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Permafrost Sub-grid Heterogeneity of Soil Properties Key for 3-D Soil Processes and Future Climate Projections

机译:土壤性质的多年冻土亚网格异质性是3D土壤过程和未来气候预测的关键

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There are massive carbon stocks stored in permafrost-affected soils due to the 3-D soil movement process called cryoturbation. For a reliable projection of the past, recent and future Arctic carbon balance, and hence climate, a reliable concept for representing cryoturbation in a land surface model (LSM) is required. The basis of the underlying transport processes is pedon-scale heterogeneity of soil hydrological and thermal properties as well as insulating layers, such as snow and vegetation. Today we still lack a concept of how to reliably represent pedon-scale properties and processes in a LSM. One possibility could be a statistical approach. This perspective paper demonstrates the importance of sub-grid heterogeneity in permafrost soils as a pre-requisite to implement any lateral transport parametrization. Representing such heterogeneity at the sub-pixel size of a LSM is the next logical step of model advancements. As a result of a theoretical experiment, heterogeneity of thermal and hydrological soil properties alone lead to a remarkable initial sub-grid range of subsoil temperature of 2 deg C, and active-layer thickness of 150 cm in East Siberia. These results show the way forward in representing combined lateral and vertical transport of water and soil in LSMs.
机译:由于称为冷冻扰动的3-D土壤运动过程,在受永久冻土影响的土壤中储存了大量碳储量。为了可靠地预测过去,现在和将来的北极碳平衡,从而得出气候,需要一个可靠的概念来表示陆面模型(LSM)中的低温扰动。潜在的运输过程的基础是土壤水文和热学特性以及绝热层(如雪和植被)的足尺尺度异质性。今天,我们仍然缺乏如何可靠地表示LSM中的脚尺级特性和过程的概念。一种可能是统计方法。该观点文件证明了永久冻土中亚网格非均质性的重要性,这是实现任何横向运输参数化的前提。用LSM的子像素大小表示这种异质性是模型改进的下一个逻辑步骤。理论实验的结果是,仅热土和水文土壤性质的异质性就导致东西伯利亚地下土壤温度的初始子网格范围达到2摄氏度,活跃层厚度达到150厘米。这些结果显示了代表LSMs中水和土壤的横向和纵向联合运移的前进方向。

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