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Dynamic price optimization models for managing time-of-day electricity usage

机译:动态价格优化模型,用于管理一天中的用电量

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We present a day-ahead price-optimization based approach for an electric utility to proactively manage the intra-day residential electricity load profile, using dynamic-pricing incentives within a smart grid framework. A novel aspect of our approach is the ability to predict the customer response to price incentives that are designed to induce shifts in the electricity usage from the peak to the off-peak time periods of the daily residential load cycle. A Multinomial Logit (MNL) consumer-choice model is used for estimating the magnitudes of these intra-day hourly loads. The resulting nonlinear optimization problem for the specified profit and capacity-utilization objectives is solved using a series of transformations, which include the reformulation-linearization technique (RLT), to obtain a Mixed-Integer Programming (MIP) model. Using a piecewise-linear cost structure for satisfying electricity demand, we subsequently derive a set of valid inequalities to effectively tighten the underlying relaxation of this MIP. The proposed optimization methodology can also incorporate various regulatory and customer bill-protection constraints. Our model calibration and computational analysis using a real-world data set indicates that the proposed predictive-control methodology can be incorporated into a practical decision support tool to manage the time-of-day electricity demand in order to achieve the desired objectives.
机译:我们为电力公司提供一种基于提前价格优化的方法,以在智能电网框架内使用动态定价激励机制来主动管理日内居民用电负荷状况。我们的方法的一个新颖方面是能够预测客户对价格激励措施的反应,该措施旨在引起日常用电周期从高峰时段到非高峰时段的用电量变化。多项式Lo​​git(MNL)消费者选择模型用于估算这些日内小时负荷的大小。通过一系列转换(包括重构线性化技术(RLT))解决了针对指定利润和产能利用目标所产生的非线性优化问题,以获得混合整数规划(MIP)模型。使用分段线性成本结构来满足电力需求,我们随后得出了一组有效不等式,以有效地收紧该MIP的潜在放松。所提出的优化方法还可以纳入各种监管和客户账单保护约束。我们使用实际数据集进行的模型校准和计算分析表明,可以将拟议的预测控制方法并入实用的决策支持工具中,以管理一天中的用电需求,以实现所需的目标。

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