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A hybrid agent-based secondary control for microgrids with increased fault-tolerance needs

机译:基于混合剂的次要电网的二次控制,具有增加的容错需求

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This paper proposes a hybrid secondary control architecture for microgrids with AC-coupled droop-controlled units, based on both centralised and distributed control principles. The proposed secondary control is based on a multi-agent system (MAS), complemented by a microgrid centralised controller (MGCC). The system is able to adjust the droop curves dynamically in order to achieve voltage/frequency restoration as well as active/reactive power optimal allocation, based on the actual status of the controllable units, in particular, the state-of-charge of batteries and maximum power point of photovoltaics. The distributed nature of the agents is also fully exploited because the proposed framework retains operability even under fault on secondary MGCC. To evaluate the proposed framework, a scenario-based performance analysis has been tested over a simulated AC islanded microgrid, where communication from the MGCC is suddenly interrupted and the MAS is required to reconfigure in order to maintain the same control objectives. MATLAB/Simulink simulations have been realised using detailed physical form models for a small-scale microgrid, while the implementation of the MGCC and MAS is accomplished through Java Agent Development (JADE) framework.
机译:本文提出了一种基于集中和分布式控制原理的带有交流耦合下垂控制单元的微电网的混合二次控制架构。所提出的二级控制基于多替代系统(MAS),由微电网集中控制器(MGCC)互补。该系统能够动态调整下垂曲线,以便根据可控单元的实际状态,实现电压/频率恢复以及主动/无功最优分配,特别是电池的状态和电池的状态光伏的最大功率点。代理商的分布性也是充分利用的,因为所提出的框架即使在次级MGCC上的故障下保持可操作性。为了评估所提出的框架,已经通过模拟的交流岛Microgrid测试了一种基于场景的性能分析,其中MGCC的通信突然中断,并且需要重新配置MAS以保持相同的控制目标。使用小规模微电网的详细物理形式模型实现了MATLAB / SIMULINK仿真,而MGCC和MAS的实现是通过Java Agent开发(JAD)框架来实现的。

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