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Extensive liquid meltwater storage in firn within the Greenland ice sheet

机译:格陵兰冰盖内的大量液体融化水储存

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Mass loss from the Greenland ice sheet contributes significantly to present sea level rise1. High meltwater runoff is responsible for half of Greenland’s mass loss~2. Surface melt has been spreading and intensifying in Greenland, with the highest ever surface area melt and runoff recorded in 2012~3. However, how surface melt water reaches the ocean, and how fast it does so, is poorly understood. Firn—partially compacted snow from previous years—potentially has the capacity to store significant amounts of melt water in liquid or frozen form~4, and thus delay its contribution to sea level. Here we present direct observations from ground and airborne radar, as well as ice cores, of liquid water within firn in the southern Greenland ice sheet.We find a substantial amount of water in this firn aquifer that persists throughout the winter, when snow accumulation and melt rates are high. This represents a previously unknown storage mode forwater within the ice sheet.We estimate, using a regional climate model, aquifer area at about 70,000 km~2 and the depth to the top of thewater table as 5–50 m. The perennial firn aquifer could be important for estimates of ice sheet mass and energy budget.
机译:格陵兰冰原的质量损失在很大程度上导致了目前的海平面上升1。高融水径流占格陵兰岛质量损失2的一半。格陵兰的地表融化一直在蔓延和加剧,2012〜3年有史以来最高的地表融化和径流记录。然而,人们对表层融化水如何到达海洋以及它到达海洋的速度知之甚少。蕨类植物(前些年被部分压实的雪)可能具有存储大量液态或冷冻形式的融化水的能力,〜4,从而延迟了其对海平面的贡献。在这里,我们展示了地面和机载雷达以及冰芯对格陵兰岛南部冰原中烧成的液态水的直接观察结果,我们发现在该烧成含水层中有大量水持续存在整个冬季,此时积雪和熔化速率很高。这代表了冰盖内以前未知的水存储模式。我们使用区域气候模型估计含水层面积约为70,000 km〜2,到地下水位顶部的深度为5–50 m。多年生的含水层对于估算冰盖质量和能源预算可能很重要。

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