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Emulation and Sensitivity Analysis of the Community Multiscale Air Quality Model for a UK Ozone Pollution Episode

机译:英国臭氧污染情节的社区多尺度空气质量模型的仿真和敏感性分析

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摘要

Gaussian process emulation techniques have been used with the Community Multiscale Air Quality model, simulating the effects of input uncertainties on ozone and NO_2 output, to allow robust global sensitivity analysis (SA). A screening process ranked the effect of perturbations in 223 inputs, isolating the 30 most influential from emissions, boundary conditions (BCs), and reaction rates. Community Multiscale Air Quality (CMAQ) simulations of a July 2006 ozone pollution episode in the UK were made with input values for these variables plus ozone dry deposition velocity chosen according to a 576 point Latin hypercube design. Emulators trained on the output of these runs were used in variance-based SA of the model output to input uncertainties. Performing these analyses for every hour of a 21 day period spanning the episode and several days on either side allowed the results to be presented as a time series of sensitivity coefficients, showing how the influence of different input uncertainties changed during the episode. This is one of the most complex models to which these methods have been applied, and here, they reveal detailed spatiotemporal patterns of model sensitivities, with NO and isoprene emissions, NO_2 photolysis, ozone BCs, and deposition velocity being among the most influential input uncertainties.
机译:高斯过程仿真技术已与Community Multiscale空气质量模型一起使用,模拟了输入不确定性对臭氧和NO_2的影响,从而可以进行可靠的全局灵敏度分析(SA)。筛选过程对223个输入中的扰动效果进行了排名,从排放,边界条件(BCs)和反应速率中分离出30个最具影响力的元素。根据这些变量的输入值加上根据576点拉丁超立方设计选择的臭氧干沉降速度,对英国2006年7月发生的臭氧污染事件进行了社区多尺度空气质量(CMAQ)模拟。对这些运行的输出进行训练的仿真器用于模型输出的基于方差的SA中,以输入不确定性。在整个发作期间的21天期间的每一小时以及在两侧的每一天进行这些分析,可以将结果显示为敏感性系数的时间序列,显示了发作期间不同输入不确定性的影响是如何变化的。这是应用了这些方法的最复杂的模型之一,在这里,它们揭示了模型敏感性的详细时空模式,其中NO和异戊二烯排放,NO_2光解,臭氧BC和沉积速度是影响最大的输入不确定性之一。

著录项

  • 来源
    《Environmental Science & Technology》 |2017年第11期|6229-6236|共8页
  • 作者单位

    King's College London, Waterloo, London, SEl 8WA, United Kingdom;

    King's College London, Waterloo, London, SEl 8WA, United Kingdom;

    King's College London, Waterloo, London, SEl 8WA, United Kingdom;

    King's College London, Waterloo, London, SEl 8WA, United Kingdom;

  • 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

  • 入库时间 2022-08-17 13:57:38

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