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A confined–unconfined aquifer model for subglacial hydrology and its application to the Northeast Greenland Ice Stream

机译:冰川下水文的密闭式含水层模型及其在东北格陵兰冰河中的应用

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Subglacial hydrology plays an?important role in ice sheet dynamics as it determines the sliding velocity. It also drives freshwater into the ocean, leading to undercutting of calving fronts by plumes. Modeling subglacial water has been a?challenge for decades. Only recently have new approaches been developed such as representing subglacial channels and thin water sheets by separate layers of variable hydraulic conductivity. We extend this concept by modeling a?confined–unconfined aquifer system (CUAS) in a?single layer of an equivalent porous medium (EPM). The advantage of this formulation is that it prevents unphysical values of pressure at reasonable computational cost. We performed sensitivity tests to investigate the effect of different model parameters. The strongest influence of model parameters was detected in terms of governing the opening and closure of the system. Furthermore, we applied the model to the Northeast Greenland Ice Stream, where an?efficient system independent of seasonal input was identified about 500?km downstream from the ice divide. Using the effective pressure from the hydrology model, the Ice Sheet System Model (ISSM) showed considerable improvements in modeled velocities in the coastal region.
机译:冰河下的水文学在决定滑冰速度时在冰盖动力学中起着重要作用。它还将淡水带入海洋,导致羽状流产对犊牛锋的侵蚀。数十年来,对冰下水进行建模一直是一个挑战。直到最近才开发出新的方法,例如通过可变的水力传导率的单独层来表示冰川下的渠道和稀薄的水床。我们通过在等效多孔介质(EPM)的单层中模拟一个无约束的含水层系统(CUAS)扩展了这一概念。该公式的优点在于,它以合理的计算成本防止了压力的非物理值。我们进行了敏感性测试,以调查不同模型参数的影响。在控制系统的打开和关闭方面,模型参数的影响最大。此外,我们将该模型应用于东北格陵兰冰流,在该冰隔下游约500公里处,确定了一个独立于季节性输入的有效系统。利用水文模型的有效压力,冰盖系统模型(ISSM)在沿海地区的模型速度方面显示出显着改善。

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