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Management of Low- and High-Frequency Power Components in Demand-Generation Fluctuations of a DFIG-Based Wind-Dominated RAPS System Using Hybrid Energy Storage

机译:基于混合能量存储的基于DFIG的风为主的RAPS系统的需求波动中的低频和高频功率组件管理

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This paper presents a control strategy for managing the demand-generation fluctuations using a hybrid energy storage system in a wind-dominated remote area power supply (RAPS) system consisting of a doubly fed induction generator (DFIG), a battery storage system, a supercapacitor, a dump load, and main loads. Operation of a battery storage system is coordinated with a supercapacitor with a view to improving the performance of the battery. In this regard, the battery storage system is connected to the load side of the RAPS system, whereas the supercapacitor is connected to the dc bus of the back-to-back converter of the DFIG. The operation of the hybrid energy storage system is coordinated through the implementation of a power management algorithm, which is developed with a view to reducing the depth of discharge and ripple content of the battery current. In addition, the dump load is connected to the load side of the RAPS system, which utilizes the power in situations that cannot be handled via an energy storage system. In addition, a coordination method has been developed and proposed to coordinate the power flows among all system components with a view to regulating the power flow and thereby ensuring the robust voltage and frequency control on the load side while capturing the maximum power from wind.
机译:本文提出了一种控制策略,用于在由双馈感应发电机(DFIG),电池存储系统,超级电容器组成的风控偏远地区电源(RAPS)系统中使用混合能量存储系统来管理需求波动,转储负载和主要负载。为了改善电池的性能,电池存储系统的操作与超级电容器相协调。在这方面,电池存储系统连接到RAPS系统的负载侧,而超级电容器连接到DFIG背对背转换器的dc总线。混合动力储能系统的运行通过实施功率管理算法进行协调,该算法旨在降低电池深度的放电深度和纹波含量。此外,倾卸负载连接到RAPS系统的负载侧,该系统在无法通过储能系统处理的情况下利用电源。另外,已经开发并提出了一种协调方法,以协调所有系统组件之间的功率流,以调节功率流,从而确保在负载侧进行鲁棒的电压和频率控制,同时从风中获取最大功率。

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