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首页> 外文期刊>Global change biology >Interactive global change factors mitigate soil aggregation and carbon change in a semi-arid grassland
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Interactive global change factors mitigate soil aggregation and carbon change in a semi-arid grassland

机译:互动全球变革因子减轻半干旱草原的土壤聚集和碳变化

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摘要

The ongoing global change is multi-faceted, but the interactive effects of multiple drivers on the persistence of soil carbon (C) are poorly understood. We examined the effects of warming, reactive nitrogen (N) inputs (12 g N m(-2) year(-1)) and altered precipitation (+ or - 30% ambient) on soil aggregates and mineral-associated C in a 4 year manipulation experiment with a semi-arid grassland on China's Loess Plateau. Our results showed that in the absence of N inputs, precipitation additions significantly enhanced soil aggregation and promoted the coupling between aggregation and both soil fungal biomass and exchangeable Mg2+. However, N inputs negated the promotional effects of increased precipitation, mainly through suppressing fungal growth and altering soil pH and clay-Mg2+-OC bridging. Warming increased C content in the mineral-associated fraction, likely by increasing inputs of root-derived C, and reducing turnover of existing mineral-associated C due to suppression of fungal growth and soil respiration. Together, our results provide new insights into the potential mechanisms through which multiple global change factors control soil C persistence in arid and semi-arid grasslands. These findings suggest that the interactive effects among global change factors should be incorporated to predict the soil C dynamics under future global change scenarios.
机译:正在进行的全球变化是多方面的,但多个驱动因素对土壤碳(c)持续存在的互动效果很差。我们检查了升温,反应性氮气(N)输入(12g n m(-2)年(-1))和50中的土壤聚集体和矿物相关的沉淀(+或 - 30%环境)的影响中国黄土高原上半干旱草原的年度操纵实验。我们的研究结果表明,在没有N个输入的情况下,沉淀添加显着增强了土壤聚集,并促进了聚集和土壤真菌生物量和可交换Mg2 +之间的偶联。然而,N个输入否定了沉淀的提高效果,主要是通过抑制真菌生长和改变土壤pH和粘土-mg2 + -oc桥接。在矿物相关分数中加热增加的C含量,可能通过增加根系衍生的C的输入,并由于抑制真菌生长和土壤呼吸而降低现有矿物相关C的转余。我们的结果在一起,提供了新的洞察力,通过多种全球变化因子控制干旱和半干旱草原中的土壤C持久性的潜在机制。这些调查结果表明,应纳入全球变革因子之间的互动效果,以预测未来的全球变革情景下的土壤C动态。

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