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Mechanisms for changes in soil carbon storage with pasture to Pinus radiata land-use change

机译:牧草对辐射松土地利用变化的土壤碳储量变化机制

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摘要

In this study, we simulated pasture to Pinus radiata land-use change with the Generic Decomposition And Yield (G'DAY) ecosystem model to examine mechanisms responsible for the change in soil carbon (C) under pine. We parameterized the model for paired sites in New Zealand. Our simulations successfully reproduced empirical trends in ecosystem productivity and soil inorganic nitrogen (N), and modeled an increase in soil C and a small decline in soil N after 30 years under pine. We determined the mechanisms contributing to soil C change based on an established hypothesis that attributes increases in soil C storage to three main factors: increased ecosystem N inputs relative to outputs, increased C/N ratios in plant and soil, or a shift of N from plant to soil. The mechanisms we attributed to the simulated increase in soil C under pine were increased soil C inputs through tree litterfall, and an increase in the soil C/N ratio. In the first 7 years following pine establishment, a decline in soil C was simulated; this was matched by a decline in soil N. The simulated longer-term increase in soil C with afforestation by pine contrasts with results from published field studies, which show either a decline or no change in soil C under pine. The discrepancy between measured and simulated changes in soil C was attributed to the G'DAY model overestimating the transfer of litter C into the mineral soil. [References: 54]
机译:在这项研究中,我们使用通用分解和产量(G'DAY)生态系统模型模拟了辐射松草地土地利用变化的牧场,以研究造成松树下土壤碳(C)变化的机制。我们为新西兰的配对站点参数化了模型。我们的模拟成功地再现了生态系统生产力和土壤无机氮(N)的经验趋势,并模拟了松树生长30年后土壤C的增加和土壤N的小幅下降。我们基于已建立的假设确定了导致土壤碳变化的机制,该假设将土壤碳储量的增加归因于三个主要因素:生态系统氮输入相对于产出的增加,植物和土壤中碳/氮比的增加或氮与氮的转移植物到土壤。我们归因于松树下土壤碳模拟增加的机制是通过树木凋落物增加土壤碳输入,以及土壤碳氮比增加。在松树建立后的最初7年中,模拟了土壤C的下降;这与土壤氮的减少相匹配。松树造林对土壤碳的模拟长期增加与已发表的田间研究的结果形成对比,后者显示了松树下土壤碳的减少或没有变化。土壤C的测量变化与模拟变化之间的差异归因于G'DAY模型,该模型高估了垃圾C向矿物土壤中的转移。 [参考:54]

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