Meteoric water and glacial melt in the southeastern Amundsen Sea: a time series from 1994 to 2020

Andrew N. Hennig, D. Mucciarone, Stanley S. Jacobs, R. Mortlock, Robert B. Dunbar
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Abstract

Abstract. Ice sheet mass loss from Antarctica is greatest in the Amundsen Sea sector, where “warm” modified Circumpolar Deep Water moves onto the continental shelf and melts and thins the bases of ice shelves hundreds of meters below the sea surface. We use nearly 1000 paired salinity and oxygen isotope analyses of seawater samples collected on seven expeditions from 1994 to 2020 to produce a time series of glacial meltwater inventory for the southeastern Amundsen Sea continental shelf. Deep water column salinity–δ18O relationships yield freshwater end-member δ18O values from -31.3±1.0‰ to -28.4±1.0‰, consistent with the isotopic composition of local glacial ice. We use a two-component meteoric water end-member approach that accounts for precipitation in the upper water column, and a pure glacial meteoric water end-member is employed for the deep water column. Meteoric water inventories are comprised of nearly pure glacial meltwater in deep shelf waters and of >74 % glacial meltwater in the upper water column. Total meteoric water inventories range from 8.1±0.7 to 9.6±0.8 m and exhibit greater interannual variability than trend over the study period, based on the available data. The relatively long residence time in the southeastern Amundsen Sea allows changes in mean meteoric water inventories to diagnose large changes in local melt rates, and improved understanding of regional circulation could produce well-constrained glacial meltwater fluxes. The two-component meteoric end-member technique improves the accuracy of the sea ice melt and meteoric fractions estimated from seawater δ18O measurements throughout the entire water column and increases the utility for the broader application of these estimates.
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阿蒙森海东南部的流星水和冰川融化:1994 年至 2020 年的时间序列
摘要南极洲的冰盖质量损失在阿蒙森海区最大,那里的 "温暖 "改良环极深水移动到大陆架上,使海面下数百米的冰架基底融化变薄。我们利用 1994 年至 2020 年期间七次考察采集的近 1000 份海水样本的成对盐度和氧同位素分析,得出了阿蒙森海东南大陆架冰川融水库存的时间序列。深水水柱盐度-δ18O关系得出淡水末端分子δ18O值从-31.3±1.0‰到-28.4±1.0‰,与当地冰川冰的同位素组成一致。我们采用双组分流星水末端分子法,在上层水体中考虑降水,在深层水体中采用纯冰川流星水末端分子。流星水存量在深海陆架水域由几乎纯净的冰川融水组成,在上层水体由大于 74% 的冰川融水组成。根据现有数据,流星雨总存量在 8.1±0.7 到 9.6±0.8 米之间,在研究期间的年际变化大于趋势变化。阿蒙森海东南部相对较长的滞留时间使得平均流体水存量的变化可以诊断出当地融化率的巨大变化,而对区域环流的进一步了解可以产生约束良好的冰川融水通量。双组分陨石末端分子技术提高了从整个水柱的海水δ18O测量值估算出的海冰融化和陨石部分的准确性,并增加了这些估算值在更广泛应用中的效用。
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