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Integrating mycorrhiza in a complex model system: effects on ecosystem C and N fluxes

机译:将菌根整合到一个复杂的模型系统中:对生态系统碳和氮通量的影响

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During the last decades, ectomycorrhiza has been identified to be of major importance for ecosystem carbon (C) and nitrogen (N) cycling and tree growth. Despite this importance, mycorrhiza has largely been neglected in ecosystem models or regarded only implicitly by a static mycorrhiza term. In order to overcome this limitation, we integrated the dynamic mycorrhiza model MYCOFON (Meyer et al. in Plant Soil 327:493-517, 2010a, Plant Soil 327:519, 2010b) into the ecosystem modelling framework MoBiLE (Modular Biosphere simu-Lation Environment) and coupled it to available forest growth and development process models. Model testing was done for different beech and spruce forest sites in Germany. Simulation results were compared to a standard model set-up, that is, without explicit consideration of mycorrhiza. Parameters were set in order not to violate previous findings about C partitioning into aboveground and belowground biomasses. Nevertheless, the explicit consideration of mycorrhiza let to considerable differences between sites and deposition scenarios with respect to simulated root biomass, plant nitrogen supply, and gaseous soil C and N emissions/The latter was mainly a result of differences in soil N concentration and dynamics. Our simulation results also show that the C supply tomycorrhizal fungi by plants as well as the importance of mycorrhizal fungi for plant N uptake, that is, the allocation of C and N between plants and fungi, depends on the magnitude of N deposition. This effect is neglected by standard model approaches sofar. Therefore, explicit consideration of mycorrhiza in ecosystem models has a high potential to improve model simulations of ecosystem C and N cycling and associated biosphere-hydrosphere-atmosphere exchange processes and consequently simulation of soil CO_2 and N trace gas emissions from forest sites.
机译:在过去的几十年中,根除菌根对生态系统的碳(C)和氮(N)循环以及树木生长具有重要意义。尽管具有这种重要性,但菌根在很大程度上已被生态系统模型所忽略,或者仅由静态菌根术语隐含地考虑。为了克服此限制,我们将动态菌根模型MYCOFON(Meyer等人,植物土壤327:493-517,2010a,植物土壤327:519,2010b)整合到了生态系统建模框架MoBiLE(模块化生物圈模拟)中环境),并将其与可用的森林生长和发展过程模型耦合。在德国对不同的山毛榉和云杉林进行了模型测试。将模拟结果与标准模型设置进行比较,也就是说,无需明确考虑菌根。设置参数是为了不违反先前关于将C划分为地上和地下生物量的发现。然而,对菌根的明确考虑使得地点和沉积情况在模拟根系生物量,植物氮供应以及气态土壤碳和氮排放方面存在相当大的差异/后者主要是土壤氮浓度和动力学差异的结果。我们的模拟结果还表明,植物向菌根真菌供应的碳以及菌根真菌对植物吸收氮的重要性,即植物和真菌之间的碳和氮分配取决于氮的沉积量。这种效果被标准模型方法sofer忽略了。因此,在生态系统模型中明确考虑菌根具有很大的潜力,可以改善生态系统C和N循环以及相关的生物圈-水圈-大气交换过程的模型模拟,从而改善森林中土壤CO_2和N微量气体的排放。

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