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Impact of plant shoot architecture on leaf cooling: a coupled heat and mass transfer model

机译:植物芽结构对叶片冷却的影响:传热传质耦合模型

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摘要

Plants display a range of striking architectural adaptations when grown at elevated temperatures. In the model plant Arabidopsis thaliana, these include elongation of petioles, and increased petiole and leaf angles from the soil surface. The potential physiological significance of these architectural changes remains speculative. We address this issue computationally by formulating a mathematical model and performing numerical simulations, testing the hypothesis that elongated and elevated plant configurations may reflect a leaf-cooling strategy. This sets in place a new basic model of plant water use and interaction with the surrounding air, which couples heat and mass transfer within a plant to water vapour diffusion in the air, using a transpiration term that depends on saturation, temperature and vapour concentration. A two-dimensional, multi-petiole shoot geometry is considered, with added leaf-blade shape detail. Our simulations show that increased petiole length and angle generally result in enhanced transpiration rates and reduced leaf temperatures in well-watered conditions. Furthermore, our computations also reveal plant configurations for which elongation may result in decreased transpiration rate owing to decreased leaf liquid saturation. We offer further qualitative and quantitative insights into the role of architectural parameters as key determinants of leaf-cooling capacity.
机译:在高温下生长时,植物会表现出一系列惊人的建筑适应性。在示范植物拟南芥中,这些包括叶柄的伸长,以及从土壤表面到叶柄和叶的角度增加。这些结构变化的潜在生理意义仍然是推测性的。我们通过公式化数学模型并进行数值模拟,测试假设:伸长和升高的植物构型可能反映叶片冷却策略,以计算方式解决此问题。这为植物用水和与周围空气的相互作用建立了新的基本模型,该模型使用取决于饱和度,温度和蒸汽浓度的蒸腾项,将植物内的热量和质量传递与空气中的水蒸气扩散耦合。考虑了二维,多叶芽的几何形状,并增加了叶片形状的细节。我们的模拟表明,在浇水良好的条件下,增加叶柄的长度和角度通常会提高蒸腾速率并降低叶片温度。此外,我们的计算还揭示了由于叶液饱和度降低而导致伸长可能导致蒸腾速率降低的植物构型。我们提供了关于建筑参数作为叶片冷却能力关键决定因素的作用的定性和定量分析。

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