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A Scalable and Distributed Algorithm for Managing Residential Demand Response Programs Using Alternating Direction Method of Multipliers (ADMM)

机译:使用乘数的交替方向方法管理住宅需求响应程序的可扩展和分布式算法(ADMM)

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摘要

For effective engagement of residential demand-side resources and to ensure efficient operation of distribution networks, we must overcome the challenges of controlling and coordinating residential components and devices at scale. In this paper, we present a distributed and scalable algorithm with a three-level hierarchical information exchange architecture for managing the residential demand response programs. First, a centralized optimization model is formulated to maximize community social welfare. Then, this centralized model is solved in a distributed manner with alternating direction method of multipliers (ADMM) by decomposing the original problem to utility-level and house-level problems. The information exchange between the different layers is limited to the primary residual (i.e., supply-demand mismatch), Lagrangian multipliers, and the total load of each house to protect each customer’s privacy. Simulation studies are performed on the IEEE 33 bus test system with 605 residential customers. The results demonstrate that the proposed approach can reduce customers’ electricity bills and reduce the peak load at the utility level without much affecting customers’ comfort and privacy. Finally, a quantitative comparison of the distributed and centralized algorithms shows the scalability advantage of the proposed ADMM-based approach, and it gives benchmarking results with achievable value for future research works.
机译:为了有效参与住宅需求侧资源,并确保有效运行配送网络,我们必须克服控制和协调住宅组件和装置的挑战。在本文中,我们提出了一种具有三级分层信息交换架构的分布式和可扩展算法,用于管理住宅需求响应程序。首先,配制集中优化模型以最大限度地提高社区社会福利。然后,通过将原始问题分解到公用事业级别和房屋级问题,以分布式方式以分布式方式求解该集中式模型,以乘法器(ADMM)。不同层之间的信息交换仅限于主要残差(即供需不匹配),拉格朗日乘法器,以及每个房屋的总负载,以保护每个客户的隐私。用605个住宅客户对IEEE 33总线测试系统进行仿真研究。结果表明,该方法可以减少客户的电费,并降低公用事业级别的峰值负荷,而不会影响客户的舒适和隐私。最后,分布式和集中式算法的定量比较显示了所提出的基于ADMM的方法的可扩展性优势,并且它为未来的研究工作提供了可实现的值的基准结果。

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