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Modeling of Biomass Acquisition and Partitioning in the Architecture of Sunflower

机译:向日葵建筑中的生物质采集与分区的建模

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A mathematical sunflower growth model is presented that simulates interactions between plant structure and function. Dual-scale automaton is used to simulate plant organogenesis from germination to maturity on the basis of organogenetic growth cycles that have constant thermal time. Plant fresh biomass production is computed from transpiration, assuming transpiration efficiency to be constant and atmospheric demand to be the driving force, under non-limiting water supply. The fresh biomass is then distributed among expanding organs according to their relative demand. Demand for organ growth is estimated from kinetics of potential growth rate for each organ type. These are obtained through parameter optimization against an empirical, morphological data sets by running the model in inverted mode. Potential growth rates are then used as estimates of sink strength in the model. These and other "hidden" plant parameters are calibrated using the nonlinear, least squares method. The resulting model accurately simulated the dynamics of plant growth, architecture and geometry, enabling 3D visualization. The potential of the model's underlying concepts to simulate the plant's morphological plasticity in different resource situations is discussed.
机译:提出了一种数学向日葵生长模型模拟植物的结构和功能之间的交互。双尺度自动被用于从发芽植物模拟器官成熟的具有恒定的热时间organogenetic生长周期的基础上。植物鲜生物量生产从蒸腾计算,假设蒸腾效率是恒定的和大气需求成为驱动力,在非限制性的供水。新鲜的生物质是根据其相对需求扩大器官中再分。对于器官生长需求从潜在增长率为每个器官类型的动力学估计。这些通过参数优化针对经验,形态数据集通过运行在倒置模式中的模型获得。那么潜在增长率被用作模型库强度的估计。这些和其它的“隐藏的”植物参数是使用非线性,最小二乘法校准。将得到的模型精确地模拟植物的生长,结构和几何形状的动态,实现3D可视化。该模型的基本概念,模拟植物的形态可塑性在不同的资源情况的可能性进行了讨论。

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