Literature DB >> 25132794

Spatial Resolution Requirements for Traffic-Related Air Pollutant Exposure Evaluations.

Stuart Batterman1, Sarah Chambliss2, Vlad Isakov3.   

Abstract

Vehicle emissions represent one of the most important air pollution sources in most urban areas, and elevated concentrations of pollutants found near major roads have been associated with many adverse health impacts. To understand these impacts, exposure estimates should reflect the spatial and temporal patterns observed for traffic-related air pollutants. This paper evaluates the spatial resolution and zonal systems required to estimate accurately intraurban and near-road exposures of traffic-related air pollutants. The analyses use the detailed information assembled for a large (800 km2) area centered on Detroit, Michigan, USA. Concentrations of nitrogen oxides (NOx) due to vehicle emissions were estimated using hourly traffic volumes and speeds on 9,700 links representing all but minor roads in the city, the MOVES2010 emission model, the RLINE dispersion model, local meteorological data, a temporal resolution of 1 hr, and spatial resolution as low as 10 m. Model estimates were joined with the corresponding shape files to estimate residential exposures for 700,000 individuals at property parcel, census block, census tract, and ZIP code levels. We evaluate joining methods, the spatial resolution needed to meet specific error criteria, and the extent of exposure misclassification. To portray traffic-related air pollutant exposure, raster or inverse distance-weighted interpolations are superior to nearest neighbor approaches, and interpolations between receptors and points of interest should not exceed about 40 m near major roads, and 100 m at larger distances. For census tracts and ZIP codes, average exposures are overestimated since few individuals live very near major roads, the range of concentrations is compressed, most exposures are misclassified, and high concentrations near roads are entirely omitted. While smaller zones improve performance considerably, even block-level data can misclassify many individuals. To estimate exposures and impacts of traffic-related pollutants accurately, data should be geocoded or estimated at the most-resolved spatial level; census tract and larger zones have little if any ability to represent intraurban variation in traffic-related air pollutant concentrations. These results are based on one of the most comprehensive intraurban modeling studies in the literature and results are robust. Recommendations address the value of dispersion models to portray spatial and temporal variation of air pollutants in epidemiology and other studies; techniques to improve accuracy and reduce the computational burden in urban scale modeling; the necessary spatial resolution for health surveillance, demographic, and pollution data; and the consequences of low resolution data in terms of exposure misclassification.

Entities:  

Keywords:  Air pollution; Exposure; Exposure misclassification; Traffic

Year:  2014        PMID: 25132794      PMCID: PMC4131205          DOI: 10.1016/j.atmosenv.2014.05.065

Source DB:  PubMed          Journal:  Atmos Environ (1994)        ISSN: 1352-2310            Impact factor:   4.798


  18 in total

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Review 2.  How much, how long, what, and where: air pollution exposure assessment for epidemiologic studies of respiratory disease.

Authors:  Michael Brauer
Journal:  Proc Am Thorac Soc       Date:  2010-05

3.  Near-roadway air quality: synthesizing the findings from real-world data.

Authors:  Alex A Karner; Douglas S Eisinger; Deb A Niemeier
Journal:  Environ Sci Technol       Date:  2010-07-15       Impact factor: 9.028

4.  Proximity of schools in Detroit, Michigan to automobile and truck traffic.

Authors:  Yi-Chen Wu; Stuart A Batterman
Journal:  J Expo Sci Environ Epidemiol       Date:  2006-04-19       Impact factor: 5.563

5.  On exposure and response relationships for health effects associated with exposure to vehicular traffic.

Authors:  Frederick W Lipfert; Ronald E Wyzga
Journal:  J Expo Sci Environ Epidemiol       Date:  2008-03-05       Impact factor: 5.563

Review 6.  Respiratory health effects of air pollution: update on biomass smoke and traffic pollution.

Authors:  Robert J Laumbach; Howard M Kipen
Journal:  J Allergy Clin Immunol       Date:  2012-01       Impact factor: 10.793

7.  The Near-Road Ambient Monitoring Network and Exposure Estimates for Health Studies.

Authors:  Stuart Batterman
Journal:  EM (Pittsburgh Pa)       Date:  2013-07

8.  Creating national air pollution models for population exposure assessment in Canada.

Authors:  Perry Hystad; Eleanor Setton; Alejandro Cervantes; Karla Poplawski; Steeve Deschenes; Michael Brauer; Aaron van Donkelaar; Lok Lamsal; Randall Martin; Michael Jerrett; Paul Demers
Journal:  Environ Health Perspect       Date:  2011-03-31       Impact factor: 9.031

9.  Examining associations between childhood asthma and traffic flow using a geographic information system.

Authors:  P English; R Neutra; R Scalf; M Sullivan; L Waller; L Zhu
Journal:  Environ Health Perspect       Date:  1999-09       Impact factor: 9.031

10.  Global intraurban intake fractions for primary air pollutants from vehicles and other distributed sources.

Authors:  Joshua S Apte; Emilie Bombrun; Julian D Marshall; William W Nazaroff
Journal:  Environ Sci Technol       Date:  2012-03-08       Impact factor: 9.028

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  9 in total

1.  Health impact metrics for air pollution management strategies.

Authors:  Sheena E Martenies; Donele Wilkins; Stuart A Batterman
Journal:  Environ Int       Date:  2015-09-14       Impact factor: 9.621

2.  Assessing concentrations and health impacts of air quality management strategies: Framework for Rapid Emissions Scenario and Health impact ESTimation (FRESH-EST).

Authors:  Chad W Milando; Sheena E Martenies; Stuart A Batterman
Journal:  Environ Int       Date:  2016-06-16       Impact factor: 9.621

3.  Air pollutant strategies to reduce adverse health impacts and health inequalities: a quantitative assessment for Detroit, Michigan.

Authors:  Sheena E Martenies; Chad W Milando; Stuart A Batterman
Journal:  Air Qual Atmos Health       Date:  2018-02-10       Impact factor: 3.763

4.  High resolution spatial and temporal mapping of traffic-related air pollutants.

Authors:  Stuart Batterman; Rajiv Ganguly; Paul Harbin
Journal:  Int J Environ Res Public Health       Date:  2015-04-01       Impact factor: 3.390

5.  Traffic, air pollution, minority and socio-economic status: addressing inequities in exposure and risk.

Authors:  Gregory C Pratt; Monika L Vadali; Dorian L Kvale; Kristie M Ellickson
Journal:  Int J Environ Res Public Health       Date:  2015-05-19       Impact factor: 3.390

Review 6.  Review of Portable and Low-Cost Sensors for the Ambient Air Monitoring of Benzene and Other Volatile Organic Compounds.

Authors:  Laurent Spinelle; Michel Gerboles; Gertjan Kok; Stefan Persijn; Tilman Sauerwald
Journal:  Sensors (Basel)       Date:  2017-06-28       Impact factor: 3.576

7.  Disease and Health Inequalities Attributable to Air Pollutant Exposure in Detroit, Michigan.

Authors:  Sheena E Martenies; Chad W Milando; Guy O Williams; Stuart A Batterman
Journal:  Int J Environ Res Public Health       Date:  2017-10-19       Impact factor: 3.390

8.  Comparison of Highly Resolved Model-Based Exposure Metrics for Traffic-Related Air Pollutants to Support Environmental Health Studies.

Authors:  Shih Ying Chang; William Vizuete; Michael Breen; Vlad Isakov; Saravanan Arunachalam
Journal:  Int J Environ Res Public Health       Date:  2015-12-08       Impact factor: 3.390

9.  Combined environmental and social exposures during pregnancy and associations with neonatal size and body composition: the Healthy Start study.

Authors:  Sheena E Martenies; William B Allshouse; Anne P Starling; Brandy M Ringham; Deborah H Glueck; John L Adgate; Dana Dabelea; Sheryl Magzamen
Journal:  Environ Epidemiol       Date:  2019-04
  9 in total

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