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首页> 外文期刊>Geoscientific Model Development >A multi-isotope model for simulating soil organic carbon cycling in eroding landscapes (WATEM_C v1.0)
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A multi-isotope model for simulating soil organic carbon cycling in eroding landscapes (WATEM_C v1.0)

机译:用于模拟侵蚀景观土壤有机碳循环的多同位素模型(Watem_c V1.0)

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There is increasing recognition that lateral soil organic carbon (SOC) fluxes due to erosion have imposed an important impact on the global C cycling. Field and experimental studies have been conducted to investigate this topic. It is useful to have a modeling tool that takes into account various soil properties and has flexible resolution and scale options so that it can be widely used to study relevant processes and evaluate the effect of soil erosion on SOC cycling. This study presents a model that is capable of simulating SOC cycling in landscapes that are subjected to erosion. It considers all three C isotopes (12C, 13C and 14C) with flexible time steps and a detailed vertical solution of the soil profile. The model also represents radionuclide cycling in soils that can assist in constraining the lateral and vertical redistribution of soil particles within landscapes. The model gives a three-dimensional representation of soil properties including 137Cs activity, SOC stock, and δ13C and Δ14C values. Using the same C cycling processes in stable, eroding and depositional areas, our model is able to reproduce the observed spatial and vertical patterns of C contents, δ13C values, and Δ14C values. This indicates that at the field scale with a similar C decomposition rate, physical soil redistribution is the main cause of the spatial variability of these C metrics.
机译:由于侵蚀由于侵蚀引起的横向土壤有机碳(SoC)助熔剂对全球C循环产生了重要影响,因此越来越识别。已经进行了领域和实验研究以调查本主题。具有考虑各种土壤性质的建模工具是有用的,并具有灵活的分辨率和规模选项,以便广泛用于研究相关过程并评估土壤侵蚀对SoC循环的影响。本研究提出了一种能够在经受侵蚀的景观中模拟Soc循环的模型。它考虑了所有三个C同位素(12C,13C和14C),具有灵活的时间步骤和土壤剖面的详细垂直溶液。该模型还代表了在土壤中的放射性核素循环,可以有助于约束景观中土壤颗粒的横向和垂直再分布。该模型给出了土壤性质的三维表示,包括137CS活性,SOC库存和δ13C和Δ14C值。在稳定,腐蚀和沉积区域中使用相同的C循环过程,我们的模型能够再现C含量,Δ13c值和Δ14c值的观察到的空间和垂直图案。这表明在具有类似C分解速率的现场比例下,物理土壤再分配是这些C度量的空间变异性的主要原因。

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