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Optimal energy management for industrial microgrids with high-penetration renewables

机译:具有高渗透率可再生能源的工业微电网的最佳能源管理

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This paper presents a day-ahead optimal energy management strategy for economic operation of industrial microgrids with high-penetration renewables under both isolated and grid-connected operation modes. The approach is based on a regrouping particle swarm optimization (RegPSO) formulated over a day-ahead scheduling horizon with one hour time step, taking into account forecasted renewable energy generations and electrical load demands. Besides satisfying its local energy demands, the microgrid considered in this paper (a real industrial microgrid, "Goldwind Smart Microgrid System" in Beijing, China), participates in energy trading with the main grid; it can either sell power to the main grid or buy from the main grid. Performance objectives include minimization of fuel cost, operation and maintenance costs and energy purchasing expenses from the main grid, and maximization of financial profit from energy selling revenues to the main grid. Simulation results demonstrate the effectiveness of various aspects of the proposed strategy in different scenarios. To validate the performance of the proposed strategy, obtained results are compared to a genetic algorithm (GA) based reference energy management approach and confirmed that the RegPSO based strategy was able to find a global optimal solution in considerably less computation time than the GA based reference approach.
机译:本文提出了在隔离和并网运行模式下,针对具有高渗透率可再生能源的工业微电网经济运行的超前优化能源管理策略。该方法基于在一天的调度范围内以一个小时的时间步长制定的重组粒子群优化(RegPSO),同时考虑了预测的可再生能源发电量和电力负荷需求。除了满足当地的能源需求外,本文考虑的微电网(实际的工业微电网,即中国北京的“金风智能微电网系统”)还参与了与主电网的能源交易;它既可以向主电网出售电力,也可以从主电网购买电力。绩效目标包括最大程度地减少燃料成本,运营和维护成本以及从主电网中购买能源的支出,以及从向主电网销售能源中获得最大财务收益。仿真结果证明了该方案在不同情况下各个方面的有效性。为了验证所提出策略的性能,将获得的结果与基于遗传算法(GA)的参考能量管理方法进行比较,并确认基于RegPSO的策略能够以比基于GA的参考更少的计算时间找到全局最优解。方法。

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