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Modeling plant transpiration under limited soil water: comparison of different plant and soil hydraulic parameterizations and preliminary implications for their use in land surface models.

机译:在有限土壤水分下模拟植物蒸腾作用:比较不同植物和土壤的水力参数设置及其在土地表面模型中的初步应用。

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Accurate estimates of how soil water stress affects plant transpiration are crucial for reliable land surface model (LSM) predictions. Current LSMs generally use a water stress factor, beta , dependent on soil moisture content, theta , that ranges linearly between beta =1 for unstressed vegetation and beta =0 when wilting point is reached. This paper explores the feasibility of replacing the current approach with equations that use soil water potential as their independent variable, or with a set of equations that involve hydraulic and chemical signaling, thereby ensuring feedbacks between the entire soil-root-xylem-leaf system. A comparison with the original linear theta -based water stress parameterization, and with its improved curvi-linear version, was conducted. Assessment of model suitability was focused on their ability to simulate the correct (as derived from experimental data) curve shape of relative transpiration versus fraction of transpirable soil water. We used model sensitivity analyses under progressive soil drying conditions, employing two commonly used approaches to calculate water retention and hydraulic conductivity curves. Furthermore, for each of these hydraulic parameterizations we used two different parameter sets, for 3 soil texture types; a total of 12 soil hydraulic permutations. Results showed that the resulting transpiration reduction functions (TRFs) varied considerably among the models. The fact that soil hydraulic conductivity played a major role in the model that involved hydraulic and chemical signaling led to unrealistic values of beta , and hence TRF, for many soil hydraulic parameter sets. However, this model is much better equipped to simulate the behavior of different plant species. Based on these findings, we only recommend implementation of this approach into LSMs if great care with choice of soil hydraulic parameters is taken.
机译:准确估算土壤水分胁迫如何影响植物蒸腾作用对于可靠的土地表面模型(LSM)预测至关重要。当前的LSM通常使用取决于土壤水分含量theta的水分胁迫因子beta,该因子线性分布在无应力植被的beta = 1和达到枯萎点的beta = 0之间。本文探讨了用以土壤水势作为其自变量的方程式或一组涉及水力和化学信号的方程式替代当前方法的可行性,从而确保整个土壤根-木质部-叶系统之间的反馈。进行了与原始的基于线性theta的水应力参数化及其改进的曲线线性模型的比较。模型适用性的评估集中在它们模拟相对蒸腾对可蒸腾的土壤水的比例的正确(从实验数据中得出)曲线形状的能力。我们在渐进的土壤干燥条件下使用模型敏感性分析,采用两种常用方法来计算保水率和水力传导率曲线。此外,对于每种水力参数化设置,我们针对3种土壤质地类型使用了两个不同的参数集。总共12个土壤水力排列。结果表明,模型之间的蒸腾作用减少函数(TRF)差异很大。在涉及水力和化学信号的模型中,土壤水力传导率起主要作用,这一事实导致许多土壤水力参数集的β值和TRF值不切实际。但是,该模型可以更好地模拟不同植物物种的行为。基于这些发现,如果在选择土壤水力参数时要格外小心,我们仅建议将此方法应用于LSM。

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