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QoE-aware power management in vehicle-to-grid networks:a matching-theoretic approach

机译:车对网网络中的QoE感知功率管理:一种匹配理论方法

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摘要

Frequency, time and places of charging and discharging have critical impact on the Quality of Experience (QoE) of using Electric Vehicles (EVs). EV charging and discharging scheduling schemes should consider both the QoE of using EV and the load capacity of the power grid. In this paper, we design a traveling plan-aware scheduling scheme for EV charging in driving pattern and a cooperative EV charging and discharging scheme in parking pattern to improve the QoE of using EV and enhance the reliability of the power grid. For traveling planaware scheduling, the assignment of EVs to Charging Stations (CSs) is modeled as a many-to-one matching game and the Stable Matching Algorithm (SMA) is proposed. For cooperative EV charging and discharging in parking pattern, the electricity exchange between charging EVs and discharging EVs in the same parking lot is formulated as a many-to-many matching model with ties, and we develop the Pareto Optimal Matching Algorithm (POMA). Simulation results indicates that the SMA can significantly improve the average system utility for EV charging in driving pattern, and the POMA can increase the amount of electricity offloaded from the grid which is helpful to enhance the reliability of the power grid.
机译:充电和放电的频率,时间和地点对使用电动汽车(EV)的体验质量(QoE)至关重要。电动汽车的充电和放电调度方案应同时考虑使用电动汽车的QoE和电网的负载能力。在本文中,我们设计了一种用于行驶模式的EV充电的行车计划感知调度方案和用于停车模式的EV协同充电和放电方案,以提高使用EV的QoE并增强电网的可靠性。对于旅行计划的调度,将电动汽车到充电站(CS)的分配建模为多对一匹配博弈,并提出了稳定匹配算法(SMA)。对于停车模式下的协作式EV充电和放电,将同一个停车场中的充电EV和放电EV之间的电交换公式化为具有联系的多对多匹配模型,并且我们开发了帕累托最优匹配算法(POMA)。仿真结果表明,SMA可以显着提高驾驶模式下EV充电的平均系统效用,而POMA可以增加从电网卸载的电量,这有助于提高电网的可靠性。

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