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首页> 外文期刊>Journal of geophysical research. Earth Surface: JGR >Physical Conditions of Fast Glacier Flow: 3. Seasonally‐Evolving Ice Deformation on Store Glacier, West Greenland
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Physical Conditions of Fast Glacier Flow: 3. Seasonally‐Evolving Ice Deformation on Store Glacier, West Greenland

机译:快速冰川流量的物理条件:3。在格陵兰岛店铺冰川季节性发展冰块变形

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摘要

> Temporal variations in ice sheet flow directly impact the internal structure within ice sheets through englacial deformation. Large‐scale changes in the vertical stratigraphy within ice sheets have been previously conducted on centennial to millennial timescales; however, intra‐annual changes in the morphology of internal layers have yet to be explored. Over a period of 2?years, we use autonomous phase‐sensitive radio‐echo sounding to track the daily displacement of internal layers on Store Glacier, West Greenland, to millimeter accuracy. At a site located ~30?km from the calving terminus, where the ice is ~600?m thick and flows at ~700?m/a, we measure distinct seasonal variations in vertical velocities and vertical strain rates over a 2‐year period. Prior to the melt season (March–June), we observe increasingly nonlinear englacial deformation with negative vertical strain rates (i.e., strain thinning) in the upper half of the ice column of approximately ?0.03?a ?1 , whereas the ice below thickens under vertical strain reaching up to +0.16 a ?1 . Early in the melt season (June–July), vertical thinning gradually ceases as the glacier increasingly thickens. During late summer to midwinter (August–February), vertical thickening occurs linearly throughout the entire ice column, with strain rates averaging 0.016 a ?1 . We show that these complex variations are unrelated to topographic setting and localized basal slip and hypothesize that this seasonality is driven by far‐field perturbations in the glacier's force balance, in this case generated by variations in basal hydrology near the glacier's terminus and propagated tens of kilometers upstream through transient basal lubrication longitudinal coupling.
机译:

冰盖的时间变化通过enylacial变形直接影响冰盖内的内部结构。冰盖内的垂直地层的大规模变化已经在百年期至千禧一代的时间内进行;然而,尚未探索内部层的形态的年度变化。在2年的时间内,我们使用自主相敏感的无线电回声听起来跟踪内格陵兰西格陵兰山冰川的内部层的日常位移到毫米准确性。在距离Calcing Terminus〜30 km的网站上,冰是〜600?m厚,在〜700?M / A中流动,我们在2年期间测量垂直速度和垂直应变率的不同季节性变化。在融化季节(3月6月)之前,我们观察到冰柱的上半部约为约0.03的上半部分的负垂直应变速率(即应变细化)日益非线性的enjlacial变形?a ?1 ,而在垂直菌株下达到高达+ 0.16的冰块下方的冰达到+ 0.16A 1 。早在融化季节(七月),垂直变薄逐渐减缓,因为冰川越来越厚。在夏季至冬季冬季(八月至二月)期间,垂直增厚在整个冰柱中线性发生,应变率平均0.016 A 1 。我们表明,这些复杂的变化与地形设置无关,本地化基础滑动和假设,这种季节性是由冰川力量平衡中的近景扰动驱动的,在这种情况下,通过冰川末端附近的基础水文的变化产生和传播的数十在瞬态基底润滑纵向耦合的公里上游。

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  • 作者单位

    Scott Polar Research InstituteUniversity of CambridgeCambridge UK;

    Scott Polar Research InstituteUniversity of CambridgeCambridge UK;

    Centre for Glaciology Department of Geography &

    Earth SciencesAberystwyth UniversityAberystwyth UK;

    British Antarctic Survey National Environmental Research CouncilCambridge UK;

    Scott Polar Research InstituteUniversity of CambridgeCambridge UK;

    Centre for Glaciology Department of Geography &

    Earth SciencesAberystwyth UniversityAberystwyth UK;

    Centre for Arctic Gas Hydrate Environment and Climate Department of GeologyArctic University of NorwayNorway;

    Department of EngineeringLancaster UniversityLancaster UK;

    Department of Electronic &

    Electrical EngineeringUniversity College LondonLondon UK;

    School of Geography &

    Sustainable DevelopmentUniversity of St. AndrewsSt. Andrews UK;

    Department of GeographySwansea UniversitySwansea UK;

    Scott Polar Research InstituteUniversity of CambridgeCambridge UK;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP79:P3;
  • 关键词

    Greenland; Glacier; Radar; Strain; Ice Sheet;

    机译:格陵兰;冰川;雷达;菌株;冰盖;

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