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Collaborative Energy Management for a Residential Community: A Non-Cooperative and Evolutionary Approach

机译:住宅社区的协同能源管理:一种非合作和进化的方法

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Collaborative demand response management is an effective method to lower the peak-to-average ratio of demand and to facilitate the integration of locally distributed renewable energy resources to the electricity grid. The aggregator needs a holistic and privacy-preserving demand response management scheme to involve residential customers in a dynamic pricing market scenario. Using a quadratic function to model dynamic pricing, we propose a two-level distributed energy management scheme for a residential community to exploit the benefits of coordination among customers at the aggregator level and the smart devices at the customer level. In the proposed scheme, each customer wants to optimize the scheduling of its smart appliances, demand flexibility of air conditioning load, and energy storage strategies to minimize their expected cost, discomfort and appliance interruption. The aggregator, on the other hand, seeks to minimize the overall expected cost by optimizing customers energy demand and its energy storage strategies. The aggregator level optimization is formulated as a noncooperative Stackelberg equilibrium problem with shared constraints. Meanwhile, the customer level problem is formulated as a multiobjective optimization using different discomfort and interruption indicators to characterize various appliance preferences. We formulate iterative algorithms to obtain the appliance scheduling and storage strategies of the customers using genetic algorithm and to reach convergence. Simulation results indicate that the proposed scheme converges while enforcing the shared constraints and reduces the electricity cost to the customers with a quantifiable tradeoff between multiple objectives.
机译:协作需求响应管理是降低需求峰均比并促进将本地分布的可再生能源整合到电网的有效方法。聚合商需要一个整体的,保护隐私的需求响应管理方案,以使住宅客户参与到动态定价市场中。我们使用二次函数对动态定价进行建模,提出了一种针对居民社区的两级分布式能源管理方案,以利用聚合器级别的客户与客户级别的智能设备之间的协调优势。在提议的方案中,每个客户都希望优化其智能电器的调度,空调负载的需求灵活性以及能量存储策略,以最大程度地降低其预期成本,不适感和电器中断。另一方面,聚合器试图通过优化客户的能源需求及其能源存储策略来最大程度地降低总体预期成本。聚合器级别优化被公式化为具有共享约束的非合作Stackelberg平衡问题。同时,使用不同的不适和中断指标将客户级别的问题表述为多目标优化,以表征各种设备偏好。我们制定了迭代算法,以使用遗传算法获得客户的设备调度和存储策略并达到收敛。仿真结果表明,所提出的方案在强制执行共享约束的同时收敛,并通过多个目标之间的可量化折衷降低了客户的用电成本。

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