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Responses of soil respiration to elevated CO2, air warming, and changing soil water availability in a model old-field grassland

机译:在典型的老田草地上,土壤呼吸对CO2升高,空气变暖和土壤水利用量变化的响应

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Responses of soil respiration to atmospheric and climatic change will have profound impacts on ecosystem and global carbon (C) cycling in the future. This study was conducted to examine effects on soil respiration of the concurrent driving factors of elevated atmospheric CO2 concentration, air warming, and changing precipitation in a constructed old-field grassland in eastern Tennessee, USA. Model ecosystems of seven old-field species were established in open-top chambers and treated with factorial combinations of ambient or elevated (+300 ppm) CO2 concentration, ambient or elevated (+3 degrees C) air temperature, and high or low soil moisture content. During the 19-month experimental period from June 2003 to December 2004, higher CO2 concentration and soil water availability significantly increased mean soil respiration by 35.8% and 15.7%, respectively. The effects of air warming on soil respiration varied seasonally from small reductions to significant increases to no response, and there was no significant main effect. In the wet side of elevated CO2 chambers, air warming consistently caused increases in soil respiration, whereas in the other three combinations of CO2 and water treatments, warming tended to decrease soil respiration over the growing season but increase it over the winter. There were no interactive effects on soil respiration among any two or three treatment factors irrespective of time period. Treatment-induced changes in soil temperature and moisture together explained 49%, 44%, and 56% of the seasonal variations of soil respiration responses to elevated CO2, air warming, and changing precipitation, respectively. Additional indirect effects of seasonal dynamics and responses of plant growth on C substrate supply were indicated. Given the importance of indirect effects of the forcing factors and plant community dynamics on soil temperature, moisture, and C substrate, soil respiration response to climatic warming should not be represented in models as a simple temperature response function, and a more mechanistic representation including vegetation dynamics and substrate supply is needed.
机译:土壤呼吸对大气和气候变化的响应将对未来的生态系统和全球碳(C)循环产生深远影响。进行了这项研究,以考察美国田纳西州东部人工草地的大气CO2浓度升高,空气变暖和降水变化等同时驱动因素对土壤呼吸的影响。在开顶式隔室中建立了七个老场物种的模型生态系统,并通过环境或升高的(+300 ppm)CO2浓度,环境或升高的(+3摄氏度)空气温度以及土壤湿度高低的因子组合进行处理内容。在2003年6月至2004年12月这19个月的试验期内,较高的CO2浓度和土壤水分利用率分别使平均土壤呼吸分别增加了35.8%和15.7%。空气变暖对土壤呼吸的影响在季节上有所变化,从小幅减少到显着增加到无响应,并且没有明显的主要影响。在升高的CO2室的潮湿侧,空气变暖持续导致土壤呼吸增加,而在其他两种CO2和水处理组合中,变暖往往会在生长季节减少土壤呼吸,但在冬季增加。不论时间长短,在任何两个或三个处理因子之间对土壤呼吸均无交互作用。处理引起的土壤温度和湿度变化分别解释了土壤呼吸对CO2升高,空气变暖和降水变化的季节性变化的49%,44%和56%。还指出了季节动态和植物生长对碳基质供应的间接影响。考虑到强迫因素和植物群落动态对土壤温度,水分和碳底物的间接影响的重要性,模型中不应将土壤呼吸对气候变暖的响应表示为简单的温度响应函数,而应将其表示为更机械的代表,包括植被需要动态和基板供应。

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