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Improving source inversion performance of airborne pollutant emissions by modifying atmospheric dispersion scheme through sensitivity analysis combined with optimization model

机译:通过敏感性分析改变大气分散方案来改善空气污染物排放的源反转性能。结合优化模型

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摘要

Estimating accurately airborne pollutant emissions source information (source strength and location) is important for achieving effective air pollution management or adequate emergency responses to accidents. Inversion method is one of the useful tools to identify the source parameters. The atmospheric dispersion scheme has been proven to be the key to determining the source inversion performance by influencing the accuracy of the dispersion models. Modifying the atmospheric dispersion scheme is an important potential method to improve the inversion performance, but this has not been studied previously. To fill this gap, a novel approach for parameter sensitivity analysis combined with an optimization method was proposed to improve the source inversion performance by optimizing empirical scheme. The dispersion coefficients sigma(y) and sigma(z) of the typical BRIGGS scheme under different atmospheric dispersion conditions were optimized and used for air pollutant dispersion and source inversion. The results showed that the prediction performance of the air pollutant concentrations was greatly improved with statistical indices IFBI and NMSE decreased by 0.22 and 2.07, respectively; FAC2 and R increased by 0.10, and 0.08, respectively. For source inversion, the results of the significance analysis suggested that the accuracy in the source strength and location parameter (x0) were both significantly improved by similar to 271% (relative deviation reduced from 60.0% to 16.2%) and similar to 121% (absolute deviation reduced from 27.6 to 12.5 m). The improvement of source strength inversion accuracy was more significant under unstable atmospheric conditions (stability class A, B, and C); the mean absolute relative deviation was reduced by 97.5%. These results can help to obtain more accurate source information and to provide reliable reference for air pollution managements or emergency response to accidents. This study provides a novel and versatile approach to improve estimation performance of pollutant emission sources and enhances our understanding of source inversion. (C) 2021 Elsevier Ltd. All rights reserved.
机译:估计准确的空气污染物排放源信息(源强度和位置)对于实现有效的空气污染管理或对事故充分的紧急响应是重要的。反转方法是识别源参数的有用工具之一。已经证明了大气分散方案是通过影响分散模型的准确性来确定源反转性能的关键。改变大气分散方案是提高反演性能的重要潜在方法,但这尚未研究过。为了填补这种差距,提出了一种与优化方法相结合的参数灵敏度分析的新方法,以通过优化经验方案来改善源反转性能。优化了不同大气分散条件下的典型Briggs方案的分散系数Sigma(Y)和Sigma(Z)并用于空气污染物分散和源反转。结果表明,随着0.22和2.07的统计指标,统计指数大大提高了空气污染物浓度的预测性能。 FAC2和R分别增加0.10和0.08。对于源反转,显着性分析的结果表明,由于271%(相对偏差从60.0%降低至16.2%,因此源强度和位置参数(X0)中的精度显着改善,并且类似于121%(绝对偏差从27.6降至12.5米)。在不稳定的大气条件下,源强度反转精度的提高更为显着(稳定性A类,B和C);平均绝对相对偏差减少了97.5%。这些结果可以有助于获得更准确的源信息,并为空气污染管理或对事故的应急响应提供可靠的参考。本研究提供了一种新颖且多功能的方法,可以提高污染物排放来源的估算性能,提高我们对源反演的理解。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Environmental Pollution》 |2021年第9期|117186.1-117186.12|共12页
  • 作者单位

    Beijing Univ Technol Coll Environm & Energy Engn Key Lab Beijing Reg Air Pollut Control Beijing 100124 Peoples R China;

    Beijing Univ Technol Coll Environm & Energy Engn Key Lab Beijing Reg Air Pollut Control Beijing 100124 Peoples R China|Beijing Univ Technol Beijing Lab Intelligent Environm Protect Beijing 100124 Peoples R China;

    Beijing Univ Technol Coll Environm & Energy Engn Key Lab Beijing Reg Air Pollut Control Beijing 100124 Peoples R China;

    Beijing Univ Technol Coll Environm & Energy Engn Key Lab Beijing Reg Air Pollut Control Beijing 100124 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Source inversion; Atmospheric dispersion coefficients; Sensitivity analysis; Dispersion scheme optimization; Air pollutant emissions;

    机译:源反转;大气分散系数;敏感性分析;分散方案优化;空气污染物排放;

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