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Intelligent appliance control algorithm for optimizing user energy demand in smart homes

机译:智能家电控制算法优化智能家庭中用户能源需求

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Advanced metering infrastructure which is an integral component of smart homes has aided in tapping the potential of the residential sector for demand side management (DSM). DSM in smart homes focus mainly on some power-intensive appliances which affect the household load profile significantly. This paper proposes an intelligent appliance control (IAC) algorithm to monitor and control the daily operation of these power-intensive appliances using their simulated load models. The proposed algorithm employs differential evolution (DE) algorithm along with a DSM strategy to limit the smart household power consumption at every half an hour to an optimum limit. The paper demonstrates the ability of the proposed algorithm in minimizing the households' monthly electricity bill, maximizing the peak load reduction and minimizing the problem of distribution transformer overloading. The paper also focuses on studying the impacts of time of use (TOU) electricity pricing on residential customers' behavior. The simulation results indicate that TOU pricing augments the benefits of the proposed algorithm both at the residential level and the distribution transformer level.
机译:作为智能家庭的整体组成部分的先进计量基础设施辅助挖掘住宅部门的潜力,以便需求侧管理(DSM)。智能家居的DSM主要专注于一些电力密集型电器,显着影响家庭载荷概况。本文提出了一种智能设备控制(IAC)算法,用于使用其模拟负载模型监测和控制这些电力密集型电器的日常操作。该算法采用差分演进(DE)算法以及DSM策略,以将智能家用功耗限制在每隔半小时的每隔半小时到最佳限制。本文展示了所提出的算法在最大限度地减少家庭月用电费中的能力,最大限度地提高峰值负荷减少,最大限度地减少分配变压器过载问题。本文还侧重于研究使用时间(TOU)电力定价对住宅客户行为的影响。仿真结果表明,TOU定价在住宅级和分布式变压器级别增强了所提出的算法的益处。

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