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空气质量监测的多目标优化

Multi-objective optimization of air quality monitoring.

作者信息

Sarigiannis Dimosthenis A, Saisana Michaela

机构信息

Joint Research Centre, European Commission, via Enrico Fermi 1, 21020 Ispra, VA, Italy.

出版信息

Environ Monit Assess. 2008 Jan;136(1-3):87-99. doi: 10.1007/s10661-007-9725-z. Epub 2007 May 11.

Abstract

A new method for multi-objective optimization of air quality monitoring systems based on satellite remote sensing of the troposphere is described in this work. The technique uses atmospheric turbidity as surrogate for air pollution loading. Through inverse chemical modeling and ancillary information the respective patterns of primary gaseous and particle pollutants are inferred. The optimization algorithm uses the resulting maps of ambient air pollution as input. It focuses on the gain of information with regard to human exposure to high pollution, potential impact on cultural heritage, compliance to ambient air quality standards, monitoring key point and area source emissions, as well as on the associated cost. Application of the method in Brescia, Italy showed its significant potential for improving the cost-effectiveness of air quality monitoring networks at the urban and regional scales.

摘要

本文介绍了一种基于对流层卫星遥感的空气质量监测系统多目标优化新方法。该技术使用大气浑浊度作为空气污染负荷的替代指标。通过逆向化学建模和辅助信息推断出主要气态和颗粒物污染物的各自模式。优化算法将由此产生的环境空气污染地图作为输入。它侧重于获取有关人类暴露于高污染环境、对文化遗产的潜在影响、符合环境空气质量标准、监测关键点和区域源排放以及相关成本等方面的信息。该方法在意大利布雷西亚的应用表明,它在提高城市和区域尺度空气质量监测网络的成本效益方面具有巨大潜力。

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