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Supply-side controls on soil respiration among Oregon forests

机译:俄勒冈州森林中土壤呼吸的供应方控制

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摘要

To test the hypothesis that variation in soil respiration is related to plant production across a diverse forested landscape, we compared annual soil respiration rates with net primary production and the subsequent allocation of carbon to various ecosystem pools, including leaves, fine roots, forests floor, and mineral soil for 36 independent plots arranged as three replicates of four age classes in three climatically distinct forest types.Across all plots, annual soil respiration was not correlated with aboveground net primary production (R-2=0.06, P>0.1) but it was moderately correlated with belowground net primary production (R-2=0.46, P<0.001). Despite the wide range in temperature and precipitation regimes experienced by these forests, all exhibited similar soil respiration per unit live fine root biomass, with about 5 g of carbon respired each year per 1 g of fine root carbon (R-2=0.45, P<0.001). Annual soil respiration was only weakly correlated with dead carbon pools such as forest floor and mineral soil carbon (R-2=0.14 and 0.12, respectively). Trends between soil respiration, production, and root mass among age classes within forest type were inconsistent and do not always reflect cross-site trends.These results are consistent with a growing appreciation that soil respiration is strongly influenced by the supply of carbohydrates to roots and the rhizosphere, and that some regional patterns of soil respiration may depend more on belowground carbon allocation than the abiotic constraints imposed on subsequent metabolism.
机译:为了检验土壤呼吸变化与多种森林景观中的植物生产相关的假设,我们将每年的土壤呼吸速率与净初级生产以及随后碳向各种生态系统池(包括树叶,细根,林木, 36个独立样地的土壤和矿质土壤按三个不同气候类型的森林划分为四个年龄级别的三个重复。在所有样地中,年土壤呼吸与地上净初级生产力无关(R-2 = 0.06,P> 0.1),但与地下净初级生产相关(R-2 = 0.46,P <0.001)。尽管这些森林经历的温度和降水方式范围很广,但每个单位的细根生物量均表现出相似的土壤呼吸作用,每1克细根碳每年吸收约5克碳(R-2 = 0.45,P <0.001)。年度土壤呼吸与死碳库(如林底和矿质土壤碳)的相关性很小(R-2 = 0.14和0.12)。森林类型中各年龄段的土壤呼吸,产量和根系质量之间的趋势不一致,并且并不总是反映跨站点趋势。这些结果与人们日益认识到土壤呼吸受到根系和根系碳水化合物供应的强烈影响有关。根际,土壤呼吸的某些区域模式可能更多地取决于地下碳的分配,而不是对后续代谢施加的非生物限制。

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