线性负荷孤岛低压微电网解耦三角饱和下垂控制器的二次频率控制

Mohammed Alghobari, A. Alhussainy, Sultan Alghamdi, M. Rawa, A. Abusorrah
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引用次数: 0

摘要

提出一种结合解耦三角饱和下垂控制器(DTSDC)的鲁棒二次频率控制方法。主频率控制器会引起频率调节误差,影响微网分布式发电机组的负荷共享精度。因此,设计了一个集中的二次控制器,将频率收敛到成网逆变器的标称值。使用先进的通信信道,所提出的主控制器和从控制器可以主要恢复干扰期间的频率,例如DG开/关开关和负载系统变化。在一个由4台并联逆变器组成的网状微电网系统上,用MATLAB仿真环境验证了该控制器的实用性和性能。仿真结果表明,该控制器对微电网频率稳定具有鲁棒性。因此,它实现了与线性负载精确的有功功率共享。此外,本研究还讨论了电阻线和电感线阻抗的影响。通过将微网集中式控制器(MGCC)与解耦三角饱和下垂控制器(DTSDC)进行比较,证明了所提控制器性能的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Secondary Frequency Control of Decoupled Trigonometric Saturated Droop Controller for Islanded Low-Voltage Mesh Microgrid with Linear Load
This paper presents a robust secondary frequency control integrated with decoupled trigonometric saturated droop controller (DTSDC). The primary frequency controller may induce an error in frequency regulation, which affects the load sharing accuracy among microgrid distributed generators (DGs). Therefore, a centralized secondary controller is designed to converge the frequency to its nominal value for grid-forming inverters. Using an advanced communication channel, the proposed primary and secondary controller can primarily restore the frequency during disturbances, such as DG on/off switching and loading system variation. The practicality and performance of the proposed controller have been demonstrated with MATLAB simulation environment on a mesh microgrid system consisting of four parallel DGs-based inverters. Simulation results show the proposed controller’s robustness in the microgrid frequency stability. Hence, it achieves accurate active power sharing with a linear load. Moreover, the impact of resistive and inductive line impedance is discussed in this study. A comparison between the microgrid centralized controller (MGCC) and the decoupled trigonometric saturated droop controller (DTSDC) only is conducted to show the robustness of the presented controller performance.
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