Power Supply Mode Planning of Electric Vehicle Participating in Logistics Distribution Based on Battery Charging and Swapping Station

Author:

Deng Youjun1,Yu Qian2,Li Bo3,Gong Renjie4,Chang Gong5

Affiliation:

1. Sichuan Provincial Electric Power Company , Dazhou Power Supply Company , Dazhou 635002 , China

2. School of Electrical and Information Engineering , Changsha University of Science and Technology , Changsha 410114 , China

3. School of Education and Science , Hunan Normal Univerisity , Changsha 410081 , China

4. Jiangxi Provincial Electric Power Company , Ganxi Power Supply Company , Ganxi 338052 , China

5. Shandong Provincial Electric Power Company , Yantai Power Supply Company , Yantai 264001 , China

Abstract

Abstract Considering the operating pattern of battery charging and swapping station (BCSS) providing two power supply modes referring to battery charging mode and battery swapping mode at the same time, the power supply mode planning of electric vehicle (EV) participating in logistics distribution is conducive to decrease the operation costs. The primary contribution of this paper is to construct an optimization model with the objective of minimizing the overall cost of transportation cost and slow charging cost by considering the optimal driving route of EV, the selection of power supply mode and the slow discharging or charging management in the depot. The transportation cost is consisted of fast charging cost, battery swapping cost, battery life loss cost and vehicle loss cost. The secondary contribution of this paper is to improve a novel optimization algorithm called natural aggregation algorithm (NAA) as integer version to solve effectively the proposed model. Taking 33-node logistics distribution system as an example to carry out numerical simulation, the impacts of power supply mode planning on transportation cost and slow dis/charging cost are analyzed, the impacts of slow dis/charging strategy on the total cost are analyzed, and the effectiveness of proposed model in 13-node, 64-node, 112-node logistics distribution system are comparatively analyzed. The simulation results have demonstrated the feasibility and effectiveness of the proposed model and approach.

Publisher

Walter de Gruyter GmbH

Subject

Energy Engineering and Power Technology

Reference20 articles.

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2. Zheng Y, Dong ZY, Xu Y, Meng K, Zhao JH, Qiu J. Electric vehicle battery charging/swap stations in distribution systems: comparison study and optimal planning. IEEE Trans Power Syst. 2014;29:221–9

3. Sun B, Tan X, Tsang D. Optimal charging operation of battery swapping and charging stations with QoS guarantee. IEEE Trans Smart Grid. 2018;9:4689–701

4. Beijing Morning News. Electric vehicle charging and swapping facilities market fully liberalized by Chinese state grid corporation in 2014. [Online]. Available: http://www.techweb.com.cn/it/2014-05-28/2041086.shtml.

5. China Report Hall. A study report on the forecast of the supply and demand of EV battery charging and swapping station in China in 2017-2022. [Online]. Available: http://www.chinabgao.com/report/2759742.html.

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