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1.
为了研究北京地区PM2.5与空气污染物的质量浓度关系。从PM2.5监测网收集2013-04-01~2014-05-15期间PM2.5、PM10、SO2、NO2、CO、O3等主要空气污染物数据,用多元线性回归模型建立PM2.5与空气污染物的质量浓度关系。结果表明:北京地区PM2.5与空气污染物PM10、SO2、NO2、CO、O3的质量浓度相关系数分别为0.9172、0.6332、0.7683、0.8166和-0.1797,优化的拟合方程为:[PM2.5]=-22.5925+0.569109×[PM10]+23.94913×[CO]+0.113025×[BPM2.5],模型的估算值与观测值相关系数为0.9426,此方程能较好地模拟北京地区的PM2.5质量浓度。  相似文献   

2.
利用2014年广东南岭背景站、天湖郊区站、磨碟沙城区站和受体区域桃源站SO2、NO2、PM10、O3、PM2.5与CO自动监测数据,分析不同环境大气污染特性。结果表明,4个站点的SO2、NO2、PM10与CO整体平均年均值较低,分别为14,28,59μg/m3和0.7 mg/m3;PM2.5整体平均值为36μg/m3,O3日最大8 h第90百分位数平均值为172μg/m3,二者高于国家二级标准限值。磨碟沙城区站和桃源站的污染物日变化规律较为明显,NO2、PM10和PM2.5在早晚交通高峰或紧接其后的时段出现峰值区。南岭背景站PM2.5质量浓度日间略高于夜间;O3未呈典型单峰分布,而是维持在较平稳、较高浓度水平。周末与工作日O3平均值的相对高低多与NO2、PM10和PM2.5的情况相反。4个站点O3日最大8 h值第90百分位数均未达标;南岭背景站和天湖郊区站O3值尤高,除10月外,在1月或6月也易出现O3高值。区域性的O3污染控制亟须深化开展。  相似文献   

3.
为全面了解太原市的环境空气质量状况及污染物的时间变化规律,本文选取太原市8个站点2013年1月至12月六种主要污染物(SO2、NO2、PM10、CO、O3、PM2.5)为期一年的监测数据,评价该市2013年环境空气质量的总体情况,研究各污染物在不同时间尺度的变化特征及相互之间的关系。结果表明,2013年太原市环境空气质量以良和轻度污染为主,首要污染物主要为PM2.5和PM10;SO2、NO2、PM10、CO和PM2.5的小时变化规律较为一致,都呈现"双峰型"的变化特征,O3则呈显著的"单峰型"变化规律;上述六种污染物具有明显的季节变化特征,SO2的浓度峰值主要集中在供暖期,NO2和O3—8h浓度在夏季要高于其他季节,PM10的浓度峰值出现在春季(3月)和秋季(10月),CO的浓度峰值集中在11月和12月,PM2.5的浓度峰值主要集中在冬季;相关性分析结果表明,SO2、NO2、PM10、CO、PM2.5浓度日均值在全年各时段均具有很好的正相关性,化石燃料的燃烧可能是上述污染物质的共同来源。  相似文献   

4.
环境空气质量综合指数计算方法比选研究   总被引:1,自引:0,他引:1  
环境空气质量综合指数是进行逐月城市环境空气质量比较和排序的重要方法,提出了4种涵盖SO2、NO2、PM10、PM2.5、CO、O3等6项污染物的综合指数计算方法,基于2013年74个城市逐月污染物浓度数据使用主成分分析方法进行了对比分析。结果表明,综合指数计算方法中污染物统计指标和标准化方法不同对于主要污染物的判定有重要影响,各种计算方法中PM2.5、PM10、O3是出现频率最多的主要污染物;除O3外其他5项污染物逐月统计指标间均有极显著的正相关性,冬季O3统计指标与SO2、NO2、PM10、PM2.5呈显著负相关,夏季则呈显著正相关;主成分分析结果表明,在去除冗余信息后,PM2.5、PM10的权重被相对削弱,SO2、NO2、CO的权重得到相对强化,O3的权重夏季得到强化、冬季被削弱;综合考虑不同方案下主要污染物频率分布情况和PM2.5、PM10、O3权重变化特征,建议计算逐月环境空气质量综合指数时,SO2、NO2、PM10、PM2.5宜以月均值除以年均值标准进行标准化,CO、O3宜以特定百分位数浓度除以日均值标准(或8 h均值标准)进行标准化;该方法可延伸到季、半年和年度的环境空气质量综合指数计算。  相似文献   

5.
利用统计学和GIS方法对2016年武汉市各区不同污染物的时空分布特征及相关性进行分析。结果表明:武汉市大气污染季节性特征明显,春季和冬季颗粒物(PM2.5、PM10)及NO2污染突出,夏季O3污染严重。污染物空间差异显著,主城区和东西湖区颗粒物及NO2污染严重,郊区O3污染严重。平均气温、平均水汽压与SO2、NO2、CO、PM2.5和PM10均呈显著负相关,而与O3呈显著正相关;降水量与SO2、NO2和CO呈显著负相关。  相似文献   

6.
宜昌市城区灰霾天气成因分析研究   总被引:5,自引:1,他引:4  
从灰霾天气形成的可能影响因素出发,根据长期的气象和环保观测资料,将近10年来宜昌市城区逆温层与等温层、降水日、风速风向、环境空气质量优良天数、可吸入性颗粒物(PM10)年均值、二氧化硫(SO2)年均值、二氧化氮(NO2)年均值的观测值与灰霾日观测值进行相关分析,并分析了宜昌市城区环境污染的气象化学作用,揭示出宜昌市城区灰霾天气成因主要是与不利扩散和降解的气象化学作用有关,与目前环境空气质量监测的PM10、SO2、NO2三个指标无明显相关关系,而与细粒子、气溶胶污染有关。  相似文献   

7.
基于城市超级站对2018年12月—2019年2月南京市在线水溶性离子污染特征进行研究。结果表明:监测期间水溶性无机离子(WSIs)质量浓度均值为45.7μg/m3,占PM2.5的67.8%,各离子排序为NO3-> SO42->NH4+>Cl->K+>Ca2+>Na+>Mg2+。二次离子(SNA)是PM2.5主要组分,大气气溶胶呈中性。各离子日变化存在差异,SNA变化趋势和WSIs基本一致。南京市冬季存在明显SO2和NO2向SO42-和NO3-二次转化;NO3-/SO42-均值为1.96,移动源增量大于固定源。通过相关性和三相聚类分析可知,SNA主要结合方式为(NH4)2SO4和NH4NO3。主成分分析表明,南京市冬季PM2.5中水溶性离子主要来源是二次转化,燃煤、生物质燃烧和土壤建筑扬尘也有贡献。  相似文献   

8.
根据天津市秋季(2006年10月10日~20日)消光系数(bext)、PM2.5、SO2、NOX、NO2、O3质量浓度及相对湿度监测结果,利用灰色关联分析法分析大气消光系数同空气中的几种主要污染要素的相关性。结果表明,与消光系数有关的几种主要指标的灰关联度序为PM2.5NOXRHNO2O3,其中PM2.5与消光系数的灰关联系数达到0.905,远高于其他相关指标。同时对PM2.5和消光系数相关分析表明,监测期间天津市PM2.5质量消光系数为6.04m2/g。  相似文献   

9.
为探究典型燃煤工业城市邯郸市的大气细颗粒物(PM2.5)污染水平及水溶性无机离子特征,于2016年1—12月采集了当地大气PM2.5样品,然后利用离子色谱法测得水溶性无机离子的组分,分析了不同季节水溶性无机离子随PM2.5的浓度变化特征。通过对PM2.5中的阴离子、阳离子进行分析发现,SO4^2-、NO3^-和NH4^+在春夏秋冬四季均为PM2.5中的主要离子成分,SO4^2-、NO3^-和NH4^+的浓度之和在春夏秋冬四季占各季节总的水溶性无机离子浓度的百分比分别为84.6%、77.4%、89.9%、62.5%。其中,在春季和冬季含量最高的3种离子分别是NO3^-、SO4^2-和NH4^+,夏季含量最高的3种离子分别是SO4^2-、NH4^+和NO3^-,而秋季含量最高的3种离子分别是NH4^+、SO4^2-和NO3^-。相关性分析发现,2016年春季、夏季和秋季PM2.5为酸性,冬季为碱性。SO4^2-、NO3^-、NH4^+浓度分析表明,冬季PM2.5中的一次建筑扬尘排放较多。通过主成分分析法得出,PM2.5中水溶性无机离子主要来源于二次转化和生物质燃烧。  相似文献   

10.
为了解泰州市冬季空气质量变化特征,于2013年12月27日—2014年1月7日对NO2,SO2,O3,CO,PM10和PM2.5进行了监测,结合地面气象资料和HYSPLIT轨迹模式分析了污染物的来源与传输过程。结果表明,观测期间AQI优良率仅为25%,PM10和PM2.5日均值超标率分别为58.3%,75.0%;有机碳是泰州市ρ(PM2.5)中最高的化学组分,其次是富钾和元素碳。PM2.5主要来源为汽车尾气、工业源、燃煤,分别占来源比例21.76%,16.52%,15.54%。局地污染源和不利气象条件是造成大气污染的主要原因。  相似文献   

11.
选取2015年1—8月江苏地区NAQPMS、CMAQ、CAMx、WRF-Chem 4个模式预报结果与实测值进行比对分析,结果表明,标准化分数偏差(MFB)为-0.066 5~0.201 1,标准化分数误差(MFE)最大值为0.381 8,均在理想范围内,其中CAMx预报效果相对较好,WRF-Chem有一定误差。4个模式相比,NAQPMS对于PM_(10)的模拟性能较好,各模式对PM_(2.5)模拟性能相近,CMAQ和CAMx对O_3模拟较好,WRF-Chem对CO模拟较好,各模式对SO_2和NO_2的模拟都需进一步优化。  相似文献   

12.
利用2015年环境空气质量监测数据,对天津市OPAQ空气质量统计预报模型预测效果进行验证评估。结果表明,模型对天津市AQI和PM_(2.5)、PM_(10)、O_3、NO——2的预测结果与实测结果具有较好的趋势一致性,且预测时间越临近,拟合度越好,24 h预报的相关系数r全部达到0.8以上。对PM_(2.5)的预报性能明显优于PM_(10)、O_3和NO_2,PM_(2.5)平均值预测略呈正偏差,但重污染预测值偏低约15%;O_3和NO_2预测值呈明显负偏差,O_3峰值预测不足,NO_2预测值整体偏低,均以24 h预报趋势性最好,但负偏差最为突出。  相似文献   

13.
The Helsinki Metropolitan Area Council (YTV) is responsible for air quality monitoring in the Helsinki area. Air quality has been monitored periodically since the late 1950s. An automatic SO2 monitoring network was constructed in 1975 and TSP measurements were added in 1978. Since then the network has been expanded and currently five automatic multicomponent stations form the basis of the network monitoring SO2, NO, NO2, CO, PM10 and O3 concentrations. Manual TSP and PM10 measurements are also conducted. Mobile monitoring units are also being used as well as special measurement campaigns. The effects of air pollution on nature are studied in bioindicator monitoring. An air quality index is used in order to inform the public of the current air quality situation. Changes in air quality are reflected in monitoring strategy. SO2 concentrations have decreased in the past two decades. Annual averages in 1995 were at or below 5 µg/m3. Traffic is the major source for pollutants even though catalytic converters have lowered traffic emissions somewhat. The highest annual average NO2 concentration at an urban site was 49 µg/m3 in 1995, and there has been no clear change in NO2 levels. There has been a decreasing trend in CO concentrations. Maximum annual TSP and PM10 averages in 1995 were 92 and 32 µg/m3, respectively. The highest average lead concentration was 0.01 µg/m3. Elevated concentrations are experienced from time to time. During the spring daily TSP and PM10 concentrations can go up to around 300 and 150 µg/m3, respectively. This is caused by resuspension mainly due to street sanding. Also a major winter NO2 episode occurred in December 1995. The highest hourly NO2 concentrations reached 400 µg/m3.  相似文献   

14.
Determination of O3, NO2, SO2, CO and PM10 measured in Belgrade urban area   总被引:1,自引:0,他引:1  
O(3), NO(2), SO(2), CO and PM(10) concentrations, simultaneously determined for the first time in Belgrade urban area in the autumnal period of 2005, are presented. The obtained results display similar behaviour of SO(2), NO(2), CO, PM(10) opposite from that of O(3). The weekend effect was also investigated showing diminution of average daily concentrations of SO(2), NO(2), PM(10) and CO for 72, 40, 37 and 42% respectively, and increase of the average daily concentration of O(3) for 56%. Influence of meteorological conditions on observed concentration levels was studied, too. The observed influence of wind speed on the O(3) nightly concentration levels was analyzed pointing to the phenomena of O(3) transport during episodic measurements. To make an identification of possible pollution sources and analyse the influence of meteorological parameters on pollution levels, air back trajectories for high level concentrations episodes were calculated and analysed. A multivariate receptor modelling (Principal Component Analysis, Cluster Analysis) has been applied to a set of data in order to determine the contribution of different sources. It was found that the main principal components, extracted from the air pollution data, were related to gasoline combustion, oil combustion and ozone transport.  相似文献   

15.
根据南通市2016和2017年冬季大气多参数站自动监测PM2.5数据和在线离子色谱分析仪Marga监测的PM2.5中水溶性离子数据,分析了南通市冬季PM2.5中水溶性离子污染特征。结果表明,南通市2016和2017年冬季,ρ(PM2.5)分别为58和54μg/m 3,均高出其年均值(14μg/m^3);ρ(水溶性离子)总占ρ(PM2.5)百分比分别为74.5%和74.3%;二次离子ρ(NO3^-、SO4^2-和NH4^+)占ρ(PM2.5)百分比分别为66.8%和66.6%;各水溶性离子占比大小依次为:NO3^-、SO4^2-、NH4^+、Cl^-、K^+、Na^+、Ca^2+、Mg^2+。对ρ(NO3^-)/ρ(SO 4^2-)分析表明,移动源已经成为南通市冬季的主要污染源,且呈逐年增强趋势。对氯氧化率和硫氧化率的分析表明,南通市冬季存在较明显的二次污染,SO2的转化程度大于NO2。除Na^+和Mg^2+外,其他离子与PM2.5均呈显著相关性,NO3^-、SO4^2-与NH4^+之间的相关系数最高,Cl^-与除Na^+外的所有阳离子均呈显著相关性。  相似文献   

16.
Political and economical transition in the Central and Eastern Europe at the end of eighties significantly influenced all aspects of life as well as technological infrastructure. Collapse of outdated energy demanding industry and adoption of environmental legislation resulted in seeming improvements of urban environmental quality. Hand in hand with modernization the newly adopted regulations also helped to phase out low quality coal frequently used for domestic heating. However, at the same time, the number of vehicles registered in the city increased. The two processes interestingly acted as parallel but antagonistic forces. To interpret the trends in urban air quality of Prague, Czech capital, monthly averages of PM(10), SO(2), NO(2), NO, O(3) and CO concentrations from the national network of automated monitoring stations were analyzed together with long term trends in fuel consumption and number of vehicles registered in Prague within a period of 1992-2005. The results showed that concentrations of SO(2) (a pollutant strongly related to fossil fuel burning) dropped significantly during the period of concern. Similarly NO(X) and PM(10) concentrations decreased significantly in the first half of the nineties (as a result of solid fuel use drop), but remained rather stable or increased after 2000, presumably reflecting rapid increase of traffic density. In conclusion, infrastructural changes in early nineties had a strong positive effect on Prague air quality namely in the first half of the period studied, nevertheless, the current trend in concentrations of automotive exhaust related pollutants (such as PM(10), NO(X)) needs adoption of stricter measures.  相似文献   

17.
根据2014年全年实时在线观测数据,分析了徐州睢宁地区大气细颗粒物(PM_(2.5))和气态污染物(包括SO_2、CO、NO_x、O_3)质量浓度的季节性变化特征。结合后向轨迹模型,分析不同气团对该地区大气污染浓度的影响。PM_(2.5)与O_3值在夏季最低,呈显著相关,表明夏季PM_(2.5)主要受控于本地大气光化学活性。在冬季,除O_3外,PM_(2.5)、SO_2、CO、NO_x值最高,且大气颗粒物主要以细粒子为主。O_3在春季最高,并与远程传输的气团且经过我国东部污染源密集地区相对应。高浓度的PM_(2.5)主要与冬季缓慢移动的气团相对应,这可能将PM_(2.5)及其气态前体物传输至该地区进而加重大气污染程度。  相似文献   

18.
对南通市2016年12月-2018年10月大气污染季节分布特征进行了分析。结果表明,南通市ρ(PM2.5)和ρ(水溶性离子)为冬、春季高,夏、秋季低。春夏秋冬四季ρ(水溶性离子)占ρ(PM2.5)百分比分别为68.2%,70.6%,64.5%和74.5%,其中二次离子SNA(NO3-、SO42-和NH4+)占ρ(PM2.5)的百分比分别为63.1%,67.0%,59.3%和66.8%;ρ(NO3-)/ρ(SO42-)表明,移动源已成为南通市春、秋、冬季的主要污染源,四季均存在不同程度的二次转化,且SO2的转化率均大于NO2,NO2冬季转化率最大、夏季最小,SO2夏季转化率最大、秋季最小。南通市NO2转化为硝酸盐的主要形式是气相均相反应,非均相反应和均相反应对SO2转化为硫酸盐的贡献差异不大。  相似文献   

19.
The mass concentrations and major chemical components of PM(2.5) in Jinan, Shandong Province, China from Dec. 2004 to Oct. 2008 were analyzed using backward trajectory cluster analysis in conjunction with the potential source contribution function (PSCF) model. The aim of this work was to study the inter-annual variations of mass concentrations and major chemical components of PM(2.5), evaluate the air mass flow patterns and identify the potential local and regional source areas that contributed to secondary sulfate and nitrate in PM(2.5) in Jinan. The annual mean concentrations of PM(2.5), sulfate and nitrate in 2004-2008 were almost the highest in the world. The most significant air parcels contributing to the highest mean concentrations of mass and secondary ions in PM(2.5) originated from the industrialized areas of Shandong Province. Clusters with a lower ratio of NO(3)(-)/SO(4)(2-) in PM(2.5) originated from the Yellow Sea, while a higher ratio was observed in the clusters passing through Beijing and Tianjin. PSCF modeling indicated that the provinces of Shandong, Henan, Jiangsu, Anhui and the Yellow Sea were the major potential source regions for sulfate, in agreement with the cluster analysis results. Regional and long-range transport of NH(4)NO(3) played an important role in the nitrate concentration of Jinan. By comparing the distributions of secondary sulfate and nitrate over three years, enhanced emission control management before and during the 29(th) Olympic Games led to a discernible decrease in source contributions from Beijing and its environs in 2007-2008.  相似文献   

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