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Promising Oldest Ice sites in East Antarctica based on thermodynamical modelling

机译:基于热力学模型的南极东部最古老的冰场

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To resolve the mechanisms behind the major climate reorganisation, which occurred between 0.9 and 1.2?Ma, the recovery of a suitable 1.5 million-year-old ice core is fundamental. The quest for an Oldest Ice core requires a number of key boundary conditions, of which the poorly known basal geothermal heat flux (GHF) is lacking. We use a transient thermodynamical 1-D vertical model that solves for the rate of change of temperature in the vertical, with surface temperature and modelled GHF as boundary conditions. For each point on the ice sheet, the model is forced with variations in atmospheric conditions over the last 2?Ma and modelled ice-thickness variations. The process is repeated for a range of GHF values to determine the value of GHF that marks the limit between frozen and melting conditions over the whole ice sheet, taking into account 2?Ma of climate history. These threshold values of GHF are statistically compared to existing GHF data sets. The new probabilistic GHF fields obtained for the ice sheet thus provide the missing boundary conditions in the search for Oldest Ice. High spatial resolution radar data are examined locally in the Dome Fuji and Dome C regions, as these represent the ice core community's primary drilling sites. GHF, bedrock variability, ice thickness and other essential criteria combined highlight a dozen major potential Oldest Ice sites in the vicinity of Dome Fuji and Dome C, where GHF could allow for Oldest Ice.
机译:为了解决发生在0.9至1.2?Ma之间的重大气候重组背后的机制,恢复合适的150万年历史的冰芯至关重要。寻求最古老的冰芯需要许多关键的边界条件,而这些条件还缺乏广为人知的基础地热通量(GHF)。我们使用瞬态热力学一维垂直模型,以表面温度和模型化的GHF为边界条件来求解垂直方向的温度变化率。对于冰盖上的每个点,该模型都将受到最后2?Ma大气条件的变化以及模拟的冰层厚度变化的强迫。对整个GHF值范围重复此过程,以确定GHF值,该值标志着整个冰原上冻结和融化条件之间的界限,并考虑了2?Ma的气候历史。将GHF的这些阈值与现有GHF数据集进行统计比较。因此,为冰原获得的新概率GHF场为寻找最古老的冰提供了缺少的边界条件。在富士巨蛋和巨蛋C地区对高空间分辨率雷达数据进行了本地检查,因为它们代表了冰芯社区的主要钻探地点。 GHF,基岩变异性,冰厚和其他基本标准共同突出了Dome Fuji和Dome C附近的十二个潜在的最古老的冰场,GHF可以在其中找到最古老的冰。

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