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首页> 外文期刊>Tree Physiology >Applying a universal scaling model to vascular allometry in a single-stemmed, monopodially branching deciduous tree (Attim's model)
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Applying a universal scaling model to vascular allometry in a single-stemmed, monopodially branching deciduous tree (Attim's model)

机译:将通用缩放模型应用于单茎单足分枝落叶树中的血管变态(Attim模型)

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摘要

West, Brown and Enquist (1999a) modeled vascular plants as a continuously branching hierarchical network of connected links (basic structural units) that ends in a terminal unit, the leaf petiole, at the highest link order (WBE model). We applied the WBE model to study architecture and scaling between links of the water transport system from lateral roots to leafy lateral branches and petioles in Populus deltoides Bartr. ex Marsh. trees growing in an agroforestry system (open-grown trees) and in a dense plantation (stand-grown trees). The architecture of P. deltoides violates two WBE model assumptions: (1) the radii of links formed in a branching point are unequal; and (2) there is no terminal unit situated at the end of a hierarchical network, rather, petioles are situated at any link order greater than 1. Link cross sections were taken at various link orders and morphological levels in roots and shoots of open-grown trees and shoots of stand-grown trees. Scaling of link radii was area-preserving. From roots to branches, vessel diameters were scaled with link order in accordance with a 1/6-power, as predicted by the WBE model indicating general vessel tapering. However, analysis of the data at the morphological level showed that vessel radius decreased intermittently with morphological level rather than continuously between successive link orders. Estimation of total water conductive area in a link is based on conducting area and petiole radius in the WBE model. The estimation failed in P. deltoides, probably because petioles are not a terminal unit. Biomass of stand-grown trees scaled with stem basal radius according to the 3/8-power predicted by the WBE model. Thus, the WBE model adequately described vascular allometry and biomass at the whole-tree level in P. deltoides despite violation of Assumption 1, but failed in predictions where the leaf petiole was used as a terminal unit.
机译:West,Brown和Enquist(1999a)将维管植物建模为相连的链接(基本结构单元)的连续分支层次网络,该网络以最高链接顺序(WBE模型)终止于终端单元(叶柄)。我们应用WBE模型研究了胡杨(Populus deltoides Bartr)从侧根到叶状侧枝和叶柄的输水系统各环节之间的体系结构和尺度。前沼泽。在农林业系统中生长的树木(开放式树木)和茂密的人工林中的树木(立式树木)。 P. deltoides的体系结构违反了两个WBE模型假设:(1)分支点中形成的链接半径不相等; (2)在分级网络的末尾没有终端单元,而是叶柄位于大于1的任何链接顺序上。链接截面是在开放的根和芽的不同链接顺序和形态学水平上截取的,种树木和立木的芽。链接半径的缩放是保留区域的。从根到分支,血管直径按链接顺序按照1/6幂进行缩放,这是由WBE模型预测的,表明总体血管逐渐变细。然而,在形态学水平上的数据分析表明,脉管半径随着形态学水平而间歇地减小,而不是在连续的链接顺序之间连续减小。在WBE模型中,根据一条导线的导电面积和叶柄半径估算一条路段的总导水面积。三角果假单胞菌的估计失败,可能是因为叶柄不是末端单元。立木的生物量根据WBE模型预测的3/8幂与茎基半径成比例。因此,尽管违反了假设1,WBE模型仍充分描述了三角假单胞菌在全树水平上的血管变构和生物量,但在以叶柄为末端单元的预测中失败了。

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  • 来源
    《Tree Physiology》 |2008年第1期|1-10|共10页
  • 作者单位

    Department of Forest Ecology P.O. Box 27 00014 University of Helsinki Finland;

    Corresponding author pekka.nygren{at}helsinki.fi;

    Department of Forestry 203 ABNR Building University of Missouri Columbia MO 65211 USA;

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