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Management of Battery-Supercapacitor Hybrid Energy Storage and Synchronous Condenser for Isolated Operation of PMSG Based Variable-Speed Wind Turbine Generating Systems

机译:基于PMSG变速风力发电系统隔离运行的电池-超级电容器混合储能和同步电容器的管理

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摘要

Standalone operation of a wind turbine generating system under fluctuating wind and variable load conditions is a difficult task. Moreover, high reactive power demand makes it more challenging due to the limitation of reactive capability of the wind generating system. A Remote Area Power Supply (RAPS) system consisting of a Permanent Magnet Synchronous Generator (PMSG), a hybrid energy storage, a dump load and a mains load is considered in this paper. The hybrid energy storage consists of a battery storage and a supercapacitor where both are connected to the DC bus of the RAPS system. An energy management algorithm (EMA) is proposed for the hybrid energy storage with a view to improve the performance of the battery storage. A synchronous condenser is employed to provide reactive power and inertial support to the RAPS system. A coordinated control approach is developed to manage the active and reactive power flows among the RAPS components. In this regard, individual controllers for each RAPS component have been developed for effective management of the RAPS components. Through simulation studies carried out using detailed model in MATLAB Simulink, it has been demonstrated that the proposed method is capable of achieving: a) robust voltage and frequency regulation (in terms of their acceptable bandwidths), b) effective management of the hybrid storage system, c) reactive power capability and inertial support by the synchronous condenser, and d) maximum power extraction from wind.
机译:在波动的风和可变的负载条件下,风力涡轮机发电系统的独立操作是困难的任务。此外,由于风力发电系统的无功能力的限制,高无功功率需求使其更具挑战性。本文考虑了一种由永磁同步发电机(PMSG),混合动力储能,倾卸负载和干线负载组成的远程区域电源(RAPS)系统。混合式能量存储器由电池存储器和超级电容器组成,两者均连接到RAPS系统的DC总线。提出了一种用于混合能量存储的能量管理算法(EMA),以提高电池存储的性能。同步电容器用于为RAPS系统提供无功功率和惯性支撑。开发了一种协调控制方法来管理RAPS组件之间的有功和无功功率流。在这方面,已经为每个RAPS组件开发了单独的控制器,以有效管理RAPS组件。通过在MATLAB Simulink中使用详细模型进行的仿真研究,已证明所提出的方法能够实现:a)稳健的电压和频率调节(就其可接受的带宽而言),b)混合存储系统的有效管理,c)同步电容器的无功功率能力和惯性支持,以及d)从风中提取最大功率。

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