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Optimization of leaf morphology in relation to leaf water status: A theory

机译:叶水状况与叶片形态的优化:理论

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The leaf economic traits such as leaf area, maximum carbon assimilation rate, and venation are all correlated and related to water availability. Furthermore, leaves are often broad and large in humid areas and narrower in arid/semiarid and hot and cold areas. We use optimization theory to explain these patterns. We have created a constrained optimization leaf model linking leaf shape to vein structure that is integrated into coupled transpiration and carbon assimilation processes. The model maximizes net leaf carbon gain (NPPleaf) over the loss of xylem water potential. Modeled relations between leaf traits are consistent with empirically observed patterns. As the results of the leaf shape–venation relation, our model further predicts that a broadleaf has overall higher NPPleaf compared to a narrowleaf. In addition, a broadleaf has a lower stomatal resistance compared to a narrowleaf under the same level of constraint. With the same leaf area, a broadleaf will have, on average, larger conduits and lower total leaf xylem resistance and thus be more efficient in water transportation but less resistant to cavitation. By linking venation structure to leaf shape and using water potential as the constraint, our model provides a physical explanation for the general pattern of the covariance of leaf traits through the safety–efficiency trade‐off of leaf hydraulic design.
机译:叶面积,最大碳同化率和静脉等叶片经济特征均相关,与水可用性相关。此外,液体在潮湿地区通常宽阔,宽大,干旱/半干旱和冷热区域较窄。我们使用优化理论来解释这些模式。我们创建了一个受约束的优化叶片模型,将叶形与静脉结构集成在偶联蒸腾蒸腾和碳同化过程中。该模型通过损失木耳水势的净叶碳增益(NPPLEF)最大化。叶状性状之间的建模关系与经验观察的模式一致。作为叶形形状关系的结果,我们的模型进一步预测,与晶叶相比,阔叶具有更高的NPPLET。另外,与相同水平的约束下的窄叶相比,阔叶具有较低的气孔阻力。通过相同的叶面积,阔叶将平均,较大的导管和更低的总叶片哑光抗性,因此在水上运输中更有效,但对空化较小。通过将腔结构连接到叶形形状并使用水势作为约束,我们的模型通过叶子液压设计的安全效率折磨来提供叶状性状协方差的一般模式的物理解释。

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