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Landscape-Scale Controls on Aboveground Forest Carbon Stocks on the Osa Peninsula Costa Rica

机译:哥斯达黎加奥萨半岛地上森林碳储量的景观尺度控制

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摘要

Tropical forests store large amounts of carbon in tree biomass, although the environmental controls on forest carbon stocks remain poorly resolved. Emerging airborne remote sensing techniques offer a powerful approach to understand how aboveground carbon density (ACD) varies across tropical landscapes. In this study, we evaluate the accuracy of the Carnegie Airborne Observatory (CAO) Light Detection and Ranging (LiDAR) system to detect top-of-canopy tree height (TCH) and ACD across the Osa Peninsula, Costa Rica. LiDAR and field-estimated TCH and ACD were highly correlated across a wide range of forest ages and types. Top-of-canopy height (TCH) reached 67 m, and ACD surpassed 225 Mg C ha-1, indicating both that airborne CAO LiDAR-based estimates of ACD are accurate in tall, high-biomass forests and that the Osa Peninsula harbors some of the most carbon-rich forests in the Neotropics. We also examined the relative influence of lithologic, topoedaphic and climatic factors on regional patterns in ACD, which are known to influence ACD by regulating forest productivity and turnover. Analyses revealed a spatially nested set of factors controlling ACD patterns, with geologic variation explaining up to 16% of the mapped ACD variation at the regional scale, while local variation in topographic slope explained an additional 18%. Lithologic and topoedaphic factors also explained more ACD variation at 30-m than at 100-m spatial resolution, suggesting that environmental filtering depends on the spatial scale of terrain variation. Our result indicate that patterns in ACD are partially controlled by spatial variation in geologic history and geomorphic processes underpinning topographic diversity across landscapes. ACD also exhibited spatial autocorrelation, which may reflect biological processes that influence ACD, such as the assembly of species or phenotypes across the landscape, but additional research is needed to resolve how abiotic and biotic factors contribute to ACD variation across high biomass, high diversity tropical landscapes.
机译:尽管对森林碳储量的环境控制仍然难以解决,但热带森林在树木生物量中存储大量碳。新兴的机载遥感技术提供了一种强大的方法来了解热带景观中地上碳密度(ACD)的变化。在这项研究中,我们评估了卡内基空中天文台(CAO)的光探测和测距(LiDAR)系统在哥斯达黎加奥萨半岛上探测树冠顶部树高(TCH)和ACD的准确性。 LiDAR与现场估计的TCH和ACD在广泛的森林年龄和类型之间高度相关。冠层最高高度(TCH)达到67 m,并且ACD超过225 Mg C ha -1 ,这表明基于机载CAO LiDAR的ACD估算值在高生物量高大森林中是准确的奥萨半岛(Osa Peninsula)拥有新热带地区一些碳含量最高的森林。我们还研究了岩性,地形学和气候因素对ACD区域格局的相对影响,这些因素已知通过调节森林生产力和营业额来影响ACD。分析显示,一组空间嵌套的因素控制着ACD模式,其中地质变化解释了区域范围内多达16%的地图ACD变化,而地形坡度的局部变化解释了另外18%。岩性和地形学因素也解释了30 m处的ACD变化比100 m处的空间分辨率更大,这表明环境滤波取决于地形变化的空间尺度。我们的结果表明,ACD中的模式部分受地质历史和地貌过程中空间变化的支配,这些变化是整个景观的地形多样性的基础。 ACD还表现出空间自相关,这可能反映了影响ACD的生物过程,例如整个景观中物种或表型的组装,但还需要进一步研究来解决非生物和生物因素如何在高生物量,高多样性热带地区造成ACD变化的原因。风景。

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