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Palaeoclimate evidence of vulnerable permafrost during times of low sea ice 期刊论文
NATURE, 2020, 577 (7789) : 221-+
作者:  Vaks, A.;  Mason, A. J.;  Breitenbach, S. F. M.;  Kononov, A. M.;  Osinzev, A. V.;  Rosensaft, M.;  Borshevsky, A.;  Gutareva, O. S.;  Henderson, G. M.
收藏  |  浏览/下载:10/0  |  提交时间:2020/05/13

Climate change in the Arctic is occurring rapidly, and projections suggest the complete loss of summer sea ice by the middle of this century(1). The sensitivity of permanently frozen ground (permafrost) in the Northern Hemisphere to warming is less clear, and its long-term trends are harder to monitor than those of sea ice. Here we use palaeoclimate data to show that Siberian permafrost is robust to warming when Arctic sea ice is present, but vulnerable when it is absent. Uranium-lead chronology of carbonate deposits (speleothems) in a Siberian cave located at the southern edge of continuous permafrost reveals periods in which the overlying ground was not permanently frozen. The speleothem record starts 1.5 million years ago (Ma), a time when greater equator-to-pole heat transport led to a warmer Northern Hemisphere(2). The growth of the speleothems indicates that permafrost at the cave site was absent at that time, becoming more frequent from about 1.35 Ma, as the Northern Hemisphere cooled, and permanent after about 0.4 Ma. This history mirrors that of year-round sea ice in the Arctic Ocean, which was largely absent before about 0.4 Ma (ref.(3)), but continuously present since that date. The robustness of permafrost when sea ice is present, as well as the increased permafrost vulnerability when sea ice is absent, can be explained by changes in both heat and moisture transport. Reduced sea ice may contribute to warming of Arctic air(4-6), which can lead to warming far inland(7). Open Arctic waters also increase the source of moisture and increase autumn snowfall over Siberia, insulating the ground from low winter temperatures(8-10). These processes explain the relationship between an ice-free Arctic and permafrost thawing before 0.4 Ma. If these processes continue during modern climate change, future loss of summer Arctic sea ice will accelerate the thawing of Siberian permafrost.


  
Antarctic Sea Ice Control on the Depth of North Atlantic Deep Water 期刊论文
JOURNAL OF CLIMATE, 2019, 32 (9) : 2537-2551
作者:  Nadeau, Louis-Philippe;  Ferrari, Raffaele;  Jansen, Malte F.
收藏  |  浏览/下载:7/0  |  提交时间:2019/11/26
Ocean  Sea ice  Abyssal circulation  Meridional overturning circulation  Ice loss  growth  Paleoclimate  
The Unprecedented 2016-2017 Arctic Sea Ice Growth Season: The Crucial Role of Atmospheric Rivers and Longwave Fluxes 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (10) : 5204-5212
作者:  Hegyi, Bradley M.;  Taylor, Patrick C.
收藏  |  浏览/下载:2/0  |  提交时间:2019/04/09
atmospheric water vapor  Arctic sea ice growth  longwave fluxes  
Antarctic Summer Sea Ice Trend in the Context of High-Latitude Atmospheric Circulation Changes 期刊论文
JOURNAL OF CLIMATE, 2018, 31 (10) : 3909-3920
作者:  Yu, Lejiang;  Zhong, Shiyuan;  Zhou, Mingyu;  Sun, Bo;  Lenschow, Donald H.
收藏  |  浏览/下载:8/0  |  提交时间:2019/04/09
Atmosphere-ocean interaction  Sea state  Climate change  Climate variability  Ice loss  growth  
Linking atmospheric synoptic transport, cloud phase, surface energy fluxes, and sea-ice growth: observations of midwinter SHEBA conditions 期刊论文
CLIMATE DYNAMICS, 2017, 49 (4)
作者:  Persson, P. Ola G.;  Shupe, Matthew D.;  Perovich, Don;  Solomon, Amy
收藏  |  浏览/下载:5/0  |  提交时间:2019/04/09
Atmospheric heat and moisture advection  Mixed-phase Arctic clouds  Radiative forcing  Arctic surface energy budget  Sea-ice growth  
Satellite-observed drop of Arctic sea ice growth in winter 2015-2016 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2017, 44 (7)
作者:  Ricker, Robert;  Hendricks, Stefan;  Girard-Ardhuin, Fanny;  Kaleschke, Lars;  Lique, Camille;  Tian-Kunze, Xiangshan;  Nicolaus, Marcel;  Krumpen, Thomas
收藏  |  浏览/下载:8/0  |  提交时间:2019/04/09
Arctic sea ice  sea ice thickness  remote sensing  CryoSat-2  SMOS  sea ice growth