通过动态根模型改进美国大陆陆地-大气相互作用的表示

IF 4.4 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Zhao Yang, Guo-Yue Niu, Yun Qian, Larry K. Berg, Jerome Fast, Colleen M. Kaul, Jingyi Chen, Koichi Sakaguchi, Sheng-Lun Tai, Brian Gaudet, Ye Liu, Heng Xiao
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引用次数: 0

摘要

以往的研究已经发现,根系表示过于简化是导致植被-大气反馈不准确的关键因素。本研究将Noah-MP陆面模式中的动态根系吸水方案与气象研究与预报(WRF)模式耦合,研究其对地表水文气候变量和陆-气相互作用的影响。为了评估动态根系的影响,进行了两个耦合模拟,一个是动态根系吸水方案(DynRt),另一个是静态根系吸水方案(StcRt),静态根系吸水方案基于Noah-MP中默认的根系表示,主要是在植被相关参数上进行了轻微修改。DynRt和StcRt模拟都是在三个成员的小集合中进行的,以解释物理参数化、初始强迫和边界强迫以及模型设置的变化。与参考数据集相比,DynRt模拟结果优于StcRt模拟,减少了模拟叶面积指数、地表能通量、土壤湿度和降水的偏差。已经确定了根系影响陆地-大气耦合的两种不同机制。在干湿气候过渡区,动态根系方案主要通过植物根系水力再分配的土壤水分变化来影响地表气候和陆-气耦合。在能量限制的中间带上,动态根系主要通过碳分配的变化影响区域陆气耦合。这项工作强调了动态根表示通过增强水、能量和碳通量的预测来改善植被-大气模拟的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Improved Representations of Land-Atmosphere Interactions Over the Continental U.S. Through Dynamic Root Modeling

Improved Representations of Land-Atmosphere Interactions Over the Continental U.S. Through Dynamic Root Modeling

Previous studies have identified the oversimplified root system representation as a key factor leading to inaccuracies in vegetation-atmosphere feedbacks. In this study, a dynamic root water uptake scheme in the Noah-MP land surface model has been coupled to the Weather Research and Forecasting (WRF) model to investigate its impact on the surface hydroclimate variables and land-atmosphere interactions. To evaluate the impact of the dynamic root, two coupled simulations were conducted, one with the dynamic root water uptake scheme (DynRt) and one with the static root water uptake scheme (StcRt), which is based on the default root representation in Noah-MP, with slight modifications, primarily in vegetation-related parameters. Both DynRt and StcRt simulations were conducted with a small ensemble of three members to account for variations in physical parameterizations, initial and boundary forcing and model setup. When compared with reference data sets, the DynRt simulations show improved results than the StcRt simulations, reducing biases in the simulated leaf area index, surface energy fluxes, soil moisture and precipitation. Two different mechanisms through which roots affect land-atmosphere coupling have been identified. Over the transitional climate zone between the dry and wet climate, the dynamic root scheme affects surface climate and land-atmosphere coupling mainly through changes in soil moisture through hydraulic redistribution by plant root system. Over the energy-limited mesic zone, the dynamic root affects regional land-atmosphere coupling mainly through changes in carbon allocation. This work highlights the importance of dynamic root representation in improving vegetation-atmosphere simulations by enhancing predictions of water, energy, and carbon fluxes.

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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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