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首页> 外文期刊>Applied Energy >Wireless charger deployment for an electric bus network: A multi-objective life cycle optimization
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Wireless charger deployment for an electric bus network: A multi-objective life cycle optimization

机译:电动公交网络的无线充电器部署:多目标生命周期优化

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摘要

Deploying large-scale wireless charging infrastructure at bus stops to charge electric transit buses when loading and unloading passengers requires significant capital investment and brings environmental and energy burdens due to charger production and deployment. Optimal siting of wireless charging bus stops is key to reducing these burdens and enhancing the sustainability performance of a wireless charging bus fleet. This paper presents a novel multi-objective optimization model framework based on life cycle assessment (LCA) for siting wireless chargers in a multi-route electric bus system. Compared to previous studies, this multi-objective optimization framework evaluates not only the minimization of system-level costs, but also newly incorporates the objectives of minimizing life cycle greenhouse gas (GHG) emissions and energy consumption during the entire lifetime of a wireless charging bus system. The LCA-based optimization framework is more comprehensive than previous studies in that it encompasses not only the burdens associated with wireless charging infrastructure deployment, but also the benefits of electric bus battery downsizing and use-phase vehicle energy consumption reduction due to vehicle lightweighting, which are directly related to charger siting. The impact of charger siting at bus stops with different route utility and bus dwell time on battery life is also considered. To demonstrate the model application, the route information of the University of Michigan bus routes is used as a case study. Results from the baseline scenario show that the optimal siting strategies can help reduce life cycle costs, GHG, and energy by up to 13%, 8%, and 8%, respectively, compared to extreme cases of "no charger at any bus stop" and "chargers at every stop". Further sensitivity analyses indicate that the optimization results are sensitive to the initial battery unit price ($/KWh), charging power rate (kW), charging infrastructure costs, and battery life estimation methods.
机译:在公交车站安装大型无线充电基础设施,以便在上下车时为电动公交车充电,这需要大量的资本投资,并且由于充电器的生产和部署而给环境和能源带来负担。无线充电巴士站的最佳选址是减轻这些负担并增强无线充电巴士车队可持续性的关键。本文提出了一种基于生命周期评估(LCA)的新型多目标优化模型框架,用于在多路线电动公交系统中选址无线充电器。与以前的研究相比,此多目标优化框架不仅评估了系统级成本的最小化,而且还新纳入了将无线充电总线整个生命周期中的温室气体(GHG)排放量和能耗最小化的目标。系统。基于LCA的优化框架比以前的研究更加全面,因为它不仅涵盖了与无线充电基础设施部署相关的负担,而且还涵盖了由于车辆轻量化而导致的电动公交车电池小型化和使用阶段车辆能耗降低的好处。与充电器选址直接相关。还考虑了具有不同路线效用和公交车停留时间的公交车站处充电器选址对电池寿命的影响。为了演示该模型的应用,以密歇根大学公交路线的路线信息为例。基准情景的结果表明,与“公交车站没有充电器”的极端情况相比,最佳的选址策略可以分别将生命周期成本,GHG和能源减少多达13%,8%和8%。和“每站充电器”。进一步的敏感性分析表明,优化结果对初始电池单价($ / KWh),充电电价(kW),充电基础设施成本和电池寿命估算方法敏感。

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