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A dynamic model of xylem and phloem flux in an apple branch

机译:苹果枝木质部和韧皮部通量的动态模型

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We present here the framework for a Functional-structural plant model (FSPM) of the water and sugar transport in an apple (Malus domestica (L.) Bartsch.) branch. The model is parameterized at the spatial level of the organ (leaf blade, leaf petiole; internode; fruit, and fruit peduncle), explicitly describing water and sugar flows between all possible organ combinations. In order to do so, an object-oriented representation of each organ was introduced, containing the functional description of xylem and phloem elements within the respective organs, and between each organ pair, using the dedicated modelling platform GroIMP. The geometry and topology of the branch and its elements were based on measurements of `Fuji' cv. apple trees, located in an experimental orchard in Angers, France, whereas the coefficients of the transport model system were derived from the literature. Branch architecture is an input to the model therefore not supposed to change during the simulated period (June to September). First results are promising: 1) a fully functional, quantitative simulation of water flux based on biophysical principles (leaf transpiration coupled to photosynthesis rate and stomatal conductance) is driving the water transport from the base of the branch to the peripheral organs (leaves) according to the Darcy flow principle. At the same time sugars are transported from sources (leaves) to sinks (fruits) based on Münch flow in the phloem. Such a simulation is possible in real time (temporal resolution one second); 2) even for extreme situations the network of xylem and phloem with its numerous interconnections shows reasonable and stable behaviour.
机译:我们在这里介绍了苹果(Malus domestica(L.)Bartsch。)分支机构中水和糖运输的功能结构植物模型(FSPM)的框架。在器官的空间级别(叶片,叶柄,节间,果实和果实的花梗)对模型进行参数化,以明确描述所有可能的器官组合之间的水和糖流动。为此,使用专用的建模平台GroIMP,引入了每个器官的面向对象表示,其中包含各个器官内以及每个器官对之间木质部和韧皮部元素的功能描述。分支及其元素的几何结构和拓扑基于“ Fuji”简历的测量结果。苹果树,位于法国昂热的一个实验果园中,而运输模型系统的系数是从文献中得出的。分支体系结构是模型的输入,因此在模拟期间(6月至9月)不应更改。初步结果令人鼓舞:1)基于生物物理原理(叶蒸腾与光合作用和气孔导度相结合)的功能全面,定量的水通量驱动着水从分支的根部向周围器官(叶)的运输。达西流原理。同时,根据韧皮部中的Münch流量,糖从来源(叶)运输到汇(水果)。这样的模拟是实时的(时间分辨率为一秒钟)。 2)即使在极端情况下,木质部和韧皮部的网络及其众多的互连关系也显示出合理而稳定的行为。

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