The role of sublimation as a driver of climate signals in the water isotope content of surface snow: laboratory and field experimental results

被引:22
|
作者
Hughes, Abigail G. [1 ]
Wahl, Sonja [2 ,3 ]
Jones, Tyler R. [1 ]
Zuhr, Alexandra [4 ,5 ]
Hoerhold, Maria [6 ]
White, James W. C. [1 ]
Steen-Larsen, Hans Christian [2 ,3 ]
机构
[1] Univ Colorado, Inst Arctic & Alpine Res, Boulder, CO 80309 USA
[2] Univ Bergen, Geophys Inst, Bergen, Norway
[3] Bjerknes Ctr Climate Res, Bergen, Norway
[4] Alfred Wegener Inst, Helmholtz Zentrum Polar & Meeresforsch, Res Unit Potsdam, Telegrafenberg A45, D-14473 Potsdam, Germany
[5] Univ Potsdam, Inst Geosci, Karl Liebknecht Str 24-25, D-14476 Potsdam, Germany
[6] Alfred Wegener Inst, Helmholtz Zentrum Polar & Meeresforsch, Res Unit Bremerhaven, D-27568 Bremerhaven, Germany
来源
CRYOSPHERE | 2021年 / 15卷 / 10期
基金
欧盟地平线“2020”; 美国国家科学基金会;
关键词
ICE-CORE; STABLE-ISOTOPES; KOHNEN STATION; VAPOR; FIRN; GREENLAND; DIFFUSION; TEMPERATURE; IMPACT; ANTARCTICA;
D O I
10.5194/tc-15-4949-2021
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Ice core water isotope records from Greenland and Antarctica are a valuable proxy for paleoclimate reconstruction, yet the processes influencing the climate signal stored in the isotopic composition of the snow are being challenged and revisited. Apart from precipitation input, post-depositional processes such as wind-driven redistribution and vapor-snow exchange processes at and below the surface are hypothesized to contribute to the isotope climate signal subsequently stored in the ice. Recent field studies have shown that surface snow isotopes vary between precipitation events and co-vary with vapor isotopes, which demonstrates that vapor-snow exchange is an important driving mechanism. Here we investigate how vapor-snow exchange processes influence the isotopic composition of the snow-pack. Controlled laboratory experiments under forced sublimation show an increase in snow isotopic composition of up to 8 parts per thousand delta O-18 in the uppermost layer due to sublimation, with an attenuated signal down to 3 cm snow depth over the course of 4-6 d. This enrichment is accompanied by a decrease in the second-order parameter d-excess, indicating kinetic fractionation processes. Our observations confirm that sublimation alone can lead to a strong enrichment of stable water isotopes in surface snow and subsequent enrichment in the layers below. To compare laboratory experiments with realistic polar conditions, we completed four 2-3 d field experiments at the East Greenland Ice Core Project site (northeast Greenland) in summer 2019. High-resolution temporal sampling of both natural and isolated snow was conducted under clear-sky conditions and demonstrated that the snow isotopic composition changes on hourly timescales. A change of snow isotope content associated with sublimation is currently not implemented in isotope-enabled climate models and is not taken into account when interpreting ice core isotopic records. However, our results demonstrate that post-depositional processes such as sublimation contribute to the climate signal recorded in the water isotopes in surface snow, in both laboratory and field settings. This suggests that the ice core water isotope signal may effectively integrate across multiple parameters, and the ice core climate record should be interpreted as such, particularly in regions of low accumulation.
引用
收藏
页码:4949 / 4974
页数:26
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