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Modeling biogeochemistry and forest management practices for assessing GHGs mitigation strategies in forested wetlands

机译:模拟生物地球化学和森林管理实践以评估森林湿地中的温室气体减排策略

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Despite the importance of forested wetland in the global carbon cycle, no widely applicable ecosystem model exists for this ecosystem. This study reports the linkage between Wetland-DNDC and MIKE SHE for carbon dynamics and GHGs mitigation strategies analyses in forested wetland. Wetland-DNDC was modified by parameterizing forest management practices and refining anaerobic biogeochemical processes. Mortality due to senescence was estimated as a function of tree age or as a function of the relative biomass. We used a harvesting damage mortality coefficient as a linear function of time with three parameters: Initial mortality, Duration of the damage and Intensity of the initial harvesting. The model was validated against experimental data obtained from the GNF site near Florida. As a preliminary application, we simulated the effect of water table position and forest management practices on GHGs emissions and carbon dynamics to test the capabilities of the models for simulating seasonal and long-term carbon budget in forested wetland.
机译:尽管森林湿地在全球碳循环中非常重要,但对于该生态系统尚无广泛适用的生态系统模型。这项研究报告了湿地-DNDC和MIKE SHE在森林湿地的碳动力学和温室气体减排策略分析之间的联系。通过参数化森林管理实践和完善厌氧生物地球化学过程,对湿地-DNDC进行了修改。估计由于衰老导致的死亡率是树木年龄的函数或相对生物量的函数。我们使用收获损害死亡率系数作为时间的线性函数,具有三个参数:初始死亡率,损害持续时间和初始收获强度。根据从佛罗里达附近的GNF站点获得的实验数据验证了该模型。作为初步应用,我们模拟了地下水位和森林管理实践对温室气体排放和碳动态的影响,以测试该模型模拟森林湿地季节性和长期碳收支的能力。

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