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Adaptive Neural Network-Based Control of a Hybrid AC/DC Microgrid

机译:基于自适应神经网络的AC / DC混合微电网控制

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摘要

In this paper, the behavior of a grid-connected hybrid ac/dc microgrid has been investigated. Different renewable energy sources - photovoltaics modules and a wind turbine generator - have been considered together with a solid oxide fuel cell and a battery energy storage system. The main contribution of this paper is the design and the validation of an innovative online-trained artificial neural network-based control system for a hybrid microgrid. Adaptive neural networks are used to track the maximum power point of renewable energy generators and to control the power exchanged between the front-end converter and the electrical grid. Moreover, a fuzzy logic-based power management system is proposed in order to minimize the energy purchased from the electrical grid. The operation of the hybrid microgrid has been tested in the MATLAB/Simulink environment under different operating conditions. The obtained results demonstrate the effectiveness, the high robustness and the self-adaptation ability of the proposed control system.
机译:在本文中,已经研究了并网交流/直流微电网的行为。已经考虑了不同的可再生能源-光伏模块和风力发电机-以及固体氧化物燃料电池和电池储能系统。本文的主要贡献是设计和验证了一种创新的基于在线训练的基于人工神经网络的混合微电网控制系统。自适应神经网络用于跟踪可再生能源发电机的最大功率点,并控制前端转换器和电网之间交换的功率。此外,为了最小化从电网购买的能量,提出了基于模糊逻辑的功率管理系统。混合微电网的运行已在MATLAB / Simulink环境中的不同运行条件下进行了测试。获得的结果证明了所提出的控制系统的有效性,高鲁棒性和自适应能力。

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