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Surveillance efficiency evaluation of air quality monitoring networks for air pollution episodes in industrial parks: Pollution detection and source identification

机译:工业园区空气质量监测空气质量监测网络的监测效率评估:污染检测与来源识别

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摘要

Both air pollution detection and source identification for air pollution episodes are highly desirable for detecting and controlling industrial air pollution. Surveillance of air pollution episodes in industrial parks is the focus of this article. The surveillance in this study consists of air pollution detection and subsequent source identification. The Gaussian puff model is applied to simulate the dispersion of air pollution, and the source area analysis method is used to reconstruct unknown source terms. A case study involving hydrogen sulfide emissions in a typical chemical industrial park is presented. The long-term efficiencies of both pollution detection and source identification of a developing planning of boundary-type air quality monitoring network (AQMN) are evaluated. Five typical scenarios are identified for the evaluation. Moreover, several key factors for the surveillance efficiency variation (i.e., meteorological conditions, monitor number and distance between sources) are discussed. The efficiency of pollution detection increases with the number of monitors. The efficiency of source identification increases with the number of monitors and the distance between sources.
机译:空气污染检测和空气污染事件的源识别都非常需要检测和控制工业空气污染。对工业园区空气污染事件的监视是本文的重点。本研究中的监视包括空气污染检测和随后的源识别。应用高斯吹气模型模拟空气污染的扩散,并采用源面积分析法重建未知源项。本文介绍了一个在典型化学工业园区中涉及硫化氢排放的案例研究。评估了边界型空气质量监测网络(AQMN)的发展规划中污染检测和源识别的长期效率。确定了五个典型方案进行评估。此外,讨论了监视效率变化的几个关键因素(即气象条件,监视数量和源之间的距离)。污染检测的效率随监视器数量的增加而增加。信号源识别的效率随监视器数量和信号源之间的距离而增加。

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