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How to combine different microsimulation tools to assess the environmental impacts of road traffic? Lessons and directions

机译:如何结合不同的微观模拟工具来评估道路交通对环境的影响?教训和方向

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摘要

In the last decades, traffic microsimulation platforms have a growing complexity allowing a detailed description of vehicle traffic dynamics in a second-by-second basis. However, to project spatially their outputs, some precautions must be followed. Therefore, we analyze some variables used in the microscopic traffic models which have a high impact on further applications, especially when a spatial projection is required. To assess these objectives, a microsimulation framework which includes traffic and emission models was defined to characterize traffic flows and to evaluate vehicular emissions. This general methodology was then applied in a European medium sized city using two scenarios: (ⅰ) considering a Lagrangian approach and (ⅱ) using an Eulerian approach of the simulation road traffic platform. The Lagrangian approach shows that if we have long links (some hundred meters, e.g. >500 m), we lose the spatial detail on emissions. On the other hand, using the Eulerian approach to define very small links (some few meters, e.g. <30 m), a significant statistic representation of traffic dynamics, in that link, was not obtained, particularly in areas with low traffic flow. The latter situation can occur because the vehicle speed can be high enough that did not allow recording any information in that link, even considering a high time resolution analysis (second-by-second). Thus, a non-linear trend of the error is identified when such data are analyzed geographically. Accordingly, depending on the use of those microsimulation tools, we identify some best practices related with the traffic model design that must be followed to minimize those errors.
机译:在过去的几十年中,交通微仿真平台的复杂性不断提高,允许以每秒为单位对车辆交通动态进行详细描述。但是,要在空间上预测其输出,必须遵循一些预防措施。因此,我们分析了微观交通模型中使用的一些变量,这些变量对进一步的应用有很大影响,尤其是在需要空间投影时。为了评估这些目标,定义了一个包含交通和排放模型的微观仿真框架,以表征交通流量并评估车辆排放。然后,在两种情况下将此通用方法应用于欧洲中型城市:(ⅰ)考虑拉格朗日方法,(ⅱ)使用模拟道路交通平台的欧拉方法。拉格朗日方法表明,如果我们之间有长链段(几百米,例如> 500 m),我们将失去排放的空间细节。另一方面,使用欧拉方法定义非常小的链接(几米,例如<30 m),在该链接中未获得重要的交通动力学统计表示,尤其是在交通流量较低的地区。发生后一种情况是因为车速可能足够高,甚至考虑到高时间分辨率分析(每秒),也不允许在该链接中记录任何信息。因此,当在地理上分析此类数据时,将确定错误的非线性趋势。因此,根据那些微仿真工具的使用,我们确定了与流量模型设计相关的一些最佳实践,必须将这些最佳实践最小化。

著录项

  • 来源
    《Transportation Research》 |2015年第1期|293-306|共14页
  • 作者单位

    University of Aveiro, Centre for Mechanical Technology and Automation, Campus Universitario de Santiago, 3810-193 Aveiro, Portugal;

    University of Aveiro, Centre for Mechanical Technology and Automation, Campus Universitario de Santiago, 3810-193 Aveiro, Portugal;

    University of Aveiro, Centre for Mechanical Technology and Automation, Campus Universitario de Santiago, 3810-193 Aveiro, Portugal;

    University of Aveiro, Centre for Mechanical Technology and Automation, Campus Universitario de Santiago, 3810-193 Aveiro, Portugal;

    University of Aveiro, Centre for Mechanical Technology and Automation, Campus Universitario de Santiago, 3810-193 Aveiro, Portugal;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Integrated simulation platform; Road traffic; Microscopic traffic models; Emission; Simulation scenarios;

    机译:综合仿真平台;道路交通;微观交通模型;发射;仿真场景;

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