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Land surface modeling with enhanced considerations of soil hydraulic properties and terrestrial ecosystems.

机译:土地表面建模,其中更多地考虑了土壤水力学特性和陆地生态系统。

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This thesis research consists of two separate studies. The first study presents the assessment and representation of the effects of soil macropores on the soil hydraulic properties in land surface models for more accurate simulations of soil moisture and surface hydrology. Hydraulic properties determine the soil water content and its transport in the soil. They are provided in most current climate models as empirical formulas by functions of the soil texture. Such is not realistic if the soil contains a substantial amount of macropores. A two-mode soil pore size distribution is incorporated into a land surface model and tested using an observational dataset at a tropical forest site with aggregated soils. The result showed that the existence of macropores greatly affects the estimation of hydraulic properties. Their influence can be included in land models by adding a second function to the pore-size distribution. A practical hydraulic scheme with macropore considerations was proposed given that the existing schemes are not applicable for large-scale simulations. The developed scheme was based on the physical attributes of the water in soil capillary pores and the statistics of several global soil databases. The preliminary test showed that it captures part of soil macropore hydraulic features without sacrificing the estimation accuracy of hydraulic properties of water in soil matrix.; The second study presents the development of an integrated land/ecosystem model by combining the advanced features of a biophysically based land model, the Community Land Model, and an ecosystem biochemical model. The results from tests of the integrated model at four forest sites showed that the model reasonably captures the seasonal and interannual dynamics of leaf area index and leaf nitrogen control on carbon assimilation across different environments. With being coupled to an atmospheric general circulation model (AGCM), the integrated model showed a strong ability to simulate terrestrial ecosystem carbon fluxes together with heat and water fluxes. Its simulated land surface physical variables are reasonable in both geographic distribution and temporal variation with considering the interactive vegetation parameters.
机译:本论文研究包括两个独立的研究。第一项研究提出了土壤大孔对土地表面模型中土壤水力特性的影响的评估和表示,以便更准确地模拟土壤水分和表面水文学。水力学性质决定了土壤中的水含量及其在土壤中的迁移。在当前大多数气候模型中,它们都是根据土壤质地的函数作为经验公式提供的。如果土壤中含有大量的大孔,这是不现实的。将两种模式的土壤孔径分布合并到陆地表面模型中,并在具有聚集土壤的热带森林站点中使用观测数据集进行测试。结果表明,大孔的存在极大地影响了水力性能的估算。通过在孔径分布中添加第二个函数,可以将它们的影响包括在土地模型中。考虑到现有方案不适用于大规模模拟,提出了一种考虑大孔的实用液压方案。开发的方案基于土壤毛细孔中水的物理属性和几个全球土壤数据库的统计数据。初步测试表明,该方法可以捕获部分土壤大孔隙水力特征,而不会影响土壤基质中水的水力性质的估算精度。第二项研究通过结合基于生物物理的土地模型,社区土地模型和生态系统生化模型的高级功能,提出了综合土地/生态系统模型的开发。综合模型在四个森林地点的测试结果表明,该模型合理地捕获了不同环境中叶面积指数的季节和年际动态以及叶氮控制对碳同化的控制。与大气总循环模型(AGCM)耦合后,该综合模型显示出强大的能力来模拟陆地生态系统的碳通量以及热量和水通量。考虑到交互式植被参数,其模拟的地表物理变量在地理分布和时间变化上都是合理的。

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