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Uncertainty analysis of eddy covariance CO2 flux measurements for different EC tower distances using an extended two-tower approach

机译:使用扩展的两塔法对不同EC塔距进行涡流协方差CO2通量测量的不确定度分析

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摘要

The use of eddy covariance (EC) CO2 flux measurements in data assimilation and other applications requires an estimate of the random uncertainty. In previous studies, the (classical) two-tower approach has yielded robust uncertainty estimates, but care must be taken to meet the often competing requirements of statistical independence (non-overlapping footprints) and ecosystem homogeneity when choosing an appropriate tower distance. The role of the tower distance was investigated with help of a roving station separated between 8 m and 34 km from a permanent EC grassland station. Random uncertainty was estimated for five separation distances with the classical two-tower approach and an extended approach which removed systematic differences of CO2 fluxes measured at two EC towers. This analysis was made for a data set where (i) only similar weather conditions at the two sites were included, and (ii) an unfiltered one. The extended approach, applied to weather-filtered data for separation distances of 95 and 173 m gave uncertainty estimates in best correspondence with an independent reference method. The introduced correction for systematic flux differences considerably reduced the overestimation of the two-tower based uncertainty of net CO2 flux measurements and decreased the sensitivity of results to tower distance. We therefore conclude that corrections for systematic flux differences (e.g., caused by different environmental conditions at both EC towers) can help to apply the two-tower approach to more site pairs with less ideal conditions.
机译:在数据同化和其他应用中使用涡度协方差(EC)CO2通量测量需要估算随机不确定性。在以前的研究中,(经典)两塔方法得出了可靠的不确定性估计值,但是在选择合适的塔距时,必须注意满足经常相互竞争的统计独立性(不重叠足迹)和生态系统均匀性的要求。塔架距离的作用是通过与永久EC草地站相距8 m至34 km的巡回站进行的。使用经典的两塔方法和扩展的方法估计了五个分离距离的随机不确定性,该方法消除了在两个EC塔上测得的CO2通量的系统差异。此分析是针对一个数据集进行的,其中(i)仅包括两个站点的相似天气条件,以及(ii)未过滤的天气条件。将扩展方法应用于天气过滤的数据(分隔距离为95和173 m)时,可以通过独立参考方法最佳地确定不确定性。引入的针对系统通量差异的校正大大减少了基于两塔的净CO2通量测量不确定性的过高估计,并降低了结果对塔距的敏感性。因此,我们得出结论,对系统通量差异的校正(例如,由两个EC塔的不同环境条件引起的校正)可以帮助将两塔方法应用于条件条件较差的更多站点对。

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