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Species correlation measurements in turbulent flare plumes: considerations for field measurements

机译:湍流闪烁中的物种相关测量:现场测量的注意事项

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Field measurement of flare emissions in turbulent flare plumes is an important and complex challenge. Incomplete combustion from these processes results in emissions of black carbon, unburnt fuels (methane), CO 2 , and other pollutants. Many field measurement approaches necessarily assume that combustion species are spatially and/or temporally correlated in the plume, such that simple species ratios can be used to close a carbon balance to calculate species emission factors and flare conversion efficiency. This study examines the veracity of this assumption and the associated implications for measurement uncertainty. A novel tunable diode laser absorption spectroscopy (TDLAS) system is used to measure the correlation between H 2 O and black carbon (BC) volume fractions in the plumes of a vertical, turbulent, non-premixed, buoyancy-driven lab-scale gas flare. Experiments reveal that instantaneous, path-averaged concentrations of BC and H 2 O can vary independently and are not necessarily well correlated over short time intervals. The scatter in the BC / H 2 O ratio along a path through the plume was well beyond that which could be attributed to measurement uncertainty and was asymmetrically distributed about the mean. Consistent with previous field observations, this positive skewness toward higher BC / H 2 O ratios implies short, localized, and infrequent bursts of high BC production that are not well correlated with H 2 O . This demonstrates that the common assumption of fixed species ratios is not universally valid, and measurements based on limited samples, short sampling times, and/or limited spatial coverage of the plume could be subject to potentially large added uncertainty. For BC emission measurements, the positive skewness of the BC / H 2 O ratio also suggests that results from small numbers of samples are more likely to be biased low. However, a bootstrap analysis of the results shows how these issues can be avoided with sufficient sample size and provides initial guidance for creating sampling protocols for future field measurements using analogous path-averaged techniques.
机译:湍流喇叭口爆发中耀斑排放的现场测量是一个重要而复杂的挑战。这些过程的不完全燃烧导致黑碳排放,燃料燃料(甲烷),二氧化碳和其他污染物。许多场测量方法必须假设燃烧物种在空间上和/或在羽流中逐时地相关,使得简单的物种比率可用于缩小碳平衡以计算物种排放因子和闪光转换效率。本研究探讨了这种假设的真实性以及对测量不确定性的相关影响。一种新型可调二极管激光吸收光谱(TDLAS)系统用于测量垂直,湍流,非预混的浮力驱动的实验室爆发型羽毛中H 2 O和黑碳(BC)体积分数之间的相关性。实验表明,BC和H 2 O的瞬时,路径平均浓度可以独立变化,并且在短时间间隔内不一定地相关。沿着通过羽流的路径的BC / H 2 O比的散射远远超出了可能归因于测量不确定度并且在截止上的围绕上的性分布。与先前的现场观察一致,这种朝向更高的BC / H 2 o比率意味着短,局部化和不常见的高BC产生突发,其与H 2 O不完全相关。这表明固定物种比率的共同假设不是普遍有效的,并且基于有限的样品,短的采样时间和/或流量的限量空间覆盖的测量可能受到潜在的大增加不确定性。对于BC发射测量,BC / H 2 O比的正偏振也表明,少量样品的结果更可能被偏置低。但是,结果的引导分析显示了如何用足够的样本大小避免这些问题,并提供使用类似路径平均技术创建用于未来现场测量的采样协议的初始指导。

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