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A Dynamic Stochastic Optimization for Recharging Plug-In Electric Vehicles

机译:插电式电动汽车充电的动态随机优化

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This paper presents a recharging scheme for plug-in (hybrid) electric vehicles. Despite their many advantages such as reducing carbon footprint, lower fuel cots, and high performance, uncoordinated recharging of electric vehicles in a high-penetration system can increase system peak load and create new peaks in the demand profile, hence, reducing system reliability and operational integrity. To optimize electric vehicle recharging costs and prevent such reliability problems, a dynamic stochastic optimization method is proposed that formulates a stochastic linear programming approach taking into account load, electricity pricing, and renewable energy generation uncertainties, and solves the day-ahead problem in an offline fashion. A second online stage is also proposed that uses offline solutions, collects real-time system data, and adjusts recharging schedules to obtain a better recharging scheme once system uncertainties are revealed. The proposed method is robust to variations in different stochastic parameters, has a low communication requirement, and benefits both users and the power utility. Recharging system structure, data models, and mathematical formulation of the proposed method are presented. Results demonstrate that unlike other recharging schemes, the proposed method does not increase system peak, does not create new peaks, and fills the valleys of demand profile to optimize power system operations.
机译:本文提出了一种插电式(混合动力)电动汽车的充电方案。尽管它们具有许多优点,例如减少碳足迹,降低油箱和提高性能,但在高渗透率系统中对电动汽车进行不协调的充电会增加系统峰值负荷并在需求曲线中产生新的峰值,因此降低了系统的可靠性和操作性诚信。为了优化电动汽车的充电成本并避免此类可靠性问题,提出了一种动态随机优化方法,该方法制定了一种考虑负荷,电价和可再生能源发电不确定性的随机线性规划方法,并解决了离线状态下的日前问题时尚。还提出了第二个在线阶段,该阶段使用离线解决方案,收集实时系统数据并调整充电时间表,以在发现系统不确定性后获得更好的充电方案。所提出的方法对于不同随机参数的变化是鲁棒的,具有较低的通信要求,并且对用户和电力公用事业都有利。介绍了该方法的充电系统结构,数据模型和数学公式。结果表明,与其他充电方案不同,所提出的方法不会增加系统峰值,不会创建新的峰值,也不会填充需求曲线的谷底以优化电力系统的运行。

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