Widespread seasonal speed-up of west Antarctic Peninsula glaciers from 2014 to 2021

被引:17
|
作者
Wallis, Benjamin J. [1 ]
Hogg, Anna E. [1 ]
van Wessem, J. Melchior [2 ]
Davison, Benjamin J. [1 ]
van den Broeke, Michiel R. [2 ]
机构
[1] Univ Leeds, Sch Earth & Environm, Leeds, England
[2] Univ Utrecht, Inst Marine & Atmospher Res Utrecht, Utrecht, Netherlands
基金
英国自然环境研究理事会;
关键词
SURFACE MASS-BALANCE; B ICE SHELF; AMUNDSEN SEA EMBAYMENT; CLIMATE-CHANGE; LARSEN; SHEET; FLOW; RETREAT; MELT; DISINTEGRATION;
D O I
10.1038/s41561-023-01131-4
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Mass loss from the Antarctic Ice Sheet is dominated by ice dynamics, where ocean-driven melt leads to un-buttressing and ice flow acceleration. Long-term ice speed change has been measured in Antarctica over the past four decades; however, there are limited observations of short-term seasonal speed variability on the grounded ice sheet. Here we assess seasonal variations in ice flow speed on 105 glaciers on the west Antarctic Peninsula using Sentinel-1 satellite observations spanning 2014 to 2021. We find an average summer speed-up of 12.4 +/- 4.2%, with maximum speed change of up to 22.3 +/- 3.2% on glaciers with the most pronounced seasonality. Our results show that over the six-year study period, glaciers on the west Antarctic Peninsula respond to seasonal forcing in the ice-ocean-atmosphere system, indicating sensitivity to changes in terminus position, surface melt plus rainwater flux, and ocean temperature. Seasonal speed variations must be accounted for when measuring the mass balance and sea level contribution of the Antarctic Peninsula, and studies must establish the future evolution of this previously undocumented signal under climate warming scenarios. Glaciers on the west Antarctic Peninsula flowed on average 12% faster during the summer compared with winter due to a mix of oceanic and atmospheric influences, according to an analysis of remote sensing data from 2014 to 2021.
引用
收藏
页码:231 / +
页数:16
相关论文
共 50 条
  • [1] Widespread seasonal speed-up of west Antarctic Peninsula glaciers from 2014 to 2021
    Benjamin J. Wallis
    Anna E. Hogg
    J. Melchior van Wessem
    Benjamin J. Davison
    Michiel R. van den Broeke
    Nature Geoscience, 2023, 16 : 231 - 237
  • [2] Widespread increase in discharge from west Antarctic Peninsula glaciers since 2018
    Davison, Benjamin J.
    Hogg, Anna E.
    Moffat, Carlos
    Meredith, Michael P.
    Wallis, Benjamin J.
    CRYOSPHERE, 2024, 18 (07): : 3237 - 3251
  • [3] Widespread acceleration of tidewater glaciers on the Antarctic Peninsula
    Pritchard, H. D.
    Vaughan, D. G.
    JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2007, 112 (F3)
  • [4] Seasonal speed-up of two outlet glaciers of Austfonna, Svalbard, inferred from continuous GPS measurements
    Dunse, T.
    Schuler, T. V.
    Hagen, J. O.
    Reijmer, C. H.
    CRYOSPHERE, 2012, 6 (02): : 453 - 466
  • [5] Recent ice loss from the Fleming and other glaciers, Wordie Bay, West Antarctic Peninsula
    Rignot, E
    Casassa, G
    Gogineni, S
    Kanagaratnam, P
    Krabill, W
    Pritchard, H
    Rivera, A
    Thomas, R
    Turner, J
    Vaughan, D
    GEOPHYSICAL RESEARCH LETTERS, 2005, 32 (07) : 1 - 4
  • [6] Seasonal variability in the distribution of Antarctic krill, Euphausia superba, west of the Antarctic Peninsula
    Lascara, Cathy M.
    Hofmann, Eileen E.
    Ross, Robin M.
    Quetin, Langdon B.
    Deep-Sea Research, Part 1: Oceanographic Research Papers, 1999, 46 (06): : 951 - 984
  • [7] Seasonal variability in the distribution of Antarctic krill, Euphausia superba, west of the Antarctic Peninsula
    Lascara, CM
    Hofmann, EE
    Ross, RM
    Quetin, LB
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 1999, 46 (06) : 951 - 984
  • [9] Seasonal and interannual variability of phytoplankton biomass west of the Antarctic Peninsula
    Smith, RC
    Baker, KS
    Vernet, M
    JOURNAL OF MARINE SYSTEMS, 1998, 17 (1-4) : 229 - 243
  • [10] Winter speed-up of quiescent surge-type glaciers in Yukon, Canada
    Abe, T.
    Furuya, M.
    CRYOSPHERE, 2015, 9 (03): : 1183 - 1190