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European source and sink areas of CO2 retrieved from Lagrangian transport model interpretation of combined O2 and CO2 measurements at the high alpine research station Jungfraujoch

机译:CO2欧洲源和水槽区域从拉格朗日传输模型解释HIGHFRAUJOCH的高山研究站联合O2和CO2测量的解释

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The University of Bern monitors carbon dioxide (CO2) and oxygen (O2) at the High Altitude Research Station Jungfraujoch since the year 2000 by means of flasks sampling and since 2005 using a continuous in situ measurement system. This study investigates the transport of CO2 and O2 towards Jungfraujoch using backward Lagrangian Particle Dispersion Model (LPDM) simulations and utilizes CO2 and O2 signatures to classify air masses. By investigating the simulated transport patterns associated with distinct CO2 concentrations it is possible to decipher different source and sink areas over Europe. The highest CO2 concentrations, for example, were observed in winter during pollution episodes when air was transported from Northeastern Europe towards the Alps, or during south Foehn events with rapid uplift of polluted air from Northern Italy, as demonstrated in two case studies. To study the importance of air-sea exchange for variations in O2 concentrations at Jungfraujoch the correlation between CO2 and APO (Atmospheric Potential Oxygen) deviations from a seasonally varying background was analyzed. Anomalously high APO concentrations were clearly associated with air masses originating from the Atlantic Ocean, whereas low APO concentrations were found in air masses advected either from the east from the Eurasian continent in summer, or from the Eastern Mediterranean in winter. Those air masses with low APO in summer were also strongly depleted in CO2 suggesting a combination of CO2 uptake by vegetation and O2 uptake by dry summer soils. Other subsets of points in the APO-CO2 scatter plot investigated with respect to air mass origin included CO2 and APO background values and points with regular APO but anomalous CO2 concentrations. Background values were associated with free tropospheric air masses with little contact with the boundary layer during the last few days, while high or low CO2 concentrations reflect the various levels of influence of anthropogenic emissions and the biosphere. The pronounced cycles of CO2 and O2 exchanges with the biosphere and the ocean cause clusters of points and lead to a seasonal pattern.
机译:自2000年以来,伯尔尼大学在高海拔研究站Jungfraujoch中监控二氧化碳(CO2)和氧气(O2),通过烧瓶采样,自2005年使用连续的原位测量系统。本研究通过向后拉格朗日粒子分散模型(LPDM)模拟来研究CO2和O2对Jungfraujoch的运输,并利用CO2和O2签名来分类空气质量。通过研究与不同的CO2浓度相关的模拟传输模式,可以在欧洲解密不同的源和沉没区域。例如,当空气从东北朝鲜到阿尔卑斯山脉运输时,在污染发作期间观察到最高的二氧化碳浓度,或者在两种案例研究中所证明的,在南欧向阿尔卑斯队运输到阿尔卑斯山,或者在南部Foehn活动期间。为研究空中海洋交换的重要性,分析了Jungfraujoch在Jungfraujoch浓度的变化分析了CO2和APO(大气潜在氧气)与季节性不同背景的偏差之间的相关性。异常高的APO浓度明显与来自大西洋的空气群体相关,而在夏季欧亚大陆的空气群体中发现低APO浓度,或者在冬天的东部地中海。在CO2中,夏季含有低APO的那些空气群众也强烈耗尽,表明CO2采用植被和O2通过干燥的夏季土壤的吸收组合。关于空气质量来源研究的APO-CO2散射图中的其他点亚谱包括CO 2和APO背景值,具有常规APO但异常的CO2浓度。背景技术与最近几天内与边界层接触几乎没有与边界层接触的相关的值,而高或低二氧化碳浓度反映了人为排放和生物圈的各种影响。与生物圈和海洋交流的二氧化碳和O2交换的明显循环导致积分集群并导致季节性模式。

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