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DOI | 10.5194/tc-13-2935-2019 |
New Last Glacial Maximum ice thickness constraints for the Weddell Sea Embayment, Antarctica | |
Nichols K.A.; Goehring B.M.; Balco G.; Johnson J.S.; Hein A.S.; Todd C. | |
发表日期 | 2019 |
ISSN | 19940416 |
EISSN | 13 |
起始页码 | 2935 |
结束页码 | 2951 |
卷号 | 13期号:11 |
英文摘要 | We describe new Last Glacial Maximum (LGM) ice thickness constraints for three locations spanning the Weddell Sea Embayment (WSE) of Antarctica. Samples collected from the Shackleton Range, Pensacola Mountains, and the Lassiter Coast constrain the LGM thickness of the Slessor Glacier, Foundation Ice Stream, and grounded ice proximal to the modern Ronne Ice Shelf edge on the Antarctic Peninsula, respectively. Previous attempts to reconstruct LGM-to-present ice thickness changes around the WSE used measurements of long-lived cosmogenic nuclides, primarily 10Be. An absence of post-LGM apparent exposure ages at many sites led to LGM thickness reconstructions that were spatially highly variable and inconsistent with flow line modelling. Estimates for the contribution of the ice sheet occupying the WSE at the LGM to global sea level since deglaciation vary by an order of magnitude, from 1.4 to 14.1 m of sea level equivalent. Here we use a short-lived cosmogenic nuclide, in situ-produced 14C, which is less susceptible to inheritance problems than 10Be and other long-lived nuclides. We use in situ 14C to evaluate the possibility that sites with no post-LGM exposure ages are biased by cosmogenic nuclide inheritance due to surface preservation by cold-based ice and non-deposition of LGM-aged drift. Our measurements show that the Slessor Glacier was between 310 and up to 655 m thicker than present at the LGM. The Foundation Ice Stream was at least 800 m thicker, and ice on the Lassiter Coast was at least 385 m thicker than present at the LGM. With evidence for LGM thickening at all of our study sites, our in situ 14C measurements indicate that the long-lived nuclide measurements of previous studies were influenced by cosmogenic nuclide inheritance. Our inferred LGM configuration, which is primarily based on minimum ice thickness constraints and thus does not constrain an upper limit, indicates a relatively modest contribution to sea level rise since the LGM of < 4.6 m, and possibly as little as < 1.5 m. . © Author(s) 2019. |
学科领域 | cosmogenic radionuclide; deglaciation; ice sheet; ice thickness; Last Glacial Maximum; sea level change; Antarctica; East Antarctica; Pensacola Mountains; Ronne Ice Shelf; Shackleton Range; Southern Ocean; Weddell Sea; West Antarctica |
语种 | 英语 |
scopus关键词 | cosmogenic radionuclide; deglaciation; ice sheet; ice thickness; Last Glacial Maximum; sea level change; Antarctica; East Antarctica; Pensacola Mountains; Ronne Ice Shelf; Shackleton Range; Southern Ocean; Weddell Sea; West Antarctica |
来源期刊 | The Cryosphere
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文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/118812 |
作者单位 | Department of Earth and Environmental Sciences, Tulane University, New Orleans, LA 70118, United States; Berkeley Geochronology Center, 2455 Ridge Road, Berkeley, CA 94709, United States; British Antarctic Survey, Natural Environment Research Council, High Cross, Madingley Road, Cambridge, CB3 0ET, United Kingdom; School of GeoSciences, University of Edinburgh, Drummund Street, Edinburgh, EH8 9XP, United Kingdom; Department of Geosciences, Pacific Lutheran University, Tacoma, WA 98447, United States |
推荐引用方式 GB/T 7714 | Nichols K.A.,Goehring B.M.,Balco G.,et al. New Last Glacial Maximum ice thickness constraints for the Weddell Sea Embayment, Antarctica[J],2019,13(11). |
APA | Nichols K.A.,Goehring B.M.,Balco G.,Johnson J.S.,Hein A.S.,&Todd C..(2019).New Last Glacial Maximum ice thickness constraints for the Weddell Sea Embayment, Antarctica.The Cryosphere,13(11). |
MLA | Nichols K.A.,et al."New Last Glacial Maximum ice thickness constraints for the Weddell Sea Embayment, Antarctica".The Cryosphere 13.11(2019). |
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