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Optimal Residential Demand Response for Multiple Heterogeneous Homes With Real-Time Price Prediction in a Multiagent Framework

机译:Multiagent框架中具有实时价格预测的多个异构房屋的最优住宅需求响应

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Demand response (DR) is a recent effort to improve the efficiency of the electricity market and the stability of the power system. A successful implementation relies on both appropriate policy design and enabling technology. This paper presents a multiagent system to evaluate optimal residential DR implementation in a distribution network, in which the main stakeholders are modeled by heterogeneous home agents (HAs) and a retailer agent (RA). The HA is able to predict and control electricity load demand. A real-time price prediction model is developed for the HA and the RA. The optimal control of electricity consumption is formulated into a convex programming problem to minimize electricity payment and waiting time under real-time pricing. Simulation results show that the peak-to-average power ratio and electricity payments are significantly reduced using the proposed algorithms. The HA, with the proposed optimal control algorithms, can be embedded into a home energy management system to make intelligent decisions on behalf of homeowners responding to DR policies. The proposed agent system can be utilized to evaluate various strategies and emerging technologies that enable the implementation of DR.
机译:需求响应(DR)是提高电力市场效率和电力系统稳定性的最新努力。成功的实施取决于适当的策略设计和支持技术。本文提出了一种用于评估分销网络中最佳住宅灾难恢复实施情况的多主体系统,该系统中的主要利益相关者通过异构家庭代理(HA)和零售商代理(RA)进行建模。房委会能够预测和控制用电需求。针对HA和RA开发了实时价格预测模型。在实时定价下,将耗电量的最佳控制公式化为凸规划问题,以最大程度地减少电费和等待时间。仿真结果表明,该算法大大降低了峰均功率比和用电量。具有建议的最佳控制算法的HA可以嵌入到家庭能源管理系统中,以代表响应DR策略的房主做出智能决策。提议的代理系统可用于评估支持DR实施的各种策略和新兴技术。

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