城市化、工业化、机动化的高速推进以及大气活性物质的大量排放,使得长江三角洲地区在夏秋季节面临严峻的以高浓度O3为典型特征的光化学污染问题.然而,O3与其前体物之间的高度非线性反应过程使得其来源识别变得十分复杂,因此针对高浓度O...城市化、工业化、机动化的高速推进以及大气活性物质的大量排放,使得长江三角洲地区在夏秋季节面临严峻的以高浓度O3为典型特征的光化学污染问题.然而,O3与其前体物之间的高度非线性反应过程使得其来源识别变得十分复杂,因此针对高浓度O3的控制途径仍不清楚.本文以2013年7月长三角地区发生的一次持续时间长、波及范围广、强度高的高浓度O3污染过程为研究案例,基于CAMx空气质量数值模型中耦合的臭氧来源追踪方法(OSAT),采用物种示踪的方法对长三角3个代表性城市上海、苏州、杭州近地面O3的污染来源开展了模拟研究,探讨了4个源区(上海、浙北、苏南和长距离输送)、7类排放源(工业锅炉和窑炉、生产工艺过程、电厂、生活源、流动源、挥发源和天然源)对上海、苏州和杭州城区地面O3的浓度贡献.研究结果表明:长距离输送以及区域背景产生的O3约在20×10-9~40×10-9(体积分数)之间;加上上海及苏南、浙北地区排放的前体物在长三角城区地区二次生成O3,可使O3上升至40×10-9~100×10-9(体积分数)乃至更高.模拟时段内日间8 h O3浓度的地区贡献分析结果显示,长距离传输对于上海、苏州、杭州的浓度贡献分别为42.79%±10.17%、48.57%±9.97%和60.13%±7.11%;上海城区O3来源中,上海本地污染贡献平均为28.94%±8.49%,浙北地区贡献约19.83%±10.55%;苏州城区O3来源中,苏南地区贡献约26.41%±6.80%;杭州城区O3来源中,浙北地区贡献约29.56%±8.33%.从各受点日最大O3小时浓度贡献来看,长距离传输贡献比例显著下降(35.35%~58.04%),而本地污染贡献上升.区域各类污染源贡献分析结果表明,长三角地区对O3污染贡献最为突出的几类污染源分别是工业锅炉和窑炉(浓度贡献约18.4%~21.11%)、生产工艺过程(19.85%~28.46%)、流动源(21.30%~23.51%)、天然源(13.01%~17.07%)和电厂排放(7.08%~9.75%).研究结果表明,工业燃�展开更多
Based on the observation by a Regional Air Quality Monitoring Network including 16 monitoring stations, temporal and spatial variations of ozone (O3), NO2 and total oxidant (Ox) were analyzed by both linear regres...Based on the observation by a Regional Air Quality Monitoring Network including 16 monitoring stations, temporal and spatial variations of ozone (O3), NO2 and total oxidant (Ox) were analyzed by both linear regression and cluster analysis. A fast increase of regional O3 concentrations of 0.86 ppbWyr was found for the annual averaged values from 2006 to 2011 in Guangdong, China. Such fast O3 increase is accompanied by a correspondingly fast NOx reduction as indicated by a fast NO2 reduction rate of 0,61 ppbV/yr. Based on a cluster analysis, the monitoring stations were classified into two major categories - rural stations (non-urban) and suburban/urban stations. The 03 concentrations at rural stations were relatively conserved while those at suburban/urban stations showed a fast increase rate of 2.0 ppbV/yr accompanied by a NO2 reduction rate of 1.2 ppbV/yr. Moreover, a rapid increase of the averaged O3 concentrations in springtime (13%/yr referred to 2006 level) was observed, which may result from the increase of solar duration, reduction of precipitation in Guangdong and transport from Eastern Central China. Application of smog production algorithm showed that the photochemical O3 production is mainly volatile organic compounds (VOC)-controlled. However, the photochemical O3 production is sensitive to both NOx and VOC for O3 pollution episode. Accordingly, it is expected that a combined NOx and VOC reduction will be helpful for the reduction of the O3 pollution episodes in Pearl River Delta while stringent VOC emission control is in general required for the regional O3 pollution control.展开更多
文摘城市化、工业化、机动化的高速推进以及大气活性物质的大量排放,使得长江三角洲地区在夏秋季节面临严峻的以高浓度O3为典型特征的光化学污染问题.然而,O3与其前体物之间的高度非线性反应过程使得其来源识别变得十分复杂,因此针对高浓度O3的控制途径仍不清楚.本文以2013年7月长三角地区发生的一次持续时间长、波及范围广、强度高的高浓度O3污染过程为研究案例,基于CAMx空气质量数值模型中耦合的臭氧来源追踪方法(OSAT),采用物种示踪的方法对长三角3个代表性城市上海、苏州、杭州近地面O3的污染来源开展了模拟研究,探讨了4个源区(上海、浙北、苏南和长距离输送)、7类排放源(工业锅炉和窑炉、生产工艺过程、电厂、生活源、流动源、挥发源和天然源)对上海、苏州和杭州城区地面O3的浓度贡献.研究结果表明:长距离输送以及区域背景产生的O3约在20×10-9~40×10-9(体积分数)之间;加上上海及苏南、浙北地区排放的前体物在长三角城区地区二次生成O3,可使O3上升至40×10-9~100×10-9(体积分数)乃至更高.模拟时段内日间8 h O3浓度的地区贡献分析结果显示,长距离传输对于上海、苏州、杭州的浓度贡献分别为42.79%±10.17%、48.57%±9.97%和60.13%±7.11%;上海城区O3来源中,上海本地污染贡献平均为28.94%±8.49%,浙北地区贡献约19.83%±10.55%;苏州城区O3来源中,苏南地区贡献约26.41%±6.80%;杭州城区O3来源中,浙北地区贡献约29.56%±8.33%.从各受点日最大O3小时浓度贡献来看,长距离传输贡献比例显著下降(35.35%~58.04%),而本地污染贡献上升.区域各类污染源贡献分析结果表明,长三角地区对O3污染贡献最为突出的几类污染源分别是工业锅炉和窑炉(浓度贡献约18.4%~21.11%)、生产工艺过程(19.85%~28.46%)、流动源(21.30%~23.51%)、天然源(13.01%~17.07%)和电厂排放(7.08%~9.75%).研究结果表明,工业燃�
基金supported by the National Natural Science Foundation of China(No.21190052,41121004)the Strategic Priority Research Program of the Chinese Academy of Sciences(No.XDB05010500)+1 种基金the National Public Benefit Special Fund for Environmental Protection Research(No.201009001-4)the Special Fund of State Key Joint Laboratory of Environment Simulation and Pollution Control(No.13Z02ESPCP)
文摘Based on the observation by a Regional Air Quality Monitoring Network including 16 monitoring stations, temporal and spatial variations of ozone (O3), NO2 and total oxidant (Ox) were analyzed by both linear regression and cluster analysis. A fast increase of regional O3 concentrations of 0.86 ppbWyr was found for the annual averaged values from 2006 to 2011 in Guangdong, China. Such fast O3 increase is accompanied by a correspondingly fast NOx reduction as indicated by a fast NO2 reduction rate of 0,61 ppbV/yr. Based on a cluster analysis, the monitoring stations were classified into two major categories - rural stations (non-urban) and suburban/urban stations. The 03 concentrations at rural stations were relatively conserved while those at suburban/urban stations showed a fast increase rate of 2.0 ppbV/yr accompanied by a NO2 reduction rate of 1.2 ppbV/yr. Moreover, a rapid increase of the averaged O3 concentrations in springtime (13%/yr referred to 2006 level) was observed, which may result from the increase of solar duration, reduction of precipitation in Guangdong and transport from Eastern Central China. Application of smog production algorithm showed that the photochemical O3 production is mainly volatile organic compounds (VOC)-controlled. However, the photochemical O3 production is sensitive to both NOx and VOC for O3 pollution episode. Accordingly, it is expected that a combined NOx and VOC reduction will be helpful for the reduction of the O3 pollution episodes in Pearl River Delta while stringent VOC emission control is in general required for the regional O3 pollution control.