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A two-layer model for dynamic pricing of electricity and optimal charging of electric vehicles under price spikes

机译:在价格上涨时动态定价和优化电动汽车充电的两层模型

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Pilot projects in power networks conducted across continents have established the benefits of dynamic pricing by inducing increased demand response. However, a key hurdle in the growth of demand response is the lack of widespread availability of advanced metering infrastructure, which has stymied the adoption of dynamic pricing. We believe that this hurdle will be partially addressed by the growth of electric vehicles (EVs), as smart and connected EV parking lots will be a provider of demand response. We develop a two-layer optimization model that simultaneously determines dynamic pricing policy for the system operator and demand response strategies for the EV parking lots. The model minimizes the cost to consumers, while ensuring the system operator's revenue neutral status and addressing real-time price uncertainties. A variant of the 5-bus PJM network is used to demonstrate model implementation. Numerical results show that for a low to moderate price spike scenario, dynamic pricing with demand response from EVs alone can lower the daily average consumer cost of 1.42% compared to the cost of flat pricing. A cost reduction of 6.5% is achieved when price spikes are relatively high. Computational challenges of implementing our model for real networks are discussed in the concluding remarks. (C) 2018 Elsevier Ltd. All rights reserved.
机译:跨大洲进行的电力网络试点项目通过引起需求响应增加而确立了动态定价的好处。然而,需求响应增长的一个主要障碍是缺乏先进计量基础设施的广泛普及,这阻碍了动态定价的采用。我们认为,电动车(EV)的增长将部分解决这一障碍,因为智能和联网的EV停车场将成为需求响应的提供者。我们开发了一个两层优化模型,可以同时确定系统运营商的动态定价策略和EV停车场的需求响应策略。该模型使消费者的成本降到最低,同时确保系统运营商的收入处于中立状态并解决实时价格不确定性。 5总线PJM网络的一种变体用于演示模型的实现。数值结果表明,在低至中等价格飙升的情况下,仅电动汽车的需求响应就能实现动态定价,与固定价格相比,每日平均消费者成本可降低1.42%。当价格峰值相对较高时,可将成本降低6.5%。在结束语中讨论了在实际网络中实现我们的模型的计算挑战。 (C)2018 Elsevier Ltd.保留所有权利。

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