Optimal semi-dynamic traffic and power flow assignment of coupled transportation and power distribution systems for electric vehicles

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Qiang Zhao, Zhenfan Wei, Hui Liu, Yinghua Han, Jinkuan Wang
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引用次数: 1

Abstract

As the most promising alternative to internal combustion engines (ICEs), electric vehicles (EVs) have an excellent development outlook. The charging route scheduling of EVs can simultaneously affect traffic congestion in the transportation network (TN) and power flow distribution in the power distribution network (PDN). The research on TN and PDN coupling networks based on the static traffic flow model is relatively mature; however, it ignores that the traffic flow will spread across periods in a short scheduling period. In this paper, a semi-dynamic traffic flow model is proposed to represent the dynamic propagation characteristics of EVs and ICEs flow. Furthermore, the cost of carbon emission and system operation are combined as the overall goal of system optimisation. Since the model has become a more complex non-linear model, this paper proposes to combine the heuristic sequential boundary tightening and binary expansion method to linearise the model. The study compared four cases and found that a 20% penetration rate of EVs can reduce carbon emissions by 4.2% while reducing the system's total cost by 10%. Moreover, the impact of network congestion on the spatiotemporal distribution of traffic flow and power flow in the coupled network is alleviated.

Abstract Image

电动汽车输配电耦合系统的最优半动态交通和潮流分配
电动汽车作为内燃机最有前途的替代品,具有良好的发展前景。电动汽车的充电路线调度可以同时影响交通网络(TN)中的交通拥堵和配电网络(PDN)中的电力流分布。基于静态交通流模型的TN和PDN耦合网络研究相对成熟;然而,它忽略了交通流将在短调度周期内跨时段传播。本文提出了一个半动态交通流模型来表示电动汽车和内燃机流的动态传播特性。此外,将碳排放成本和系统运行相结合,作为系统优化的总体目标。由于该模型已成为一个更复杂的非线性模型,本文提出将启发式序列边界收紧和二元展开方法相结合来线性化该模型。该研究比较了四个案例,发现20%的电动汽车渗透率可以减少4.2%的碳排放,同时降低10%的系统总成本。此外,网络拥塞对耦合网络中流量和功率流的时空分布的影响也得到了缓解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
4.30%
发文量
18
审稿时长
29 weeks
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