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A GIS-based multi-source and multi-box modeling approach(GMSMB) for air pollution assessment: A North American case study

机译:基于GIS的多源多箱建模方法(GMSMB)用于空气污染评估:北美案例研究

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This article presents a GIS-based multi-source and multi-box modeling approach (GMSMB) to predict the spatial concentration distributions of airborne pollutant on local and regional scales. In this method, an extended multi-box model combined with a multi-source and multi-grid Gaussian model are developed within the GIS framework to examine the contributions from both point-and area-source emissions. By using GIS, a large amount of data including emission sources, air quality monitoring, meteorological data, and spatial location information required for air quality modeling are brought into an integrated modeling environment. It helps more details of spatial variation in source distribution and meteorological condition to be quantitatively analyzed. The developed modeling approach has been examined to predict the spatial concentration distribution of four air pollutants (CO, NO_2, SO_2 and PM_(2.5)) for the State of California. The modeling results are compared with the monitoring data. Good agreement is acquired which demonstrated that the developed modeling approach could deliver an effective air pollution assessment on both regional and local scales to support air pollution control and management planning.
机译:本文提出了一种基于GIS的多源多箱建模方法(GMSMB),以预测局部和区域尺度上的空气传播污染物的空间浓度分布。在这种方法中,在GIS框架内开发了结合多源和多网格高斯模型的扩展多箱模型,以检查点源和面源排放的贡献。通过使用GIS,将空气质量建模所需的大量数据(包括排放源,空气质量监测,气象数据和空间位置信息)引入了集成的建模环境。它有助于对源分布和气象条件的空间变化的更多细节进行定量分析。已经研究了开发的建模方法,以预测加利福尼亚州四种空气污染物(CO,NO_2,SO_2和PM_(2.5))的空间浓度分布。将建模结果与监控数据进行比较。获得了良好的协议,这表明开发的建模方法可以在区域和地方范围内进行有效的空气污染评估,以支持空气污染控制和管理规划。

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