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Strong seasonal disequilibrium measured between the oxygen isotope signals of leaf and soil CO exchange

机译:在叶片的氧同位素信号与土壤CO交换之间测得的强烈季节性不平衡

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The oxygen isotope composition (tp#iO) of atmospheric CO is among a very limited number of tools available to constrain estimates of the biospheric gross CO fluxes, photosynthesis and respiration at large scales. However, the accuracy of the partitioning strongly depends on the extent of isotopic disequilibrium between the signals carried by these two gross fluxes. Chamber-based field measurements of total CO and COp#iO fluxes from foliage and soil can help evaluate and refine our models of isotopic fractionation by plants and soils and validate the extent and pattern of isotopic disequilibrium within terrestrial ecosystems. Owing to sampling limitations in the past, such measurements have been very rare and covered only a few days. In this study, we coupled automated branch and soil chambers with tuneable diode laser absorption spectroscopy techniques to continuously capture the tp#iO signals of foliage and soil CO exchange in a Pinus pinaster Act forest in France. Over the growing season, we observed a seasonally persistent isotopic disequilibrium between the tp#iO signatures of net CO fluxes from leaves and soils, except during rain events when the isotopic imbalance became temporarily weaker. Variations in the tp#iO of CO exchanged between leaves, soil and the atmosphere were well explained by theory describing changes in the oxygen isotope composition of ecosystem water pools in response to changes in leaf transpiration and soil evaporation.
机译:大气CO的氧同位素组成(tp#iO)是可用于限制生物圈总CO通量,光合作用和呼吸作用的大规模估计的工具之一。但是,划分的准确性很大程度上取决于这两个总通量所携带的信号之间的同位素不平衡程度。基于叶面和土壤中总CO和COp#iO通量的基于室的野外测量可以帮助评估和完善我们的植物和土壤同位素分馏模型,并验证陆地生态系统内同位素不平衡的程度和模式。由于过去的采样限制,此类测量非常罕见,仅覆盖了几天。在这项研究中,我们将自动分支和土壤室与可调谐二极管激光吸收光谱技术相结合,以连续捕获法国Pinus pinaster Act森林中的叶子和土壤CO交换的tp#iO信号。在生长季节中,我们观察到了从叶子和土壤中产生的净CO通量的tp#iO特征之间的季节性持续同位素失衡,除非在降雨期间同位素同位素失衡暂时减弱。通过描述生态系统水池中的氧同位素组成随叶蒸腾和土壤蒸发变化而变化的理论,可以很好地解释叶片,土壤和大气之间交换的CO的tp#10的变化。

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