通过可互操作的模型-物理耦合框架,在陆表模型中实现先进的雪地物理功能

IF 4.4 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of Advances in Modeling Earth Systems Pub Date : 2024-04-23 DOI:10.1029/2022MS003236
Mahdi Navari, Sujay Kumar, Shugong Wang, James Geiger, David M. Mocko, Kristi R. Arsenault, Eric M. Kemp
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引用次数: 0

摘要

准确估算积雪和融雪是以雪为主的流域决策的关键部分。在本研究中,我们展示了一种灵活的方法,将详细的积雪模型 Crocus 分别与两种不同的地表模型(LSM)Noah-MP 和 Noah 相耦合。原始 LSM 和耦合模型(Noah-MP-Crocus 和 Noah-Crocus)用于模拟雪深、雪水当量以及其他水和能量状态和通量。模拟结果与各种独立的网格和点尺度参考数据集进行了比较。结果表明,与独立观测数据相比,将详细的积雪模型 Crocus 与 LSM 相结合可改善雪深和雪水当量。总体而言,将 Crocus 与 Noah LSM 相结合可获得更大的改进,相对于雪地数据同化系统(SNODAS)和亚利桑那大学的雪地产品,Noah-Crocus 耦合配置可将积雪深度的均方根误差和偏差分别从 2% 降低到 12%,从 57% 降低到 75%。另一方面,将 Crocus 与 Noah-MP 相结合所获得的改进较小。耦合 Noah-MP-Crocus 降低了雪深偏差,但略微降低了雪深和雪水当量的均方根误差。然而,对其他水预算项(如蒸散、土壤水分和溪流)的相应影响则好坏参半,这表明亟需改进陆地模式中这些过程的耦合假设。总之,这里展示的互操作耦合框架为纳入更详细的雪物理和过程提供了机会,并通过改进对雪地遥感仪器信息的利用来推进数据同化系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Enabling Advanced Snow Physics Within Land Surface Models Through an Interoperable Model-Physics Coupling Framework

Accurate estimation of snow accumulation and melt is a critical part of decision-making in snow-dominated watersheds. In this study, we demonstrate a flexible methodology to couple a detailed snow model, Crocus, separately to two different land surface models (LSMs), Noah-MP and Noah. The original LSMs and the coupled models (Noah-MP-Crocus and Noah-Crocus) are used to simulate snow depth, snow water equivalent, and other water and energy states and fluxes. The results of simulations are compared against a wide range of independent gridded and point scale reference data sets. Our results show that coupling the detailed snow model, Crocus, with the LSMs improves the snow depth and snow water equivalent relative to independent observations. Overall, larger improvements are obtained with coupling Crocus to the Noah LSM, with the coupled Noah-Crocus configuration reducing the RMSE and bias of snow depth from 2% to 12% and 57% to 75%, respectively, relative to Snow Data Assimilation System (SNODAS) and snow product from the University of Arizona. On the other hand, smaller improvements are obtained by coupling Crocus with Noah-MP. The Coupled Noah-MP-Crocus reduces the snow depth bias but slightly degrades the RMSE of snow depth and snow water equivalent. The corresponding impacts in other water budget terms such as evapotranspiration, soil moisture, and streamflow, however, are mixed, pointing to the significant need to improve the coupling assumptions of these processes within land models. Overall, the interoperable coupling framework demonstrated here offers the opportunity to include more detailed snow physics and processes, and to advance data assimilation systems through improved exploitation of information from snow remote sensing instruments.

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来源期刊
Journal of Advances in Modeling Earth Systems
Journal of Advances in Modeling Earth Systems METEOROLOGY & ATMOSPHERIC SCIENCES-
CiteScore
11.40
自引率
11.80%
发文量
241
审稿时长
>12 weeks
期刊介绍: The Journal of Advances in Modeling Earth Systems (JAMES) is committed to advancing the science of Earth systems modeling by offering high-quality scientific research through online availability and open access licensing. JAMES invites authors and readers from the international Earth systems modeling community. Open access. Articles are available free of charge for everyone with Internet access to view and download. Formal peer review. Supplemental material, such as code samples, images, and visualizations, is published at no additional charge. No additional charge for color figures. Modest page charges to cover production costs. Articles published in high-quality full text PDF, HTML, and XML. Internal and external reference linking, DOI registration, and forward linking via CrossRef.
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