The use of real-time monitoring data to evaluate major sources of airborne particulate matter

被引:26
作者
Hellebust, Stig [1 ]
Allanic, Arnaud
O'Connor, Ian P.
Wenger, John C.
Sodeau, John R.
机构
[1] Natl Univ Ireland Univ Coll Cork, Dept Chem, Cork, Ireland
基金
爱尔兰科学基金会;
关键词
Air quality monitoring; PM2.5; Source apportionment; Positive matrix factorisation; Road transport emissions; Combustion; POSITIVE MATRIX FACTORIZATION; PRINCIPAL COMPONENT ANALYSIS; SOURCE APPORTIONMENT; SOURCE IDENTIFICATION; AMBIENT PM2.5; UNITED-KINGDOM; AIR-QUALITY; AEROSOL; PM10; FINE;
D O I
10.1016/j.atmosenv.2009.11.035
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Real-time chemical measurements have been made as part of a field study of air quality in the city and harbour of Cork, Ireland. The data relate to the year 2008, with particular attention paid to the period between May and August. Eight air quality parameters were measured: NO, O-3,O- NO2, SO2, EC, OC, particulate SO42- and PM2.5 The data have been used in a novel way involving wind and temporal averaging, along with Principal Component Analysis (PCA) and Positive Matrix Factorisation (PMF) methodologies to extrapolate major source contributions for PM2.5. It is demonstrated that continuous. monitoring of standard air quality parameters, such as NO, NO2, SO2, along with EC, OC and particulate SO42-, can be used to provide relevant, cost-effective initial estimates of source contributions to ambient PM2.5 levels. It is also shown that the benefit of including OC and particulate SO42- in the monitoring protocol is considerable. Three major source groups of ambient PM2.5 mass in Cork were identified and quantified using this combined monitoring and modelling approach: road transport (19%), domestic solid fuel burning (14%) and oil-fired domestic and industrial boilers, including power generation plants (31%). (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1116 / 1125
页数:10
相关论文
共 54 条
[1]   Source apportionment of fine and coarse particulate matter in a sub-urban area at the Western European Coast [J].
Almeida, SM ;
Pio, CA ;
Freitas, MC ;
Reis, MA ;
Trancoso, MA .
ATMOSPHERIC ENVIRONMENT, 2005, 39 (17) :3127-3138
[2]  
[Anonymous], AIR QUALITY MANAGEME
[3]   Aerosol composition and source apportionment in Santiago de Chile [J].
Artaxo, P ;
Oyola, P ;
Martinez, R .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 1999, 150 (1-4) :409-416
[4]   Source apportionment of gaseous atmospheric pollutants by means of an absolute principal component scores (APCS) receptor model [J].
Bruno, P ;
Caselli, M ;
de Gennaro, G ;
Traini, A .
FRESENIUS JOURNAL OF ANALYTICAL CHEMISTRY, 2001, 371 (08) :1119-1123
[5]   Source identification and long-term monitoring of airborne particulate matter PM2.5/PM10) in an urban region of Korea [J].
Chung, YS ;
Kim, SH ;
Moon, JH ;
Kim, YJ ;
Lim, JM ;
Lee, JH .
JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2005, 267 (01) :35-48
[6]   The transport sector as a source of air pollution [J].
Colvile, RN ;
Hutchinson, EJ ;
Mindell, JS ;
Warren, RF .
ATMOSPHERIC ENVIRONMENT, 2001, 35 (09) :1537-1565
[7]   Ambient air particulate concentrations and metallic elements principal component analysis at Taichung Harbor (TH) and WuChi Traffic (WT) near Taiwan Strait during 2004-2005 [J].
Fang, Guor-Cheng ;
Wu, Yuh-Shen ;
Wen, Chih-Chung ;
Huang, Shih-Han ;
Rau, Jui-Yeh .
JOURNAL OF HAZARDOUS MATERIALS, 2006, 137 (01) :314-323
[8]  
FERNANDEZESPINO.AJ, 2004, ATMOS ENVIRON, V38, P873, DOI DOI 10.1016/J.ATMOSENV.2003.10.046
[9]   APPORTIONMENT OF AIR-POLLUTION SOURCES BY RECEPTOR MODELS IN HONG-KONG [J].
FUNG, YS ;
WONG, LWY .
ATMOSPHERIC ENVIRONMENT, 1995, 29 (16) :2041-2048
[10]   The impacts of combustion emissions on air quality and climate - From coal to biofuels and beyond [J].
Gaffney, Jeffrey S. ;
Marley, Nancy A. .
ATMOSPHERIC ENVIRONMENT, 2009, 43 (01) :23-36