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Variation in allometry and tree architecture among Symplocos species in a Japanese warm-temperate forest

机译:日本温带森林中Symplocos物种的异速生长和树木结构的变化

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摘要

We compared tree architecture and allometry among five Symplocos species (Symplocos myrtacea, Symplocos lancifolia, Symplocos lucida, Symplocos glauca, and Symplocos theophrastiifolia) in a Japanese warm-temperate forest to understand the causes of interspecific variations in these characteristics. S. lancifolia, S. glauca, and S. theophrastiifolia grew at elevations below 500 m, whereas S. lucida grew on ridges irrespective of elevations, and S. myrtacea grew at elevations above 590 m. The species that shared a habitat exhibited trade-offs between height growth and crown area extension that might reflect differentiation in their regeneration niches. S. lancifolia showed the lowest height growth and widest crown extension, whereas S. theophrastiifolia showed the greatest height growth and lowest crown extension. S. glauca was intermediate between these species. S. lucida grows on ridges characterized by strong winds and the absence of other Symplocos species; it had the thickest stem and second-narrowest crown of the five species, possibly due to mechanical stability constraints. S. myrtacea was smallest at the onset of reproduction, and its fruits developed under closed canopies. Its architecture and allometry may increase seed production. Variation in tree architecture and allometry among the five species appear to be related to differentiation among regeneration niches, mechanical stability, and reproduction constraints.
机译:我们在日本温带森林中比较了五种Symplocos物种(Symplocos myrtacea,Symplocos lancifolia,Symplocos lucida,Symplocos glauca和Symplocos theophrastiifolia)之间的树结构和异速生长,以了解这些特征种间变异的原因。兰奇链球菌,青冈链球菌和嗜热链球菌在海拔低于500 m时生长,而lucida链球菌则在不考虑海拔的脊上生长,而桃金娘链霉菌则在海拔590 m以上生长。具有栖息地的物种在身高增长和冠面积扩展之间表现出折衷,这可能反映了它们的再生生态位的差异。兰芝链球菌显示出最低的身高增长和最宽的冠冠延伸,而嗜盐链球菌显示出最大的身高增长和最低的冠冠延伸。青冈链球菌介于这些物种之间。 lucida S. lucida生长在以强风和没有其他Symplocos物种为特征的山脊上;它具有五个物种中最厚的茎和第二窄的树冠,可能是由于机械稳定性的限制。桃金娘科在繁殖开始时最小,其果实在封闭的树冠下发育。它的结构和异速生长可以增加种子产量。这五个物种之间树木结构和异体结构的差异似乎与再生生态位,机械稳定性和繁殖限制之间的差异有关。

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