Department of Biological Systems Engineering, University of WI-Madison, Madison, WI, USA.
Department of Atmospheric and Oceanic Sciences, University of WI-Madison, Madison, WI, USA.
Oecologia. 2021 Dec;197(4):971-988. doi: 10.1007/s00442-021-04891-1. Epub 2021 Mar 6.
Biogenic volatile organic compounds (BVOCs) play critical roles in ecological and earth-system processes. Ecosystem BVOC models rarely include soil and litter fluxes and their accuracy is often challenged by BVOC dynamics during periods of rapid ecosystem change like spring leaf out. We measured BVOC concentrations within the air space of a mixed deciduous forest and used a hybrid Lagrangian/Eulerian canopy transport model to estimate BVOC flux from the forest floor, canopy, and whole ecosystem during spring. Canopy flux measurements were dominated by a large methanol source and small isoprene source during the leaf-out period, consistent with past measurements of leaf ontogeny and theory, and indicative of a BVOC flux situation rarely used in emissions model testing. The contribution of the forest floor to whole-ecosystem BVOC flux is conditional on the compound of interest and is often non-trivial. We created linear models of forest floor, canopy, and whole-ecosystem flux for each study compound and used information criteria-based model selection to find the simplest model with the best fit. Most published BVOC flux models do not include vapor pressure deficit (VPD), but it entered the best canopy, forest floor, and whole-ecosystem BVOC flux model more than any other study variable in the present study. Since VPD is predicted to increase in the future, future studies should investigate how it contributes to BVOC flux through biophysical mechanisms like evaporative demand, leaf temperature and stomatal function.
生物源挥发性有机化合物(BVOCs)在生态和地球系统过程中起着至关重要的作用。生态系统 BVOC 模型很少包括土壤和凋落物通量,并且其准确性经常受到生态系统快速变化期间(如春季叶片展开期间)BVOC 动态的挑战。我们测量了混合落叶林空气中的 BVOC 浓度,并使用混合拉格朗日/欧拉冠层传输模型来估算春季期间从林地板、冠层和整个生态系统的 BVOC 通量。在叶片展开期间,冠层通量测量主要由一个大的甲醇源和一个小的异戊二烯源主导,这与叶片发育和理论的过去测量结果一致,表明 BVOC 通量情况很少用于排放模型测试。林地板对整个生态系统 BVOC 通量的贡献取决于感兴趣的化合物,并且通常很重要。我们为每个研究化合物创建了林地板、冠层和整个生态系统通量的线性模型,并使用基于信息准则的模型选择来找到具有最佳拟合的最简单模型。大多数已发表的 BVOC 通量模型不包括蒸气压亏缺(VPD),但在本研究中,它比其他任何研究变量都更频繁地进入最佳冠层、林地板和整个生态系统 BVOC 通量模型。由于未来预计 VPD 会增加,因此未来的研究应调查它如何通过蒸发需求、叶片温度和气孔功能等生物物理机制来促进 BVOC 通量。