末次冰川盛期全球海洋状态的动力学重建

T. Kurahashi‐Nakamura, A. Paul, M. Losch
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引用次数: 49

摘要

利用复杂的数据同化技术动态重建了现代和最后一次冰川盛期(LGM)的全球海洋状态。在伴随方法的帮助下,将包括全球海水温度、盐度(仅用于现代估计)和氧和碳同位素组成(仅在大西洋用于LGM)在内的大量数据整合到海洋环流模型中,从而对该模型进行了优化,以重建可信的连续示踪剂场,翻转循环和水量分布。本研究的基于伴随的LGM状态估计在正向模型运行的长度、同化的观测值数量和模型域方面代表了最先进的状态。与现代状态相比,重建的LGM连续海面温度场显示出2.2K的全球平均冷却,重建的LGAM海洋具有更强烈的大西洋经向翻转环流、更浅的北大西洋深水(NADW)当量、更强的分层和更多的盐水深水。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamical reconstruction of the global ocean state during the Last Glacial Maximum
The global ocean state for the modern age and for the Last Glacial Maximum (LGM) was dynamically reconstructed with a sophisticated data assimilation technique. A substantial amount of data including global seawater temperature, salinity (only for the modern estimate), and the isotopic composition of oxygen and carbon (only in the Atlantic for the LGM) were integrated into an ocean general circulation model with the help of the adjoint method, thereby the model was optimized to reconstruct plausible continuous fields of tracers, overturning circulation and water mass distribution. The adjoint-based LGM state estimation of this study represents the state of the art in terms of the length of forward model runs, the number of observations assimilated, and the model domain. Compared to the modern state, the reconstructed continuous sea-surface temperature field for the LGM shows a global-mean cooling of 2.2 K, and the reconstructed LGM ocean has a more vigorous Atlantic meridional overturning circulation, shallower North Atlantic Deep Water (NADW) equivalent, stronger stratification, and more saline deep water.
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来源期刊
Paleoceanography
Paleoceanography 地学-地球科学综合
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