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Heuristic optimization for an aggregator-based resource allocation in the smart grid

机译:智能电网中基于聚合器的资源分配的启发式优化

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We utilize a for-profit aggregator-based residential demand response (DR) approach to the smart grid resource allocation problem. The aggregator entity, using a given set of schedulable residential customer assets (e.g., smart appliances), must set a schedule to optimize for a given objective. Here, we consider optimizing for the profit of the aggregator. To encourage customer participation in the residential DR program, a new pricing structure named customer incentive pricing (CIP) is proposed. The aggregator profit is optimized using a proposed heuristic framework, implemented in the form of a genetic algorithm, that must determine a schedule of customer assets and the CIP. To validate our heuristic framework, we simulate the optimization of a large-scale system consisting of 5555 residential customer households and 56 642 schedulable assets using real pricing data over a period of 24-h. We show that by optimizing purely for economic reasons, the aggregator can enact a beneficial change on the load profile of the overall power system.
机译:我们利用基于营利性聚合器的居民需求响应(DR)方法来解决智能电网资源分配问题。使用给定的一组可调度的住宅客户资产(例如,智能设备)的聚合实体必须设置时间表以针对给定的目标进行优化。在这里,我们考虑针对聚合器的利润进行优化。为了鼓励客户参与住宅灾难恢复计划,提出了一种名为客户激励定价(CIP)的新定价结构。使用建议的启发式框架(以遗传算法的形式实现)来优化聚合器利润,该启发式框架必须确定客户资产和CIP的进度表。为了验证我们的启发式框架,我们在24小时内使用真实的定价数据模拟了由5555个住宅客户家庭和56642个可调度资产组成的大型系统的优化。我们证明,通过纯粹出于经济原因进行优化,聚合器可以对整个电力系统的负载曲线进行有益的更改。

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