恒负荷直流微电网稳定性分析及提高稳定性的补偿方法

Ruyue Ma, Yubin Wang, Fan Wang, Shenhong Wang
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引用次数: 0

摘要

为了解决直流微电网中大量恒功率负载导致的系统不稳定问题,本文引入了主动阻尼补偿和虚拟负电感补偿两种补偿方法来提高直流微电网的稳定性。通过设计电压电流双闭环的Boost变换器和可视为恒功率负载的DC-DC变换器,建立直流微电网的小信号数学模型。基于系统优势极分布原理,采用李雅普诺夫特征值法估计直流微电网的功率边界。为了提高系统的稳定性,在源控制回路中直接采用主动阻尼补偿方法,而在源变换器上采用虚负电感方法进行下垂控制,详细研究了两种补偿方法的原理和实现。比较了不同补偿方法前后得到的功率边界值。最后,通过Matlab/Simulink仿真验证了主动阻尼补偿和虚拟负电感补偿方法对提高直流微电网稳定性的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stability Analysis and Compensation Methods to Improve Stability for DC Microgrid with Constant Power Loads
In order to solve the system instability issue caused by a large number of constant power loads in DC microgrid, two compensation methods, active damping compensation and virtual negative inductor compensation, are introduced to improve the stability of DC microgrid in this paper. The small-signal mathematical model of the DC microgrid can be established by designing the Boost converter with voltage and current double closed-loop and the DC-DC converter, which can be regarded as a constant power load. Based on the principle of system dominant pole distribution, the Lyapunov eigenvalue method is used to estimate the power boundary of the DC microgrid. To improve the system stability, active damping compensation method is adopted directly in the control loop of source, and in contrast, a virtual negative inductor method is adopted on the source converter by droop control method, the principle and realization of two compensation methods are right after studied in detail. The power boundary values obtained before and after different compensation methods are compared. Finally, the effectiveness of the active damping compensation and virtual negative inductor compensation methods to improve the stability of DC microgrid is verified by Matlab/Simulink simulation.
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