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Temporal variation of traffic on highways and the development of accurate temporal allocation factors for air pollution analyses

机译:高速公路上交通流量的时间变化和空气污染分析的精确时间分配因子的发展

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Traffic activity encompasses the number, mix, speed and acceleration of vehicles on roadways. The temporal pattern and variation of traffic activity reflects vehicle use, congestion and safety issues, and it represents a major influence on emissions and concentrations of traffic-related air pollutants. Accurate characterization of vehicle flows is critical in analyzing and modeling urban and local-scale pollutants, especially in near-road environments and traffic corridors. This study describes methods to improve the characterization of temporal variation of traffic activity. Annual, monthly, daily and hourly temporal allocation factors (TAFs), which describe the expected temporal variation in traffic activity, were developed using four years of hourly traffic activity data recorded at 14 continuous counting stations across the Detroit, Michigan, U.S. region. Five sites also provided vehicle classification. TAF-based models provide a simple means to apportion annual average estimates of traffic volume to hourly estimates. The analysis shows the need to separate TAFs for total and commercial vehicles, and weekdays, Saturdays, Sundays and observed holidays. Using either site-specific or urban-wide TAFs, nearly all of the variation in historical traffic activity at the street scale could be explained; unexplained variation was attributed to adverse weather, traffic accidents and construction. The methods and results presented in this paper can improve air quality dispersion modeling of mobile sources, and can be used to evaluate and model temporal variation in ambient air quality monitoring data and exposure estimates. (C) 2015 Elsevier Ltd. All rights reserved.
机译:交通活动包括道路上车辆的数量,混合,速度和加速度。交通活动的时间格局和变化反映了车辆的使用,拥堵和安全问题,对交通相关的空气污染物的排放和浓度产生了重大影响。车辆流量的准确表征对于分析和建模城市和本地规模的污染物至关重要,尤其是在近路环境和交通走廊中。这项研究描述了改善交通活动时间变化特征的方法。使用在美国密歇根州底特律的14个连续计数站记录的四年每小时交通活动数据,开发了描述交通活动的预期时间变化的年度,每月,每日和每小时的时间分配因子(TAF)。五个站点还提供了车辆分类。基于TAF的模型提供了一种简单的方法,可以将交通量的年度平均估算值分配给每小时估算值。分析表明,有必要对商用车和商用车以及工作日,周六,周日和观察到的假期分别划分TAF。使用特定地点或全市范围的TAF,几乎可以解释街道规模上历史交通活动的所有变化;无法解释的变化归因于恶劣的天气,交通事故和建筑。本文提出的方法和结果可以改善移动源的空气质量扩散模型,并且可以用于评估和建模环境空气质量监测数据和暴露估计的时间变化。 (C)2015 Elsevier Ltd.保留所有权利。

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