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首页> 外文期刊>Geoscientific Model Development >LCice 1.0 – a generalized Ice Sheet System Model coupler for LOVECLIM version 1.3: description, sensitivities, and validation with the Glacial Systems Model (GSM version D2017.aug17)
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LCice 1.0 – a generalized Ice Sheet System Model coupler for LOVECLIM version 1.3: description, sensitivities, and validation with the Glacial Systems Model (GSM version D2017.aug17)

机译:LCICE 1.0 - Loveclim版本1.3的广义冰盖系统模型耦合器:使用冰川系统模型的描述,敏感度和验证(GSM版D2017.Aug17)

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摘要

We have coupled an Earth system model of intermediate complexity (LOVECLIM) to the Glacial Systems Model (GSM) using the LCice 1.0 coupler. The coupling scheme is flexible enough to enable asynchronous coupling between any glacial cycle ice sheet model and (with some code work) any Earth system model of intermediate complexity (EMIC). This coupling includes a number of interactions between ice sheets and climate that are often neglected: dynamic meltwater runoff routing, novel downscaling for precipitation that corrects orographic forcing to the higher resolution ice sheet grid ( advective precipitation ), dynamic vertical temperature gradient, and ocean temperatures for sub-shelf melt. The sensitivity of the coupled model with respect to the selected parameterizations and coupling schemes is investigated. Each new coupling feature is shown to have a significant impact on ice sheet evolution. An ensemble of runs is used to explore the behaviour of the coupled model over a set of 2000 parameter vectors using present-day (PD) initial and boundary conditions. The ensemble of coupled model runs is compared against PD reanalysis data for atmosphere (2 m temperature, precipitation, jet stream, and Rossby number of jet), ocean (sea ice and Atlantic Meridional Overturning Circulation – AMOC), and Northern Hemisphere ice sheet thickness and extent. The parameter vectors are then narrowed by rejecting model runs (1700 CE to present) with regional land ice volume changes beyond an acceptance range. The selected subset forms the basis for ongoing work to explore the spatial–temporal phase space of the last two glacial cycles.
机译:我们已经使用LCICE 1.0耦合器耦合到冰川系统模型(GSM)的中间复杂度(LoveClim)的地球系统模型。耦合方案足够灵活,以在任何冰川循环冰片模型和(有一些代码工作)之间的任何地球系统模型(EMIC)之间启用异步耦合。该耦合包括冰板和气候之间经常被忽视的许多相互作用:动态熔融径流路由,沉淀的新颖级尺寸校正地表迫使较高分辨率的冰盖网格(平流沉淀),动态垂直温度梯度和海洋温度用于子架子熔体。研究了耦合模型关于所选择的参数化和耦合方案的敏感性。每个新的耦合功能都显示对冰纸进化产生重大影响。运行的集合用于探讨使用当天(PD)初始和边界条件的一组2000个参数向量耦合模型的行为。将耦合模型运行的集合与大气(2米温度,降水,喷射流和喷射率的升降),海洋(海冰和大西洋经络循环 - Amoc)进行比较,以及北半球冰盖厚度的PD再分析数据和范围。然后通过拒绝模型运行(1700 CE至呈现),利用区域陆冰量的变化来缩小参数向量。所选子集构成持续工作的基础,以探索最后两个冰川周期的空间阶段空间。

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