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Multiobjective Intelligent Energy Management for a Microgrid

机译:微电网的多目标智能能源管理

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In this paper, a generalized formulation for intelligent energy management of a microgrid is proposed using artificial intelligence techniques jointly with linear-programming-based multiobjective optimization. The proposed multiobjective intelligent energy management aims to minimize the operation cost and the environmental impact of a microgrid, taking into account its preoperational variables as future availability of renewable energies and load demand (LD). An artificial neural network ensemble is developed to predict 24-h-ahead photovoltaic generation and 1-h-ahead wind power generation and LD. The proposed machine learning is characterized by enhanced learning model and generalization capability. The efficiency of the microgrid operation strongly depends on the battery scheduling process, which cannot be achieved through conventional optimization formulation. In this paper, a fuzzy logic expert system is used for battery scheduling. The proposed approach can handle uncertainties regarding to the fuzzy environment of the overall microgrid operation and the uncertainty related to the forecasted parameters. The results show considerable minimization on operation cost and emission level compared to literature microgrid energy management approaches based on opportunity charging and Heuristic Flowchart (HF) battery management.
机译:本文提出了一种人工智能技术与基于线性规划的多目标优化相结合的微电网智能能源管理的通用公式。拟议的多目标智能能源管理旨在将微电网的运行成本和对环境的影响降到最低,并考虑到其预运行变量,如未来可再生能源的可利用性和负荷需求(LD)。开发了一个人工神经网络集成来预测提前24小时的光伏发电,提前1小时的风力发电和LD。所提出的机器学习的特征在于增强的学习模型和泛化能力。微电网运行的效率在很大程度上取决于电池调度过程,这是无法通过常规优化公式实现的。本文将模糊逻辑专家系统用于电池调度。所提出的方法可以处理关于整个微电网运行的模糊环境的不确定性以及与预测参数有关的不确定性。结果表明,与基于机会充电和启发式流程图(HF)电池管理的文献微电网能源管理方法相比,运营成本和排放水平大大降低了。

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