio wave, which is an Arrhenius function of temperature. Existing bed-returned power algorithms for deriving attenuation assume that the attenuation rate is regionally constant, which is not feasible at an ice-sheet-wide scale. Here we introduce a new semi-empirical framework for deriving englacial attenuation, and, to demonstrate its efficacy, we apply it to the Greenland Ice Sheet. A central feature is the use of a prior Arrhenius temperature model to estimate the spatial variation in englacial attenuation as a first guess input for the radar algorithm. We demonstrate regions of solution convergence for two input temperature fields and for independently analysed field campaigns. The coverage achieved is a trade-off with uncertainty and we propose that the algorithm can be “tuned” for discrimination of basal melt (attenuation loss uncertainty ∼ 5 dB). This is supported by our physically realistic (∼ 20 dB) range for the basal reflection coefficient. Finally, we show that the attenuation solution can be used to predict the temperature bias of thermomechanical ice sheet models and is in agreement with known model temperature biases at the Dye 3 ice core.
机译:通常,从基底反射系数中得出对冰川床整体性质的雷达推断,最明显地是识别基底融化。在冰盖的规模上,对基底反射的明确确定主要受到无线电波的冰川衰减的不确定性的限制,这是温度的阿累尼乌斯函数。现有的推导衰减的床返回功率算法假定衰减率在区域上是恒定的,这在冰盖范围内是不可行的。在这里,我们介绍了一个新的半经验框架,用于推论冰川衰减,并且为了证明其有效性,我们将其应用于格陵兰冰原。一个主要功能是使用先前的Arrhenius温度模型来估计冰川衰减的空间变化,作为雷达算法的第一个猜测输入。我们演示了两个输入温度场和独立分析的场活动的解收敛区域。实现的覆盖范围是不确定性的折衷,我们建议可以对算法进行“调整”以区分基础熔体(衰减损耗不确定度约为5 dB)。基础反射系数的实际逼真范围(约20 dB)支持了这一点。最后,我们表明衰减解决方案可用于预测热机械冰盖模型的温度偏差,并且与Dye 3冰芯处的已知模型温度偏差一致。

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