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A Maximum Power Loading Factor (MPLF) Control Strategy for Distributed Secondary Frequency Regulation of Islanded Microgrid

机译:孤岛微电网分布式二次调频的最大功率负载因数(MPLF)控制策略

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摘要

Microgrids rely on both primary and secondary frequency control techniques to maintain system stability. Secondary frequency control effectively minimizes frequency fluctuations by adjusting the active power reference in each power inverter, but requires complex and costly interequipment communication. In this paper, we propose a distributed secondary frequency control strategy for microgrids containing multiple virtual synchronous generator (VSG) units based on a new maximum power loading factor (MPLF) concept. The MPLF algorithm facilitates power sharing by dynamically identifying the maximum VSG loading factor at each time instance, and then using this value as a unified reference signal for all the VSGs in themicrogrid. The active power reference for each VSG will be adjusted based on the unified reference signal, subsequently the secondary frequency control can be realized. The proposed strategy does not require high-bandwidth communication since the MPLF data are transmitted among the VSGs using low-bandwidth communication. We also develop small-signal models for the control architecture to analyze the influence of major proportional-integral control parameters and communication latency. The MPLF control strategy is implemented using custom digital signal processor controllers, and experimentally validated using hardware in loop simulations. Finally, the new control paradigm demonstrates significant tolerance for communication delay or failure, which we purposely introduced in our investigation.
机译:微电网依赖于主要和次要频率控制技术来维持系统稳定性。次级频率控制通过调整每个功率逆变器中的有功功率参考有效地最小化了频率波动,但是需要复杂且昂贵的设备间通信。在本文中,我们基于新的最大功率负载因数(MPLF)概念,为包含多个虚拟同步发电机(VSG)单元的微电网提出了分布式次级频率控制策略。 MPLF算法通过动态标识每个时间点的最大VSG负载因子,然后将此值用作微电网中所有VSG的统一参考信号,来促进功率共享。每个VSG的有功功率基准将根据统一的基准信号进行调整,随后即可实现次级频率控制。所提出的策略不需要高带宽通信,因为使用低带宽通信在VSG之间传输了MPLF数据。我们还为控制体系结构开发了小信号模型,以分析主要比例积分控制参数和通信延迟的影响。 MPLF控制策略是使用自定义数字信号处理器控制器实现的,并通过硬件在环路仿真中进行了实验验证。最后,新的控制范式展示了对通信延迟或故障的显着容忍度,我们在研究中故意引入了这种容忍度。

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