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多模式交通网络设计问题中的自行车骑行者交通产生的空气污染暴露。

Cyclists' exposure to traffic-generated air pollution in multi-modal transportation network design problem.

机构信息

Department of Railway Engineering and Transportation Planning, University of Isfahan, Isfahan, Iran.

出版信息

PLoS One. 2023 Jun 2;18(6):e0286153. doi: 10.1371/journal.pone.0286153. eCollection 2023.

Abstract

Moving toward sustainable transportation is one of the essential issues in cities. Bicycles, as active transportation, are considered an important part of sustainable transportation. However, cyclists engage in more physical activity and air intake, making the quality of air that they inhale important in the programs that aim to improve the share of this mode. This paper develops a multi-modal transportation network design problem (MMNDP) to select links and routes for cycling, cars, and buses to decrease the exposure of cyclists to traffic-generated air pollution. The objective functions of the model include demand coverage, travel time, and exposure. The study also examined the effect of having exclusive lanes for bicycles and buses on the network. In the present study, the non-dominated storing genetic algorithm (NSGA-II) solves the upper-level and a method of successive average (MSA) unravels the lower level of the model. A numerical example and four scenarios evaluate the trade-off between different objective functions of the proposed model. The results reveal that considering exposure to air pollution in our model results in a slight increase in travel time (4%) while the exposure to traffic-generated air pollution for cyclists was reduced significantly (47%). Exclusive lanes also result in exposure reduction in the network (60%). In addition, the demand coverage objective function performs well in increasing the total demand in the network by 47%. However, more demand coverage leads to a rise in travel time by 28% and exposure by 58%. The model also showed an acceptable result in terms of exposure to traffic-generated air pollution compared to the model in the literature.

摘要

迈向可持续交通是城市面临的重要问题之一。自行车作为一种主动式交通方式,被认为是可持续交通的重要组成部分。然而,与其他交通方式相比,自行车骑行者的活动量和空气摄入量更大,因此在旨在提高这种交通方式分担率的项目中,他们吸入的空气质量非常重要。本文开发了一个多模式交通网络设计问题(MMNDP),以选择自行车、汽车和公共汽车的链路和路线,以减少自行车骑行者暴露在交通产生的空气污染中的程度。该模型的目标函数包括需求覆盖、旅行时间和暴露。该研究还考察了为自行车和公共汽车设置专用车道对网络的影响。在本研究中,非支配存储遗传算法(NSGA-II)解决上层问题,而连续平均法(MSA)则解决下层问题。通过一个数值实例和四个情景,评估了所提出模型的不同目标函数之间的权衡。结果表明,在我们的模型中考虑空气污染暴露会导致旅行时间略有增加(4%),同时自行车骑行者暴露在交通产生的空气污染中的程度会显著降低(47%)。专用车道还会导致网络中暴露程度降低(60%)。此外,需求覆盖目标函数在增加网络总需求方面表现良好,可使总需求增加 47%。然而,需求覆盖的增加会导致旅行时间增加 28%,暴露程度增加 58%。与文献中的模型相比,该模型在暴露于交通产生的空气污染方面也取得了可接受的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d7a/10237391/3d453459b91d/pone.0286153.g001.jpg

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