...
首页> 外文期刊>Functional Ecology >Structural complexity and large-sized trees explain shifting species richness and carbon relationship across vegetation types
【24h】

Structural complexity and large-sized trees explain shifting species richness and carbon relationship across vegetation types

机译:结构复杂性和大尺寸树木解释植被类型的转移物种丰富性和碳关系

获取原文
获取原文并翻译 | 示例
           

摘要

It is prominently claimed that enhancing forest diversity would play a dual role of nature conservation and climate regulation. While the idea is intuitively appealing, studies show that species richness effects on above-ground carbon (AGC) are not always positive, but instead unpredictable especially across scales and complex terrestrial systems having large-diameter and tall-stature trees. Previous studies have further considered structural complexity and larger trees as determinants of AGC. Yet it remains unclear what drives differential diversity-AGC relationships across vegetation types. Here we test whether structural complexity and large-sized trees play an influential role in explaining shifting diversity-AGC relationships across vegetation types, using a 22.3-ha sampled dataset of 124 inventory plots in woodlands, gallery forests, tree/shrub savannas and mixed plantations in West Africa. Natural vegetation had greater species richness and structural complexity than mixed plantations, as expected. In addition, AGC was highest in gallery forests and mixed plantations, which is consistent with favourable environmental conditions in the former and high stocking densities and presence of fast-growing species in the latter. Significant interaction effects of species richness and vegetation on AGC revealed a vegetation-dependent species richness-AGC relationship: consistently, we found positive species richness-AGC relationship in both mixed plantations and woodlands, and nonsignificant patterns in gallery forests and tree/shrub savanna. Furthermore, there was a vegetation-dependent mediation of structural complexity in linking species richness to AGC, with stronger positive structural complexity effects where species richness-AGC relationships were positive, and stronger positive large-sized trees' effect where species richness-AGC relationships were neutral. Our study provides strong evidence of vegetation-dependent species richness-AGC relationships, which operated through differential mediation by structural complexity of the species richness and large trees' effects. We conclude that even higher species richness in diversified ecosystems may not always relate positively with AGC, and that neutral pattern may arise possibly as a result of larger dominant individual trees imposing a slow stand dynamic flux and overruling species richness effects. A freePlain Language Summarycan be found within the Supporting Information of this article.
机译:突出的声称,加强森林多样性将发挥自然保护和气候调节的双重作用。虽然这个想法直观地吸引,但研究表明,对地上碳(AGC)的物种丰富作用并不总是积极的,而是难以预测,特别是跨越大直径和高平坦的树木的鳞片和复杂的陆地系统。以前的研究进一步被认为是结构复杂性和较大的树木作为AGC的决定因素。然而,它仍然不清楚在植被类型中推动差分分集-AGC的关系。在这里,我们测试结构复杂性和大尺寸树木是否在解释植被类型中的转移分集-AGC关系中,使用林地,画廊森林,树木/灌木大草原和混合种植园的22.3-HA采样数据集在植被类型中发挥了影响力的作用在西非。如预期的那样,自然植被具有比混合种植园更大的丰富性和结构复杂性。此外,AGC在画廊森林和混合种植园中是最高的,这与前者的有利环境条件一致,并且在后者在后者的高层储量密度和存在快速生长的物种。物种丰富性和植被对AGC的显着相互作用揭示了植被依赖性物种丰富性 - AGC关系:始终如一地,我们发现了混合种植园和林地的阳性物种丰富的关系,画廊森林和树木/灌木丛中的无情模式。此外,在将物种丰富性与AGC连接到AGC的结构复杂性存在植被依赖性调解,具有较强的阳性结构复杂性效应,种类丰富的AGC关系是积极的,并且较强的积极大小的树木的效果,在物种丰富的AGC关系中的影响中性的。我们的研究提供了诸如植被依赖性物种的强有力证据,通过种类丰富性和大树的结构复杂性通过差异调解来运营。我们得出结论,多样化生态系统中的更高种类丰富性甚至可能与AGC具有正面的关系,并且由于较大的占主导地位,因此可能出现中性模式可能引起缓慢的动态助焊剂和超越物种丰富作用。在本文的支持信息中找到FreePlain语言SummaryCan。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号