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A process-based, climate-sensitive model to derive methane emissions from natural wetlands: Application to five wetland sites, sensitivity to model parameters, and climate

机译:基于过程的气候敏感模型,用于获取天然湿地的甲烷排放:应用于五个湿地,对模型参数的敏感性和气候

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摘要

Methane emissions from natural wetlands constitute the largest methane source at present and depend highly on the climate. In order to investigate the response of methane emissions from natural wetlands to climate variations, a one-dimensional process-based climate-sensitive model to derive methane emissions from natural wetlands is developed. In the model the processes leading to methane emission are simulated within a one-dimensional soil column and the three different transport mechanisms, diffusion, plant-mediated transport, and ebullition, are modeled explicitly. The model forcing consists of daily values of soil temperature, water table, and net primary productivity, and at permafrost sites the thaw depth is included. The methane model is tested using observational data obtained at five wetland sites located in North America, Europe, and Central America, representing a large variety of environmental conditions. It can be shown that in most cases seasonal variations in methane emissions can be explained by the combined effect of changes in soil temperature and the position of the water table. Our results also show that a process-based approach is needed because there is no simple relationship between these controlling factors and methane emissions that applies to a variety of wetland sites. The sensitivity of the model to the choice of key model parameters is tested and further sensitivity tests are performed to demonstrate how methane emissions from wetlands respond to longer-term climate variations. [References: 81]
机译:天然湿地的甲烷排放构成了目前最大的甲烷来源,并且高度依赖于气候。为了研究自然湿地甲烷排放对气候变化的响应,开发了基于一维过程的气候敏感模型来推导自然湿地甲烷排放。在该模型中,在一维土壤柱中模拟了导致甲烷排放的过程,并对三种不同的传输机制(扩散,植物介导的传输和沸腾)进行了建模。强迫模型包括土壤温度,地下水位和净初级生产力的每日值,并且在多年冻土处包括融化深度。使用在北美,欧洲和中美洲的五个湿地站点获得的观测数据对甲烷模型进行了测试,代表了多种环境条件。可以证明,在大多数情况下,甲烷排放的季节性变化可以通过土壤温度变化和地下水位的综合影响来解释。我们的结果还表明,需要基于过程的方法,因为这些控制因素与适用于各种湿地的甲烷排放之间没有简单的关系。测试了模型对关键模型参数选择的敏感性,并进行了进一步的敏感性测试,以证明湿地甲烷排放如何响应长期气候变化。 [参考:81]

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    Walter, B.; Heimann, M.;

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  • 年度 2000
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