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Assessment of the backward Lagrangian Stochastic dispersion technique for continuous measurements of CH emissions

机译:用于连续测量CH排放的后向拉格朗日随机分散技术的评估

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Continuous measurements of methane (CH) emissions from agricultural facilities over a period of several days are needed to assess the mitigation effectiveness of management practices. In this study, we examined the feasibility of using an inverse dispersion technique (backward Lagrangian Stochastic model, bLS) for obtaining 15-min averages of CH emissions over a period of 5 days in the Ottawa area. Using two open-path lasers and pan-tilt scanning units, a ground level source was enclosed to measure the CH emissions (Q) with any wind direction. After application of the recommended data quality criteria screening for low friction velocity and extreme atmospheric stability, the average recovery (ratio of estimates Q bLS to Q) was 1.09 with a standard deviation of 0.45. We observed a tendency in the recovery results toward underestimation during unstable stratification and overestimation during stable stratification. Using a test on developed turbulence instead of a fixed friction velocity threshold improved the accuracy of the emission estimates slightly. An additional data quality criterion based on the standard deviation output of the bLS model led to a significant improvement with a recovery of 1.00 and a standard deviation of 0.30. A strategy for averaging the resulting incomplete dataset is discussed. An assessment of the applicability of this approach to farm-size facilities led to the conclusion that this technique is suitable to determine emissions from realistic CH sources, such as dairy cattle barns, continuously in order to characterize both seasonal and diurnal characteristics of CH emissions.
机译:需要连续几天来测量农业设施中甲烷(CH)的排放量,以评估管理措施的缓解效果。在这项研究中,我们研究了使用反向扩散技术(反向拉格朗日随机模型,bLS)在渥太华地区获得为期5天的15分钟内CH排放平均值的可行性。使用两个开放路径激光器和云台扫描单元,封闭了一个地平面源,以测量任何风向的CH排放量(Q)。应用针对低摩擦速度和极端大气稳定性的推荐数据质量标准筛选后,平均回收率(估计值Q bLS与Q的比率)为1.09,标准偏差为0.45。我们观察到在不稳定分层期间恢复结果趋向于低估而在稳定分层过程中趋向于高估。使用湍流试验代替固定的摩擦速度阈值可以稍微提高排放估算的准确性。基于bLS模型的标准偏差输出的其他数据质量标准导致显着改善,恢复率1.00,标准偏差为0.30。讨论了平均所得不完整数据集的策略。对这种方法在农场规模的设施中的适用性进行评估后得出结论,该技术适用于连续确定实际CH排放源(例如奶牛舍)的排放,以表征CH排放的季节性和昼夜特征。

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