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Energy management of residential microgrids using random drift particle swarm optimization

机译:使用随机漂移粒子群优化的住宅微电网的能量管理

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The energy management problem of residential microgrids is studied in this paper. Both the grid-connected and islanded modes of operation are considered. The problem has a dynamic nature due to the existence of the energy storage devices in the microgrid components. In addition, the inclusion of deferrable loads introduces integer decision variables to the problem formulation. Consequently, the problem is formulated as a mixed integer dynamic optimization problem in the case of the grid-connected mode of operation. In order to solve the problem, a powerful variant of the particle swarm optimization algorithm known as the random drift particle swarm optimization is adapted in this paper. The results of applying this variant have been compared with those of two state of the art optimization techniques, namely the particle swarm optimization and the differential evolution algorithm. The results of the comparison show that a remarkable saving in the operational cost of residential microgrids can be achieved through utilizing the random drift particle swarm optimization technique for solving the problem.
机译:本文研究了住宅微电网的能量管理问题。兼顾网格连接和岛状的操作模式。由于微电网组件中的能量存储装置存在,问题具有动态性质。此外,包含可推迟的负载将整数决策变量引入问题制定。因此,在网格连接的操作模式的情况下,将问题称为混合整数动态优化问题。为了解决问题,本文调整了称为随机漂移粒子群优化的粒子群优化算法的强大变体。将该变体应用的结果与本领域技术的两种状态相比,即粒子群优化和差分演进算法。比较结果表明,通过利用随机漂移粒子群优化技术来解决该问题,可以实现住宅微电网的操作成本的显着节省。

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