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Power Management through Aging-Based Task Scheduling Algorithms for Smart Grids

机译:通过基于老化的任务调度算法进行电源管理,用于智能网格

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This paper presents new algorithms for keeping the supply and demand balanced. Here, a power management scheme is proposed which employs a static and dynamic task scheduling approach based on aging priority factor. To implement the proposed task scheduling algorithm, loads are categorized into uninterruptable and interruptible (or deferrable) loads and then an adaptive priority, based on an aging concept, is assigned to improve the effectiveness of peak shaving while considering the consumer's comfort (by responding to the loads in the desirable interval). The scheduler uses the proposed algorithm to choose between different loads with different priorities at each time slot and the priority will be updated for the next time interval. This paper also discusses a new strategy for taking the peak hours into consideration for adjusting priority factors and helping the power system to have an efficient load dispatch. This goal is achieved by using an artificial neural network to forecast the next day load profile and make the scheduler aware of the peak hours. The system is simulated using MATLAB software and the results show that the Peak to Average Ratio (PAR) is significantly improved by applying the proposed algorithm to real data.
机译:本文介绍了保持供需平衡的新算法。这里,提出了一种基于老化优先级因子的静态和动态任务调度方法的电力管理方案。为了实现所提出的任务调度算法,负载分为不间断和中断(或可推迟的)负载,然后基于老化概念进行自适应优先级,分配给提高峰值剃须的有效性,同时考虑到消费者的舒适度(通过响应所需间隔中的负载)。调度器使用所提出的算法在每个时隙时使用不同优先级的不同负载,并且优先级将更新下一个时间间隔。本文还讨论了为调整优先因素和帮助电力系统提供高效负载调度的新策略。通过使用人工神经网络来实现该目标来预测下一天的负载概况,并使调度器了解高峰时段。使用MATLAB软件模拟系统,结果表明,通过将所提出的算法应用于实际数据,显着提高了平均比率(PAR)的峰值。

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