Comparison between different traffic-related particle indicators:: Elemental. carbon (EC), PM2.5 mass, and absorbance

被引:189
作者
Cyrys, J
Heinrich, J
Hoek, G
Meliefste, K
Lewné, M
Gehring, U
Bellander, T
Fischer, P
Van Vliet, P
Brauer, M
Wichmann, HE
Brunekreef, B
机构
[1] GSF, Natl Res Ctr Environm & Hlth, Inst Epidemiol, D-85764 Neuherberg, Germany
[2] Univ Munich, Inst Med Data Management Biometr & Epidemiol, Chair Epidemiol, Munich, Germany
[3] Univ Utrecht, Inst Risk Assessment Sci, Environm & Occupat Hlth Unit, Utrecht, Netherlands
[4] Stockholm Cty Council, Dept Environm Hlth, Stockholm, Sweden
[5] Natl Inst Publ Hlth & Environm, Lab Exposure Assessment & Environm Epidemiol, Bilthoven, Netherlands
[6] Univ British Columbia, Sch Occupat & Environm Hyg, Vancouver, BC V5Z 1M9, Canada
来源
JOURNAL OF EXPOSURE ANALYSIS AND ENVIRONMENTAL EPIDEMIOLOGY | 2003年 / 13卷 / 02期
关键词
traffic-related pollutants; particles; PM10; PM2.5; absorbance; EC;
D O I
10.1038/sj.jea.7500262
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Here we compare PM2.5 (particles with aerodynamic diameter less than 2.5 mum) mass and filter absorbance measurements with elemental carbon (EC) concentrations measured in parallel at the same site as well as collocated PM2.5 and PM10 (particles with aerodynamic diameter less than 10 mum) mass and absorbance measurements. The data were collected within the Traffic-Related Air Pollution on Childhood Asthma (TRAPCA) study in Germany, The Netherlands and Sweden. The study was designed to assess the health impact of spatial contrasts in long-term average concentrations. The measurement sites were distributed between background and traffic locations. Annual EC and PM2.5 absorbance measurements were at traffic sites on average 43-84% and 26-76% higher, respectively, compared to urban background sites. The contrast for PM2.5 mass measurements was lower (8-35%). The smaller contrast observed for PM2.5 mass in comparison with PM2.5 absorbance and EC documents that PM2.5 mass underestimates exposure contrasts related to motorized traffic emissions. The correlation between PM10 and PM2.5 was high, documenting that most of the spatial variation of PM10 was because of PM2.5. The measurement of PM2.5 absorbance was highly correlated with EC measurements and suggests that absorbance can be used as a simple, inexpensive and non-destructive method. to estimate motorized traffic-related particulate air pollution. The EC/absorbance relation differed between countries and site type (background/traffic), supporting the need for site-specific calibrations of the simple absorbance method. While the ratio between PM2.5 and PM10 mass ranged from 0.54 to 0.68, the ratio of PM2.5 absorbance and PM10 absorbance was 0.96-0.97, indicating that PM2.5 absorbance captures nearly all of the particle absorbance.
引用
收藏
页码:134 / 143
页数:10
相关论文
共 43 条
  • [1] The effect of diesel exhaust particles on cell function and release of inflammatory mediators from human bronchial epithelial cells in vitro
    Bayram, H
    Devalia, JL
    Sapsford, RJ
    Ohtoshi, T
    Miyabara, Y
    Sagai, M
    Davies, RJ
    [J]. AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 1998, 18 (03) : 441 - 448
  • [2] Air pollution from truck traffic and lung function in children living near motorways
    Brunekreef, B
    Janssen, NAH
    deHartog, J
    Harssema, H
    Knape, M
    vanVliet, P
    [J]. EPIDEMIOLOGY, 1997, 8 (03) : 298 - 303
  • [3] MEASUREMENT METHODS TO DETERMINE COMPLIANCE WITH AMBIENT AIR-QUALITY STANDARDS FOR SUSPENDED PARTICLES
    CHOW, JC
    [J]. JOURNAL OF THE AIR & WASTE MANAGEMENT ASSOCIATION, 1995, 45 (05) : 320 - 382
  • [4] Road traffic and adverse respiratory effects in children
    Ciccone, G
    Forastiere, F
    Agabiti, N
    Biggeri, A
    Bisanti, L
    Chellini, E
    Corbo, G
    Dell'Orco, V
    Dalmasso, P
    Volante, TF
    Galassi, C
    Piffer, S
    Renzoni, E
    Rusconi, F
    Sestini, P
    Viegi, G
    [J]. OCCUPATIONAL AND ENVIRONMENTAL MEDICINE, 1998, 55 (11) : 771 - 778
  • [5] COUNTANT B, EPA454R01008 OFF AIR
  • [6] Cyrys J, 1998, J EXPO ANAL ENV EPID, V8, P447
  • [7] DETERMINATION OF ELEMENTAL CARBON COMPONENT OF SOOT IN AMBIENT AEROSOL SAMPLES
    DELUMYEA, RG
    CHU, LC
    MACIAS, ES
    [J]. ATMOSPHERIC ENVIRONMENT, 1980, 14 (06) : 647 - 652
  • [8] DiazSanchez D, 1997, ALLERGY, V52, P52
  • [9] The association between self-reported symptoms of asthma and allergic rhinitis and self-reported traffic density on street of residence in adolescents
    Duhme, H
    Weiland, SK
    Keil, U
    Kraemer, B
    Schmid, M
    Stender, M
    Chambless, L
    [J]. EPIDEMIOLOGY, 1996, 7 (06) : 578 - 582
  • [10] Examining associations between childhood asthma and traffic flow using a geographic information system
    English, P
    Neutra, R
    Scalf, R
    Sullivan, M
    Waller, L
    Zhu, L
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 1999, 107 (09) : 761 - 767