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A general quantitative theory of forest structure and dynamics

机译:森林结构与动力学的通用定量理论

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We present the first part of a quantitative theory for the structure and dynamics of forests at demographic and resource steady state. The theory uses allometric scaling relations, based on metabolism and biomechanics, to quantify how trees use resources, fill space, and grow. These individual-level traits and properties scale up to predict emergent properties of forest stands, including size-frequency distributions, spacing relations, resource flux rates, and canopy configurations. Two insights emerge from this analysis: (i) The size structure and spatial arrangement of trees in the entire forest are emergent manifestations of the way that functionally invariant xylem elements are bundled together to conduct water and nutrients up from the trunks, through the branches, to the leaves of individual trees. (ii) Geometric and dynamic properties of trees in a forest and branches in trees scale identically, so that the entire forest can be described mathematically and behaves structurally and functionally like a scaled version of the branching networks in the largest tree. This quantitative framework uses a small number of parameters to predict numerous structural and dynamical properties of idealized forests.
机译:我们介绍了人口和资源稳定状态下森林结构和动力学的定量理论的第一部分。该理论使用基于代谢和生物力学的异速生长比例关系来量化树木如何利用资源,填充空间和生长。这些个体水平的特征和特性会扩大以预测林分的新兴特性,包括大小-频率分布,间距关系,资源通量率和冠层结构。这项分析得出了两个见解:(i)整个森林中树木的大小结构和空间排列是功能不变的木质部元素捆绑在一起以从树干穿过树枝向上传导水分和养分的方式的新兴体现,到个别树木的叶子。 (ii)森林中的树木和树木中的树枝的几何和动态特性具有相同的比例,因此可以用数学方式描述整个森林,并像最大树木中的分支网络的缩放版本一样在结构和功能上起作用。该定量框架使用少量参数来预测理想化森林的众多结构和动力学特性。

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