Impact of surface melt and ponding on ice shelf dynamics and stability
Impact of surface melt and ponding on ice shelf dynamics and stability
批准号:
NE/L005409/1
负责人:
Adrian Luckman
金额:
$64.67万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --
中文摘要
冰架环绕着南极海岸线的一半,对南极冰盖的冰排放起着根本性的控制作用。它们可以通过与海洋和大气的相互作用来增加和减少质量。从长期来看,它们的演变和对冰盖的影响受海洋控制,但气候变暖的影响可能在短期内占主导地位,为冰架突然崩溃提供条件和机制。南极半岛的大气层最近经历了最大的变化,其变暖速度比地球上任何其他地方都快。大气变暖导致表面融化和积水,这已经与南极半岛冰架的崩溃有关--2002年拉森B冰架的消失导致冰川明显且持续加速,地面冰从内部下降,以及对海平面上升的贡献。毫无疑问,气候变暖将导致更多的冰架在相当长的一段时间内受到冰点以上温度的影响。拉森B冰架的更大的南面邻居拉森C每年都会经历表面融化和积水的时期,部分地区似乎接近拉森B崩溃之前的积雪致密化水平。然而,人们对融化和积雪致密化的空间和时间模式、池塘的分布和大小以及这些因素对流动和断裂的影响知之甚少。因此,对冰盖质量平衡的关键控制还没有得到充分的理解。我们的项目将通过野外工作、遥感和数值模拟的综合方案来解决这个问题。我们将把重点放在拉森C冰架作为一个理想的例子,一个大的冰架经历了各种各样的表面融化和积水条件,这是很容易获得的实地测量。利用钻孔照相机调查和监测仪器以及地面地球物理学,我们将获得急需的关于冰柱上半部冰架密度和温度的新数据。我们将探索数百年前的冰层,以了解拉森C冰架上融化和积水的历史。为了了解过去和未来的融化和积水对冰架的影响,我们将开发一个耦合模拟,该模拟将使用区域气候模型来预测表面融化和积水,并使用冰架数值模型来测试这种融水对流动和断裂的影响。这些模型将通过我们将收集的实地工作和遥感数据进行优化。其结果将是迄今为止最准确的冰架模型,这将使我们能够充分了解融化和积水对冰架的影响,并预测拉森C冰架在下一个世纪的未来演变。
英文摘要
Ice shelves fringe around half of the Antarctic coastline and exert a fundamental control on the discharge of ice from the Antarctic ice sheets. They can gain and lose mass through interactions with both the ocean and the atmosphere. In the long term their evolution and impact on the ice sheets is controlled by the ocean, but the effect of a warming atmosphere may dominate in the shorter term by providing the conditions and mechanisms for abrupt ice shelf collapse. The atmosphere on the Antarctic Peninsula, where ice shelves have recently undergone most change, is warming faster than anywhere else on Earth.Atmospheric warming leading to surface melt and ponding has already been implicated in the collapse of ice shelves of the Antarctic Peninsula - the loss of the Larsen B ice shelf in 2002 led to significant and ongoing glacier acceleration, draw-down of grounded ice from the interior, and contribution to sea level rise. There is no doubt that climate warming will lead to more ice shelves being subject to temperatures above freezing for significant periods. The much larger southerly neighbour of the Larsen B ice shelf, Larsen C, annually experiences periods of surface melt and ponding, and appears in parts to be approaching the level of firn densification that preceded the Larsen B collapse. Very little is known, however, about the spatial and temporal pattern of melt and firn densification, the distribution and size of ponds, or the impact of these factors on flow and fracture. A key control on ice sheet mass balance is therefore inadequately understood.Our project will address this issue through a combined program of fieldwork, remote sensing and numerical modelling. We will focus on the Larsen C Ice Shelf as an ideal example of a large ice shelf experiencing a wide variety of surface melt and ponding conditions, and which is readily accessible for field measurements. Using borehole camera survey and monitoring instrumentation, and surface geophysics, we will acquire much needed new data about the density and temperature across the ice shelf in the upper half of the ice column. We will probe layers of ice going back hundreds of years to understand the history of melt and ponding on Larsen C Ice Shelf. To understand the impact on the ice shelf of past and future melt and ponding, we will develop a coupled simulation which will use a regional climate model to predict surface melt and ponding and an ice shelf numerical model to test the impact of this meltwater on flow and fracture. These models will be optimised by data from fieldwork and remote sensing that we will collect. The outcome will be the most accurate model of an ice shelf to date which will allow us fully understand impact of melt and ponding on ice shelves and to predict the future evolution of Larsen C Ice Shelf over the next century.
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An updated seabed bathymetry beneath Larsen C Ice Shelf, Antarctic Peninsula
南极半岛拉森 C 冰架下更新的海底测深
DOI:
10.5194/essd-12-887-2020
发表时间:
2020
期刊:
Earth System Science Data
影响因子:
11.4
作者:
[Brisbourne A]
通讯作者:
Brisbourne A
Melt pond formation on the Larsen C Ice Shelf, Antarctica
南极洲拉森 C 冰架上融化池的形成
DOI:
--
发表时间:
2015
期刊:
影响因子:
--
作者:
[Bevan S.]
通讯作者:
Bevan S.
DOI:
10.1017/aog.2017.1
发表时间:
2017-04
期刊:
Annals of Glaciology
影响因子:
2.9
作者:
[Michael Chester;B. Kulessa;A. Luckman;J. Bassis;P. K. Munneke]
通讯作者:
Michael Chester;B. Kulessa;A. Luckman;J. Bassis;P. K. Munneke
DOI:
10.1002/2016jf004047
发表时间:
2017-05
期刊:
Journal of Geophysical Research: Earth Surface
影响因子:
--
作者:
[D. Ashmore;B. Hubbard;A. Luckman;B. Kulessa;S. Bevan;A. Booth;P. K. Munneke;M. O’Leary;Heïdi Seve]
通讯作者:
D. Ashmore;B. Hubbard;A. Luckman;B. Kulessa;S. Bevan;A. Booth;P. K. Munneke;M. O’Leary;Heïdi Seve
2020 Larsen C Ice Shelf surface melt is a 40-year record high
2020年拉森C冰架表面融化量创40年来新高
DOI:
10.5194/tc-2020-130
发表时间:
2020
期刊:
影响因子:
--
作者:
[Bevan S]
通讯作者:
Bevan S
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