首页> 外文期刊>Agricultural and Forest Meteorology >Diurnal and seasonal variability of soil CO2 efflux in a cropland ecosystem on the Tibetan Plateau.
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Diurnal and seasonal variability of soil CO2 efflux in a cropland ecosystem on the Tibetan Plateau.

机译:青藏高原农田生态系统中土壤CO2流出量的日变化和季节变化。

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Seasonal variation of soil CO2 efflux is highly dependent on climate and plant phenology. On the Tibetan Plateau with an average altitude about 4000 m a.s.l., variations of CO2 efflux may be strongly associated with the unique ecophysiology and climate over there. Our objectives were to quantify diurnal and seasonal variations of soil CO2 efflux, and to investigate the effects of daily and seasonal variations of soil temperature and phenology on soil CO2 efflux. CO2 efflux was measured in Lhasa River valley on the Tibetan Plateau using a static closed chamber technique and gas chromatography for 2 full years from September 1999 to August 2001. Soil CO2 effluxes showed similar diurnal change patterns and fluctuated from minimum at 5:00 h to maximum at 11:00-14:00 h in different phenological stages. Soil CO2 efflux exhibited pronounced variation corresponding to crop phenology and soil temperature, with a minimum value of 0.4 g CO2 m-2 d-1 in January and a maximum value of 15.0 g CO2 m-2 d-1 in mid June. The observed mean soil CO2 effluxes were 6.6 g CO2 m-2 d-1 in the growing season and 2.8 g CO2 m-2 d-1 in the non-growing season, with an average of 6.0 g CO2 m-2 d-1 in the 2 full measured years. While soil CO2 efflux was strongly dependent on soil temperature with highest correlation found with 5 cm depth temperature, maximum values of CO2 efflux coincided with maximum values of leaf area index (LAI) and live root biomass (LRB) in mid June but not with maximum soil temperature in July. CO2 efflux was positively correlated with LAI and LRB in the growing season from March to August. Soil moisture had relatively little effect on soil CO2 efflux due to frequent irrigation. Simulation of soil CO2 efflux with soil temperature in the whole 2 years of observation led to overestimates in non-growing season and underestimates in the growing season. Taking account of the influence of crop phenology, a temperature dependent exponential model was separately used to fit CO2 efflux in growing season and non-growing season. This alteration increased 7.5% of explained variance of seasonal variability and provided more accurate prediction of soil CO2 efflux. Q10 values ranged 2.0 in growing season and 2.5 in non-growing season. Total annual loss of C from soil respiration was estimated to be 579+or-13 g C m-2 per year at the site. The results suggest that soil temperature is the determinant factor controlling temporal variation of soil CO2 efflux and crop phenology modifies the temperature dependence of soil CO2 efflux in different growing periods. Our results also indicate that root respiration in the growing season can be estimated approximately by using the discrepancy between CO2 efflux relations in the growing season and non-growing season of cropland ecosystem..
机译:土壤CO2流出量的季节变化高度依赖于气候和植物物候。在平均海拔约4000 m.s.l.的青藏高原上,CO2流出量的变化可能与那里独特的生态生理和气候密切相关。我们的目标是量化土壤CO2排放量的每日和季节性变化,并研究土壤温度和物候的每日和季节性变化对土壤CO2排放量的影响。从1999年9月至2001年8月,使用静态密闭室技术和气相色谱法对青藏高原拉萨河谷的CO2排放量进行了整整2年的测量。土壤CO2排放量表现出相似的昼夜变化规律,并在5:00 h至最低时出现波动在不同的物候阶段,最大值为11:00-14:00。土壤CO2流出量表现出与作物物候和土壤温度相对应的显着变化,1月的最小值为0.4 g CO2 m-2 d-1,6月中旬的最大值为15.0 g CO2 m-2 d-1。在生长季节,观测到的平均土壤CO2排放量为6.6 g CO2 m-2 d-1,在非生长季节为2.8 g CO2 m-2 d-1,平均为6.0 g CO2 m-2 d-1在2个完整衡量的年份中。虽然土壤CO2流出量强烈依赖于土壤温度,与5 cm深度温度的相关性最高,但6月中旬CO2流出量的最大值与叶面积指数(LAI)和活根生物量(LRB)的最大值一致,但与最大值无关。七月的土壤温度。在3月至8月的生长季节中,CO2外排量与LAI和LRB正相关。由于频繁灌溉,土壤水分对土壤CO2排放的影响相对较小。在整个观测的2年中,用土壤温度模拟土壤CO2排放,导致非生长季节的高估和生长季节的低估。考虑到作物物候的影响,分别使用温度依赖指数模型来拟合生长季节和非生长季节的二氧化碳排放量。这种变化增加了所解释的季节性变化的7.5%,并提供了更准确的土壤CO2排放预测。 Q10值在生长期为2.0,非生长期为2.5。据估计,该地点每年因土壤呼吸而损失的C总量为579+或13 g C m-2。结果表明,土壤温度是控制土壤CO2流出量随时间变化的决定因素,而作物物候改变了不同生长时期土壤CO2流出量的温度依赖性。我们的结果还表明,可以通过利用农田生态系统的生长季和非生长季的CO 2外排关系之间的差异来近似估计生长季的根呼吸。

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