[Oral Presentation]EV Intra-day Multi-objective Optimal Regulation Strategy Considering Dispatchable Capacity - Presentation details

EV Intra-day Multi-objective Optimal Regulation Strategy Considering Dispatchable Capacity
ID:10 Submission ID:130 View Protection:ATTENDEE Updated Time:2022-11-02 17:45:36 Hits:256 Oral Presentation

Start Time:2022-11-04 08:30 (Asia/Shanghai)

Duration:20min

Session:[S] Power System and Automation [OS17] Oral Session 17

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Abstract
As a typical dispatchable flexible load, electric vehicles’ (EVs) individual controllable power is low, easy to be affected by user behavior, and have a certain randomness, which are difficult to be controlled by conventional power grid regulation method. In order to make full use of the potential of EVs participating in power grid ancillary services, reduce the impact of plug-in-EVs on the power grid, improve the power grid operation level and guarantee the benefits of EV users, this paper proposes a daily multi-objective optimal regulation strategy for EVs participating in peak shaving ancillary services based on the consideration of EVs’ dispatchable capacity. Firstly, EVs dispatchable capacity is evaluated based on controllability of EVs, and then the multi-objective optimization algorithm NSGA-II is used to solve the optimization model, and the grid dispatching instruction is decomposed into EV subgroup dispatching instruction. Finally, the EV subgroup charging scenario is set up and an example simulation is carried out to verify the effectiveness and accuracy of the proposed method.
Keywords
electric vehicle,multi-objective optimization,instruction decomposition,dispatchable capacity
Speaker
JunYi Ma
Master Huazhong University of Science and Technology

Submission Author
Junyi Ma Huazhong University of Science and Technology;State Key Laboratory of Advanced Electromagnetic Engineering and Technology
Haishun Sun Huazhong University of Science and Technology;State Key Laboratory of Advanced Electromagnetic Engineering and Technology
Suyue Xu Huazhong University of Science and Technology;State Key Laboratory of Advanced Electromagnetic Engineering and Technology
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