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Vehicular emissions and concentrations in school zones: A case study 被引量:2

Vehicular emissions and concentrations in school zones: A case study
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摘要 Recent research has revealed that human exposure to air pollutants such as CO, NO_x, and particulates can lead to respiratory diseases, especially among school-age children. Towards understanding such health impacts, this work estimates local-scale vehicular emissions and concentrations near a highway traffic network, where a school zone is located in. In the case study, VISSIM traffic micro-simulation is used to estimate the source of vehicular emissions at each roadway segment. The local-scale emission sources are then used as inputs to the California line source dispersion model(CALINE4) to estimate concentrations across the study area. To justify the local-scale emissions modeling approach, the simulation experiment is conducted under various traffic conditions. Different meteorological conditions are considered for emission dispersion. The work reveals that emission concentrations are usually higher at locations closer to the congested segments, freeway ramps and major arterial intersections. Compared to the macroscopic estimation(i.e. using network-average emission factors), the results show significantly different emission patterns when the local-scale emission modeling approach is used. In particular, it is found that the macroscopic approach over-estimates emission concentrations at freeways and under-estimations are observed at arterials and local streets. The results of the study can be used to compare to the US environmental protection agency(EPA) standards or any other air quality standard to further identify health risk in a fine-grained manner. Recent research has revealed that human exposure to air pollutants such as CO, NO_x, and particulates can lead to respiratory diseases, especially among school-age children. Towards understanding such health impacts, this work estimates local-scale vehicular emissions and concentrations near a highway traffic network, where a school zone is located in. In the case study, VISSIM traffic micro-simulation is used to estimate the source of vehicular emissions at each roadway segment. The local-scale emission sources are then used as inputs to the California line source dispersion model(CALINE4) to estimate concentrations across the study area. To justify the local-scale emissions modeling approach, the simulation experiment is conducted under various traffic conditions. Different meteorological conditions are considered for emission dispersion. The work reveals that emission concentrations are usually higher at locations closer to the congested segments, freeway ramps and major arterial intersections. Compared to the macroscopic estimation(i.e. using network-average emission factors), the results show significantly different emission patterns when the local-scale emission modeling approach is used. In particular, it is found that the macroscopic approach over-estimates emission concentrations at freeways and under-estimations are observed at arterials and local streets. The results of the study can be used to compare to the US environmental protection agency(EPA) standards or any other air quality standard to further identify health risk in a fine-grained manner.
出处 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第7期1778-1785,共8页 中南大学学报(英文版)
关键词 排放浓度 排放物 车辆 案例 公路交通网络 空气质量标准 CALINE4 美国环境保护局 human health vehicular emissions VISSIM microscopic simulation California line source dispersion model(CALINE4) local-scale modeling
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  • 1US National Research Council. The congestion mitigation and air quality improvement program: Assessing l 0 years of experience [M]. Washington D C: Transportation Research Board, 2002.
  • 2DONHAM K J, LEISTIKOW B, MERCHANT J, LEONARD S. Assessment of US poultry worker respiratory risks [J]. American Journal of Industrial Medicine, 1990, 17(1): 73-74.
  • 3SABIN L D, KOZAWA K, BEHRENTZ E, WINER A M, FITZ D R, PANKRATZ D V, FRUIN S A. Analysis of real-time variables affecting children's exposure to diesel-related pollutants during school bus commutes in los angeles [J]. Atmospheric Environment, 2005, 39(29): 5243-5254.
  • 4US Environmental Protection Agency (EPA). National ambient air quality standards (NAAQS) [EB/OL]. [2010-11-17]. https://www3. epa.gov/ttn/naaqs/eriteria.html.
  • 5WITTENBERG B A, WITTENBERG J B. Effects of carbon monoxide on isolated heart muscle ceils [J]. Research Report Health Effects Institute, 1993, 62: 1-12.
  • 6US Environmental Protection Agency (EPA). Fact sheet proposed revisions to the national ambient air quality standards for nitrogen dioxide [EB/OL]. [2009-07-22]. https://www3.epa.gov/airquality/ nitrogenoxides/pdfs/20090722fs.pdf.
  • 7ABOU-SENNA H, RADWAN E, WESTERLUND K, COOPER C D Using a traffic simulation model (VISSIM) with an emissions model (MOVES) to predict emissions from vehicles on a limited-access highway [J]. Journal of the Air & Waste Management Association, 2013, 63(7): 819-831.
  • 8CHU H C, MEYER M D. Methodology for assessing emission reduction of truck-only toll lanes [J]. Energy Policy, 2009, 37(8): 3287-3294.
  • 9de VLIEGER I. On board emission and fuel consumption measurement campaign on petrol-driven passenger cars [J]. Atmospheric Environment, 1997, 31(22): 3753 3761.
  • 10HALLMARK S L, GUENSLER R, FOMUNUNG l. Characterizing on-road variables that affect passenger vehicle modal operation [J]. Transportation Research Part D: Transport and Environment, 2002, 7(2): 81-98.

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