这是探索南极洲过去的途径

IF 1.6 Q3 GEOSCIENCES, MULTIDISCIPLINARY Scientific Drilling Pub Date : 2014-12-22 DOI:10.5194/SD-18-11-2014
J. Wellner
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引用次数: 0

摘要

54名与会者参加了南极地质钻探研讨会,讨论科学目标和制定重点项目。美国国家科学基金会赞助的AGDW的目标是专门讨论美国科学家对南极和南大洋项目的兴趣,促进南极地球科学社区内部的互动,并讨论最优先的科学问题和技术要求,以推进突出的科学目标。南极洲有着厚厚的冰川覆盖层和漂浮的海洋浮冰带,为解开地球最后边疆之一的历史提供了挑战。在气候和冰盖变化时期形成的岩石沉积在南极洲及其周围,通过各种创新的地质钻探方法可以到达。通过钻探回收岩石扩大了对控制和响应南极冰冻圈的地球动态过程相互作用的理解。我们对过去气候变化的大部分知识,以及推断出的冰盖历史,都是从在低纬度环境中采集的岩心中获得的。这种远场代理提供了冰盖行为的轮廓,但不能显示冰盖的哪一部分发生了变化,也不能显示在近冰环境下洋流、温度或其他控制参数的变化。在南极洲钻探可以获得直接受冰川作用影响的岩石样本,并为了解南极洲冰雪覆盖的地质提供了途径。有限的露头、短的重力岩心和部分恢复的钻孔岩心已经在许多地方进行了研究,但这些记录不能提供确定冰盖变化的时间和速率或控制这种行为的边界条件所需的连续时间记录。需要空间分布的记录,包括从陆上到远端记录的每个主要冰流域的样带,来解决每个地区的个别历史。连接钻井点的地震数据可以通过扩展更大区域的细节和收紧每个地点的时间限制来增加单个地点的影响。通过像Vibroseis这样的系统获取新的冰上地震数据将确定新的冰下钻探目标。对基岩取样和测量冰下条件的新方法将有助于改善基底床边界条件,这对重建冰原行为至关重要。数值模拟可以验证数据驱动的假设,并评估不同大气边界条件下的强迫机制。在讲习班讨论中,有两个一般性主题成为最高优先事项。一个是在晚第四纪间冰期,当时地球和海洋的条件与今天相似,冰向陆地退缩到现在的位置。另一个重点是研究中新生代冰原的历史,当时大气中二氧化碳含量高的边界条件接近下个世纪的估计,但地球和海洋的条件与今天不同。结合这两个时间间隔内的冰盖行为记录,以及这两组在我们未来将会趋同的条件,将产生促进计算机模拟发展所需的信息,用于研究南极洲冰盖近期的未来行为。报告全文可在http://agdw.uh.edu/查阅。
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A way forward to discover Antarctica's past
Fifty-four participants attended the Antarctic Geologic Drilling Workshop (AGDW) to discuss science objectives and develop key projects. The goal of the NSF-sponsored AGDW was specifically to discuss the interests of US-based scientists in Antarctic and Southern Ocean projects, foster interactions within the Antarctic geoscience community, and discuss top-priority scientific questions and technological requirements to advance outstanding scientific goals. Antarctica, with its thick shroud of glacial ice and fringed belt of floating oceanic ice, offers challenges to unraveling the history of one of Earth’s last frontiers. Rocks deposited in and around Antarctica, reachable through a wide-range of innovative geological drilling approaches, formed during times that witnessed climate and ice-sheet changes. Recovery of rocks through drilling expands the understanding of the interplay of Earth’s dynamic processes that control and respond to the Antarctic cryosphere. Much of our knowledge of past climate changes, and inferred ice-sheet history, has been obtained from drill cores taken in low-latitude settings. Such far-field proxies offer an outline of ice-sheet behavior, but cannot show which part of the ice sheet changed or what the ocean currents, temperatures, or other controlling parameters were in ice-proximal settings. Drilling in Antarctica can yield samples of rock that were influenced directly by glacial processes and which provide access to Antarctica’s ice-covered geology. Limited outcrops, short gravity cores, and drill cores with partial recovery have been studied from many locations, but such records cannot give the continuous temporal record needed to determine the timing and rates of ice-sheet change or boundary conditions controlling that behavior. Spatially distributed records, including transects from onshore to distal records from each major ice drainage basin, are needed to resolve the individual histories of each area. Seismic data linking drill sites can increase the impact of individual sites by extending the details over a broader area and tightening the time constraints at each site. New over-ice seismic data acquisition through systems like Vibroseis will identify new subglacial drilling targets. New methods to sample bedrock and measure conditions beneath the ice will help refine basal-bed boundary conditions that are vital to reconstructions of icesheet behavior. Numerical modeling can test data-driven hypotheses and evaluate forcing mechanisms under different atmospheric boundary conditions. Within the workshop discussions, two general themes rose to highest priority. One is on late Quaternary interglacials, when Earth and ocean conditions were similar to today and ice retreated landward of its current position. The other priority is the study of mid-Cenozoic ice-sheet history during times when boundary conditions of high atmospheric CO2 approached those estimated for the next century, but when Earth and ocean conditions were different from today. Combining records of ice-sheet behavior during these two time intervals and these two sets of conditions that are converging in our future will yield information needed to advance the development of computer simulations for studies of near-term future behavior of Antarctica’s ice sheets. The full report is available at http://agdw.uh.edu/.
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来源期刊
Scientific Drilling
Scientific Drilling GEOSCIENCES, MULTIDISCIPLINARY-
CiteScore
2.50
自引率
0.00%
发文量
12
审稿时长
27 weeks
期刊最新文献
Drilling into a deep buried valley (ICDP DOVE): a 252 m long sediment succession from a glacial overdeepening in northwestern Switzerland Coring tools have an effect on lithification and physical properties of marine carbonate sediments Initial results of coring at Prees, Cheshire Basin, UK (ICDP JET project): towards an integrated stratigraphy, timescale, and Earth system understanding for the Early Jurassic Workshop on drilling the Nicaraguan lakes: bridging continents and oceans (NICA-BRIDGE) Poor Man's Line Scan – a simple tool for the acquisition of high-resolution, undistorted drill core photos
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