电气技术  2018, Vol. 19 Issue (8): 168-173    DOI:
电动汽车及充电技术 |
基于聚类算法的电动汽车充放电分时电价优化
宋健1, 李梦佳2, 刘囡3, 荆培波1, 郭雅欣3
1. 国网山东省电力公司东营供电公司,山东 东营 257091;
2. 山东科技大学电气与自动化工程学院,山东 青岛 266590;
3. 东营方大电力设计规划有限公司,山东 东营 257091
The time-of-use price optimization of electric vehicle charging and discharging based on clustering algorithm
Song Jian1, Li Mengjia2, Liu Nan3, Jing Peibo1, Guo Yaxin3
1. State Grid Shandong Dongying Electric Power Company, Dongying, Shandong 257091;
2. College of Electrical Engineering and Automation, Shandong University of Science and Technology, Qingdao, Shandong 266590;
3. The limited company of Dongying Fangda about Electric Power Design and Planning, Dongying, Shandong 257091
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摘要 随着电动汽车的增多,电动汽车无序充电会给电网运行带来较大的负面影响。同时,随着电力市场改革,实施分时电价是必然的选择,通过合理设置充放电分时电价能够引导电动汽车用户的有序充放电。本文以私家车为研究对象,根据用户的充电持续时间、充电开始时间特征进行K-均值聚类分析得到用户日常的充电规律,建立减少电网波动及减少用户用电成本的目标函数,最后通过布谷鸟搜索算法进行最佳分时电价的求解。通过小区实际负荷实例验证此分时电价调度策略能够有效的减少用户用电成本,改善电网运行状况。
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宋健
李梦佳
刘囡
荆培波
郭雅欣
关键词 电动汽车聚类算法分时电价布谷鸟搜索算法    
Abstract:With the increase of electric vehicles, uncontrolled charging of electric vehicle will bring greater negative influence to the power system operation. At the same time, along with the electricity market reformation, the implementation of TOU price is the inevitable choice. Through a reasonable set of charging and discharging TOU price can guide the electric vehicle users. In this paper, private cars are taken as the research object. According to the user's charging duration and charging start time characteristics, the K-means clustering analysis is performed to obtain the user's daily charging rules. Therefore, an objective function for reducing grid fluctuations and the user's electricity cost is established. Finally, the optimal time-of-use price is solved by cuckoo search (CS) algorithm. Through the example of the actual load of a community, the scheduling strategy can effectively reduce user electricity cost and improve the operation of the power grid.
Key wordselectric vehicle    clustering algorithm    time-of-use price    cuckoo search algorithm   
收稿日期: 2018-03-24      出版日期: 2018-08-31
引用本文:   
宋健, 李梦佳, 刘囡, 荆培波, 郭雅欣. 基于聚类算法的电动汽车充放电分时电价优化[J]. 电气技术, 2018, 19(8): 168-173. Song Jian, Li Mengjia, Liu Nan, Jing Peibo, Guo Yaxin. The time-of-use price optimization of electric vehicle charging and discharging based on clustering algorithm. Electrical Engineering, 2018, 19(8): 168-173.
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https://dqjs.cesmedia.cn/CN/Y2018/V19/I8/168