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Managing congestion and emissions in transportation networks with dynamic carbon credit charge scheme

机译:使用动态碳信用额收费计划管理交通网络中的拥堵和排放

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Traffic congestion contributes to the air pollution problem due to the increased idling, braking and acceleration behaviors. This research puts forward an optimal dynamic credit charge scheme that can redistribute the traffic flows to attain mobility and emission goals. First, cell transmission model is used as dynamic network loading model to capture the flow propagation and dynamic user equilibrium (DUE) is formulated to investigate the flow redistribution in terms of simultaneous path and departure time choices under carbon credit charge scheme. Based on that, a bi-level formulation is proposed to describe the Stackelberg game between road manager and road users. For the higher level, road manager seeks to minimize system travel time and emissions by implementing credit charge schemes. For the lower level, heterogeneous users find dynamic user equilibrium by simultaneous path and departure time choices under given credit charge schemes. Given the non-convex property of the bi-level model, this paper proposes the pattern search algorithm embedded with projection method. Computational results on X-shape, Ziliaskopolous' and Nyguen-Dupuis network are given to show the applicability of the proposed algorithm on reasonable-size networks. Results show that minimum travel time design does not always generate effective path and departure time switches across all user groups, especially for users with high value of travel time, while minimum emissions credit design yields desirable behavioral adjustments. Besides, minimum travel time credit design does not always generate minimum carbon emissions in the network, especially in networks with complex O-D pairs and paths. This research casts light on how to schedule a time-varying credit charge scheme to attain mobility and emission goals. Policy implications of credit charge scheme are provided. (C) 2018 Elsevier Ltd. All rights reserved.
机译:由于空转,制动和加速行为的增加,交通拥堵加剧了空气污染问题。这项研究提出了一种最优的动态信用收费方案,该方案可以重新分配交通流量以实现流动性和排放目标。首先,将单元传输模型用作动态网络负载模型来捕获流量传播,并制定动态用户平衡(DUE),以研究碳信用额度方案下的同时路径和出发时间选择方面的流量重新分配。在此基础上,提出了一种双层公式来描述道路管理员与道路使用者之间的Stackelberg游戏。对于更高的级别,道路管理员通过实施信贷收费计划来寻求最大限度地减少系统行驶时间和排放。对于较低级别的用户,异类用户可以在给定的信用计划下通过同时选择路径和出发时间来找到动态的用户均衡。鉴于双层模型的非凸性,本文提出了一种嵌入投影方法的模式搜索算法。给出了X形,Ziliaskopolous和Nyguen-Dupuis网络的计算结果,表明了该算法在合理大小网络上的适用性。结果表明,最小行驶时间设计并不能始终在所有用户组中生成有效的路径和出发时间切换,尤其是对于具有较高旅行时间价值的用户,而最小排放信用设计可以产生理想的行为调整。此外,最短旅行时间积分设计并不总是在网络中产生最小的碳排放,特别是在具有复杂O-D对和路径的网络中。这项研究为如何安排随时间变化的信贷收费计划实现流动性和排放目标提供了启示。提供了信贷收费计划的政策含义。 (C)2018 Elsevier Ltd.保留所有权利。

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