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A modeling approach to determine the importance of dynamicregulation of plant hydraulic conductivities on the water uptakedynamics in the soil-plant-atmosphere system

机译:确定植物水力传导率动态调节对土壤-植物-大气系统中水分吸收动力学重要性的建模方法

摘要

tWe present here a new model, PlaNet-Maize, with the purpose of investigating the effect of environmentaland endogenous factors on the growth and water relations of the maize plant. This functional–structuralplant model (FSPM) encompasses the entire soil-plant-atmosphere continuum with a sub-organ resolu-tion. The model simulates the growth and development of an individual maize plant and the flux of waterthrough the plant structure, from the rhizosphere to the leaf boundary layer. Leaf stomatal conductanceand root radial and axial conductivities are considered as functions of local water potential. Finally, asimple carbon allocation rule is included in the model to allow the feedback effect of water deficit onplant growth. The model was successfully used to reproduce experimental plant hydraulic behavior inresponse to water deficit. The quantitative contribution of leaf conductance and root conductivities wereassessed individually and in combination.Our results highlight the importance of regulating hydraulic properties in FSPM as these can stronglymodify the water uptake dynamics and lead to emerging water uptake behaviors. The modeling resultsalso indicate that plant hydraulic properties can theoretically be tailored to improve plant water use inchallenging environments.
机译:我们在这里提出一个新模型PlaNet-玉米,目的是研究环境和内源因素对玉米植物生长和水关系的影响。这种功能-结构-植物模型(FSPM)涵盖了整个土壤-植物-大气连续体以及亚器官的分解。该模型模拟单个玉米植物的生长和发育,以及从根际到叶边界层的水分通过植物结构的通量。叶片气孔电导率和根的径向和轴向电导率被认为是局部水势的函数。最后,模型中包括了asimple碳分配规则,以允许水分亏缺对植物生长的反馈作用。该模型已成功地用于重现对缺水的实验性植物水力行为。叶片电导率和根系电导率的定量贡献是单独评估或组合评估的。我们的结果突出了调节FSPM中水力特性的重要性,因为它们可以强烈改变吸水动力学并导致新出现的吸水行为。建模结果还表明,理论上可以对植物的水力特性进行调整,以改善植物水分利用环境。

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