Accelerated retreat of northern James Ross Island ice streams (Antarctic Peninsula) in the Early-Middle Holocene induced by buoyancy response to postglacial sea level rise

IF 4.8 1区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS Earth and Planetary Science Letters Pub Date : 2024-06-25 DOI:10.1016/j.epsl.2024.118803
Matěj Roman , Daniel Nývlt , Bethan J. Davies , Régis Braucher , Stephen J.A. Jennings , Michal Břežný , Neil F. Glasser , Michael J. Hambrey , Juan M. Lirio , Ángel Rodés , ASTER Team
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Abstract

The knowledge of dynamics and retreat patterns of marine-based ice streams under multiple stressors are of foremost importance for predicting Antarctic Ice Sheet response to climate changes. The Holocene palaeoglaciological record of former ice streams draining the northeast Antarctic Peninsula can elucidate the influences of changes in atmospheric and oceanic circulation and sea-level oscillations on the ice thinning and grounding line retreat. Here, terrestrial cosmogenic nuclide (TCN) dating of erratic boulders across the James Ross Island group sheds light on the pattern and timing of the ice recession along the two main arteries of the palaeo-ice drainage: Croft Trough and Prince Gustav Channel. The approach of using paired 10Be-26Al nuclides enabled an assessment of cosmogenic isotope inheritance and complex burial-exposure history, notably on the high-altitude volcanic mesas. The TCN ages suggest that the Prince Gustav Channel Ice Stream was thinning from at least ∼12 ka, with subsequent separation of the Antarctic Peninsula and James Ross Island ice masses by 10–8 ka. The transition from grounded ice to open marine conditions in the Croft Trough occurred rapidly at 8.6–7.2 ka, following the Early Holocene Warm Period, concomitant with eustatic and relative sea-level rise and incursions of warmer circumpolar waters. Grounding line retreat was possibly further accelerated by buoyancy response of thinning ice stream to low-gradient bed topography. The lessons of rapid deglaciation of James Ross Island palaeo-ice streams may provide analogues for recent or future intensification of pressures on Antarctic glaciers.

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冰期后海平面上升的浮力反应导致詹姆斯-罗斯岛北部冰流(南极半岛)在全新世早中期加速后退
了解海洋冰流在多重压力下的动态和消退模式,对于预测南极冰盖对气候变化的反应至关重要。排水至南极半岛东北部的前冰流的全新世古冰川学记录可以阐明大气和海洋环流变化以及海平面振荡对冰层变薄和接地线退缩的影响。在这里,对詹姆斯-罗斯岛群的不规则巨石进行的陆地宇宙成因核素(TCN)测年揭示了古冰排水系统两条大动脉沿线冰消退的模式和时间:克罗夫特槽和古斯塔夫王子海峡。使用成对的 10Be-26Al 核素的方法可以评估宇宙成因同位素的继承性和复杂的埋藏-暴露历史,特别是在高海拔火山中洲。TCN 年龄表明,古斯塔夫王子海峡冰流至少从 ∼12 ka 开始变薄,随后南极半岛和詹姆斯-罗斯岛冰块在 10-8 ka 前分离。在全新世早期暖期之后的 8.6-7.2 ka,克罗夫特槽从接地冰迅速过渡到开放的海洋条件,与此同时,海平面相对上升,更温暖的环极水域侵入。冰流变薄对低梯度海床地形的浮力反应可能进一步加速了接地线的后退。詹姆斯-罗斯岛古冰川流快速消融的教训可为南极冰川近期或未来压力的加剧提供类比。
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来源期刊
Earth and Planetary Science Letters
Earth and Planetary Science Letters 地学-地球化学与地球物理
CiteScore
10.30
自引率
5.70%
发文量
475
审稿时长
2.8 months
期刊介绍: Earth and Planetary Science Letters (EPSL) is a leading journal for researchers across the entire Earth and planetary sciences community. It publishes concise, exciting, high-impact articles ("Letters") of broad interest. Its focus is on physical and chemical processes, the evolution and general properties of the Earth and planets - from their deep interiors to their atmospheres. EPSL also includes a Frontiers section, featuring invited high-profile synthesis articles by leading experts on timely topics to bring cutting-edge research to the wider community.
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