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Decentralized scheduling of PEV on-street parking and charging for smart grid reactive power compensation

机译:PEV路上停车场的分散调度和智能电网无功补偿的充电

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Power quality is one of the major concerns in modern power systems, especially within smart grids where the power distribution is more dynamic and vulnerable. With drastically more plug-in electric vehicles (PEV) penetrating into the existing power distribution system, Vehicle-to-grid (V2G) technologies have attracted increasing research attention. This paper explores the potential of managing the charging pattern of PEVs for smart grid reactive power compensation. With PEVs' bidirectional AC chargers viewed as mobile reactive power resources, the scheduling of PEVs for parking and charging at distributed on-street stations is formulated into a multi-objective resource allocation problem. One objective is that stations should be allocated with adequate and timely resources (PEVs parked with an appropriate charging pattern) to compensate the time-varying reactive power of the grid. The other objective is that PEV owners should be provided with satisfying parking services with as low monetary cost as possible. We solve this multiobjective optimization problem by using the Normalized Normal Constraint (NNC) method to obtain a set of well-distributed Pareto optimal solutions. A decentralized algorithm based on Lagrangian decomposition is then used to make the optimization scalable as the number of PEVs increases. Simulation results demonstrate the satisfying quality of the obtained Pareto optimal solutions, among which one will be selected by the optimization system according to the grid requirement on the power quality.
机译:电能质量是现代电力系统中的主要问题之一,尤其是在电力分布更加动态和易受伤害的智能网格中。由于彻底地进入现有配电系统的巨大插入电动车(PEV),车辆到网格(V2G)技术引起了越来越多的研究关注。本文探讨了管理智能电网无功补偿的PEV充电模式的可能性。使用PEVS的双向AC充电器被视为移动无功功率资源,PEVS停车位的调度和在分布式的街头站上充电的调度被配制成多目标资源分配问题。一个目的是,应该用足够的资源(用适当的充电图案停放的PEV来分配站,以补偿电网的时变电力。另一个目的是PEV所有者应提供满足令人满意的停车服务,以尽可能低的货币成本。通过使用归一化的正常约束(NNC)方法来获得一组良好分布的Pareto最佳解决方案来解决该多目标优化问题。然后使用基于拉格朗日分解的分散算法,以使优化可扩展,因为PEV的数量增加。仿真结果证明了所获得的Pareto最佳解决方案的满足质量,其中通过优化系统根据电网要求选择一个人的功率质量。

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