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In-situ quantification of ice rheology and direct measurement of the Raymond Effect at Summit, Greenland using a phase-sensitive radar

机译:使用相敏雷达在格陵兰峰会上对冰流变学进行原位定量和直接测量雷蒙德效应

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摘要

The Glen exponent ncharacterizes the stress-dependence of ice deformation, directly influencing the rate at which ice masses respond to external forcing. The slow deformation in large ice-sheets makes laboratory rheometry at representative strain-rates difficult. We develop a new technique to estimaten in-situ, deploying a phase-sensitive radar to measure vertical strain rates of around 10−4 yr−1within the top 1000 m of ice across ice divides at Summit and NEEM, Greenland. A fluid-dynamical feature, the Raymond Effect, predicts strong vertical strain-rate variation across divides over distances of a few ice-thicknesses. We achieve sufficient resolution to show this pattern, enabling us to estimaten= 4.5 by inverting our observations with flow modelling. This is higher than values previously used but consistent with other indirect measurements, implying laboratory measurements do not explore the full range of ice rheology and the consequent possibility of a greater sensitivity and responsiveness in ice-sheet dynamics.
机译:Glen指数表征了冰变形的应力依赖性,直接影响了冰块对外部强迫的响应速度。大冰盖中缓慢的变形使实验室流变仪难以达到代表性的应变率。我们开发了一种新技术来进行原位估计,并部署了一个相敏雷达来测量格陵兰岛Summit和NEEM跨冰层的最高1000 m冰层中约10−4 yr−1的垂直应变率。雷蒙效应是一种流体动力学特征,它预测了跨越几个冰层厚度的距离的垂直竖向应变率的强烈变化。我们获得了足够的分辨率来显示这种模式,从而使我们能够通过将流量模型与观测值进行反演来估计n = 4.5。这高于先前使用的值,但与其他间接测量值一致,这意味着实验室测量值无法探索冰流变学的全部范围,因此并不能在冰盖动力学中获得更大的灵敏度和响应度。

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