4.5 Article

Evaluating and Optimizing Opportunity Fast-Charging Schedules in Transit Battery Electric Bus Networks

期刊

TRANSPORTATION SCIENCE
卷 54, 期 6, 页码 1601-1615

出版社

INFORMS
DOI: 10.1287/trsc.2020.0982

关键词

transit electric bus networks; charging schedule; mixed integer linear programming

资金

  1. Horizon 2020 Framework Programme [731198]
  2. H2020 Societal Challenges Programme [731198] Funding Source: H2020 Societal Challenges Programme

向作者/读者索取更多资源

Public transport operators (PTOs) increasingly face a challenging problem in switching from conventional diesel to more sustainable battery electric buses (BEBs). In this study, we optimize the opportunity fast-charging schedule of transit BEB networks in order to minimize the charging costs and the impact on the grid. Two mixed-integer linear programming (MILP) formulations that use different discretization approaches are developed and compared. Discrete-Time Optimization (DTO) resembles a time-expanded network that discretizes the time and decisions to equal discrete slots. Discrete-Event Optimization (DEO) discretizes the time and decisions into nonuniform slots based on arrival and departure events in the network. In addition to the DEO's higher practicability, the comparative computational study carried out on the transit-bus network in the city of Rotterdam, Netherlands, shows that the DEO is superior to the DTO in terms of computational performance. To show the potential benefits of the optimal schedule, it is compared with two reference common-sense greedy strategies: First-in-First-Served and Lowest-Charge-Highest-Priority.

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