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Dynamics of Maize Carbon Contribution to Soil Organic Carbon in Association with Soil Type and Fertility Level

机译:玉米碳对土壤有机碳的贡献与土壤类型和肥力水平的关系

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摘要

Soil type and fertility level influence straw carbon dynamics in the agroecosystems. However, there is a limited understanding of the dynamic processes of straw-derived and soil-derived carbon and the influence of the addition of straw carbon on soil-derived organic carbon in different soils associated with different fertility levels. In this study, we applied the in-situ carborundum tube method and 13C-labeled maize straw (with and without maize straw) at two cropland (Phaeozem and Luvisol soils) experimental sites in northeast China to quantify the dynamics of maize-derived and soil-derived carbon in soils associated with high and low fertility, and to examine how the addition of maize carbon influences soil-derived organic carbon and the interactions of soil type and fertility level with maize-derived and soil-derived carbon. We found that, on average, the contributions of maize-derived carbon to total organic carbon in maize-soil systems during the experimental period were differentiated among low fertility Luvisol (from 62.82% to 42.90), high fertility Luvisol (from 53.15% to 30.00%), low fertility Phaeozem (from 58.69% to 36.29%) and high fertility Phaeozem (from 41.06% to 16.60%). Furthermore, the addition of maize carbon significantly decreased the remaining soil-derived organic carbon in low and high fertility Luvisols and low fertility Phaeozem before two months. However, the increasing differences in soil-derived organic carbon between both soils with and without maize straw after two months suggested that maize-derived carbon was incorporated into soil-derived organic carbon, thereby potentially offsetting the loss of soil-derived organic carbon. These results suggested that Phaeozem and high fertility level soils would fix more maize carbon over time and thus were more beneficial for protecting soil-derived organic carbon from maize carbon decomposition.
机译:土壤类型和肥力水平会影响农业生态系统中的秸秆碳动态。然而,对于秸秆和土壤衍生的碳的动态过程以及秸秆碳的添加对不同肥力水平相关的不同土壤中土壤衍生的有机碳的影响知之甚少。在这项研究中,我们在中国东北的两个农田(法奥祖姆和卢维索尔土壤)的试验地点应用了原位金刚砂管法和 13 C标记的玉米秸秆(有和没有玉米秸秆)进行量化高和低肥力土壤中玉米和土壤碳的动态变化,并研究玉米碳的添加如何影响土壤有机碳以及土壤类型和肥力水平与玉米和土壤的相互作用碳。我们发现,平均而言,在试验期内玉米来源的碳对玉米-土壤系统中总有机碳的贡献在低肥力Luvisol(从62.82%到42.90),高肥力Luvisol(从53.15%到30.00)之间有所区别。 %),低生育力Phaeozem(从58.69%到36.29%)和高生育力Phaeozem(从41.06%到16.60%)。此外,添加玉米碳显着降低了两个月前低肥力和高肥力的Luvisols和低肥力的Phaeozem中残留的土壤来源的有机碳。但是,两个月后有或没有玉米秸秆的土壤之间的土壤衍生有机碳差异不断增加,这表明玉米衍生碳已被掺入土壤衍生有机碳,从而有可能抵消土壤衍生有机碳的损失。这些结果表明,Phaeozem和高肥力土壤将随着时间的推移固定更多的玉米碳,因此对于保护土壤衍生的有机碳免受玉米碳的分解更有利。

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