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An evolutionary approach for the demand side management optimization in smart grid

机译:智能电网需求侧管理优化的进化方法

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An important function of a Smart Grid (SG) is the Demand Side Management (DSM), which consists on controlling loads at customers side, aiming to operate the system with major efficiency and sustainability. The main advantages of this technique are (i) the decrease of demand curve's peak, that results on smoother load profile and (ii) the reduction of both operational costs and the requirement of new investments in the system. The customer can save money by using loads on schedules with lower taxes instead of schedules with higher taxes. In this context, this work proposes a simple metaheuristic to solve the problem of DSM on smart grid. The suggested approach is based on the concept of day-ahead load shifting, which implies on the exchange of the use schedules planned for the next day and aims to obtain the lowest possible cost of energy. The demand management is modeled as an optimization problem whose solution is obtained by using an Evolutionary Algorithm (EA). The experimental tests are carried out considering a smart grid with three distinct demand areas, the first with residential clients, other one with commercial clients and a third one with industrial clients, all of them possessing a major number of controllable loads of diverse types. The obtained results were significant in all three areas, pointing substantial cost reductions for the customers, mainly on the industrial area.
机译:智能电网(SG)的一项重要功能是需求侧管理(DSM),它由控制客户侧的负载组成,旨在以高效率和可持续性来运行系统。该技术的主要优点是:(i)降低需求曲线的峰值,从而使负载曲线更加平滑;(ii)降低运营成本和系统中新投资的需求。客户可以通过使用税率较低的计划而不是税率较高的计划来节省资金。在这种情况下,这项工作提出了一种简单的元启发法来解决智能电网上的DSM问题。所建议的方法基于日前负荷转移的概念,这意味着交换计划在第二天使用的使用计划,旨在获得最低的能源成本。需求管理被建模为一个优化问题,其解决方案是通过使用进化算法(EA)获得的。在考虑具有三个不同需求区域的智能电网的情况下进行了实验测试,第一个需求领域是住宅客户,另一个是商业客户,第三个是工业客户,它们都拥有大量可控的各种类型的负载。所获得的结果在所有三个领域都非常显着,这表明主要在工业领域的客户可以大幅降低成本。

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