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关于含风力发电的电动汽车最优充电调度

On optimal charging scheduling for electric vehicles with wind power generation.

作者信息

Wu Junjie, Jia Qing-Shan

机构信息

Center for Intelligent and Networked Systems (CFINS), Department of Automation, Beijing National Research Center for Information Science and Technology (BNRist), Tsinghua University, Beijing 100084, China.

Huawei Technologies Co. Ltd., Shenzhen 518129, China.

出版信息

Fundam Res. 2022 Jun 30;4(4):951-960. doi: 10.1016/j.fmre.2022.04.023. eCollection 2024 Jul.

Abstract

We consider the scheduling of battery charging of electric vehicles (EVs) integrated with renewable power generation. The increasing adoption of EVs and the development of renewable energies contribute importance to this research. The optimization of charging scheduling is challenging because of the large action space, the multi-stage decision making, and the high uncertainty. To solve this problem is time-consuming when the scale of the system is large. It is urgent to develop a practical and efficient method to properly schedule the charging of EVs. The contribution of this work is threefold. , we provide a sufficient condition on which the charging of EVs can be completely self-sustained by distributed generation. An algorithm is proposed to obtain the optimal charging policy when the sufficient condition holds. , the scenario when the supply of the renewable power generation is deficient is investigated. We prove that when the renewable generation is deterministic there exists an optimal policy which follows the modified least laxity and longer remaining processing time first (mLLLP) rule. , we provide an adaptive rule-based algorithm which obtains a near-optimal charging policy efficiently in general situations. We test the proposed algorithm by numerical experiments. The results show that it performs better than the other existing rule-based methods.

摘要

我们考虑与可再生能源发电相结合的电动汽车(EV)电池充电调度问题。电动汽车的日益普及和可再生能源的发展使得这项研究变得重要。由于行动空间大、多阶段决策以及高度不确定性,充电调度的优化具有挑战性。当系统规模较大时,解决这个问题很耗时。迫切需要开发一种实用且高效的方法来合理安排电动汽车的充电。这项工作的贡献有三个方面。首先,我们给出了一个充分条件,在该条件下电动汽车的充电可以完全由分布式发电自给自足。提出了一种算法,当充分条件成立时获得最优充电策略。其次,研究了可再生能源发电供应不足的情况。我们证明,当可再生发电是确定性的时,存在一种遵循修改后的最小松弛度和最长剩余处理时间优先(mLLLP)规则的最优策略。最后,我们提供了一种基于自适应规则的算法,该算法在一般情况下能有效地获得接近最优的充电策略。我们通过数值实验对所提出的算法进行了测试。结果表明,它的性能优于其他现有的基于规则的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/517a/11330098/821105a6fc15/gr9.jpg

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