2018-2022 年南极半岛北部冰川面积和表面速度的时空变化

IF 6.4 1区 地球科学 Q1 ENVIRONMENTAL SCIENCES
Yu-Long Kang , Shi-Chang Kang , Wan-Qin Guo , Tao Che , Zong-Li Jiang , Zhen-Feng Wang , Qiang-Qiang Xu , Cheng-De Yang
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引用次数: 0

摘要

冰盖是评估气候变化的重要指标。最近基于遥感的质量损失研究表明,南极半岛的冰川退缩速度很快,冰面速度加快。然而,对冰速季节变化的观测十分有限,冰川面积的变化需要多时监测。本研究利用哨兵1&2号卫星在2018-2022年期间获取的卫星图像,研究了南极半岛北部375∼块冰川的面积和表面速度变化。结果表明,在研究期间,冰川面积减少了约166.1±44.2平方公里(每年减少-0.2%±0.1%),2020年后冰川面积加速减少(每年减少-0.4%±0.3%),NAP东部冰川面积减少最为显著。北太平洋行动计划的最大年冰速一般超过 3500 米/年,而 2021 年的冰速最高(超过 4210 米/年)。秋季冰速变化高于其他季节,而夏季冰速呈上升趋势。G012158E47018N 冰川、McNeile 冰川、G299637E64094S 冰川和 Drygalski 冰川的冰速变化最为显著,表现为日冰速高,冰川末端波动大。我们的研究结果表明,NAP 冰川面积和季节性冰速的变化与冰-海洋-大气过程有关。因此,在气候变暖情况下进行精确的质量平衡计算、模型验证和变化机制分析时,应考虑季节性冰速和面积变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatiotemporal variations in glacier area and surface velocity of the northern Antarctic Peninsula during 2018–2022

Ice sheet serves as a crucial indicator for assessing climate change. Mass loss in recent remote sensing-based studies indicated that the Antarctic Peninsula has rapid rates of glacier retreat and speed up of surface velocity. However, observations of seasonal variability of ice speed are limited, and glacier-area changes require multi-temporal monitoring. This study investigated the changes in area and surface velocities of ∼375 glaciers on the northern Antarctic Peninsula (NAP) utilizing satellite images acquired by the Sentinel 1&2 satellites during 2018–2022. The results indicate that the glacier area reduced by approximately 166.1 ± 44.2 km2 (−0.2% ± 0.1% per year) during the study period, with an acceleration after 2020 (−0.4% ± 0.3% per year), and the most dramatic reduction happened on the eastern NAP. The maximum annual ice speeds on the NAP generally exceeded 3500 m per year, while the ice speeds in 2021 were the highest (exceeded 4210 m per year). The ice speed variability in austral autumn was higher than in other seasons, meanwhile the summer ice speeds showed an increasing trend. The glacier G012158E47018N, McNeile Glacier, glacier G299637E64094S and Drygalski Glacier showed the most remarkable ice speed variations represented by high daily velocities and strong fluctuations on their termini. Our results demonstrated that the variations in glacier area and seasonal ice speed on the NAP were responsive to the ice–ocean–atmosphere processes. Therefore, seasonal velocity and area variations should be considered when conducting accurate mass balance calculations, model validations and change mechanism analyses under climate warming scenarios.

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来源期刊
Advances in Climate Change Research
Advances in Climate Change Research Earth and Planetary Sciences-Atmospheric Science
CiteScore
9.80
自引率
4.10%
发文量
424
审稿时长
107 days
期刊介绍: Advances in Climate Change Research publishes scientific research and analyses on climate change and the interactions of climate change with society. This journal encompasses basic science and economic, social, and policy research, including studies on mitigation and adaptation to climate change. Advances in Climate Change Research attempts to promote research in climate change and provide an impetus for the application of research achievements in numerous aspects, such as socioeconomic sustainable development, responses to the adaptation and mitigation of climate change, diplomatic negotiations of climate and environment policies, and the protection and exploitation of natural resources.
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