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An Incentive Pricing Approach for Integrated Demand Response in Multi-energy System Based on Consumer Classification

机译:基于消费者分类的多能源系统综合需求响应激励定价方法

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The rapid growth of energy demand has put tremendous pressure on the power system. In order to ease the pressure of the power system and balance supply and demand in the peak periods, we devise an integrated demand response (IDR) program by taking different types of consumers into consideration. Different from most of the existing works that model the responsive demand without classification, we classify consumers into different clusters using the method of k-means. Based on the classification result, the responsive demand models are obtained through historical data. The proposed IDR program is modeled as a nonlinear programming problem. By establishing the Karush-Kuhn-Tucker conditions, the closed-form optimal energy scheduling strategy is given. Moreover, we design an incentive pricing mechanism from which utility company can make optimal decisions. Simulations validate that the proposed IDR can solve the problem of the imbalance between supply and demand in the peak periods and the total costs of utility company can be reduced by implementing different incentive prices for different clusters of consumers.
机译:能源需求的快速增长给电力系统带来了巨大压力。为了缓解电力系统的压力并在高峰时段平衡供需,我们考虑了不同类型的消费者,设计了一个综合需求响应(IDR)计划。与大多数现有的对响应需求进行建模而无需分类的工作不同,我们使用k均值方法将消费者分类为不同的集群。基于分类结果,通过历史数据获得响应需求模型。提出的IDR程序被建模为非线性编程问题。通过建立Karush-Kuhn-Tucker条件,给出了封闭形式的最优能量调度策略。此外,我们设计了一种激励定价机制,公用事业公司可以根据该定价机制做出最佳决策。仿真验证了所提出的IDR可以解决高峰时期供需不平衡的问题,并且可以通过对不同的消费者群体实施不同的激励价格来降低公用事业公司的总成本。

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