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Small-signal stability analysis and PHIL experiment validation of power system with WECS voltage/frequency ancillary control

机译:WECS电压/频率辅助控制的电力系统小信号稳定性分析和PHIL实验验证

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Large scale wind energy conversion systems (WECSs) are gradually required to participate in power system voltage/frequency regulation. As a result, output characteristic of the WECS is changing from traditional current source to voltage source and thus affects small-signal stability (SSS) of power system. This paper investigates SSS of power system with WECS voltage/frequency ancillary control. Through eigenvalue analyses and time-domain simulations, it is found that voltage and frequency responses of the system are improved by the WECS ancillary control. However, original low-frequency power system oscillations can be deteriorated and a new unstable oscillation can be induced, which threatens SSS of the power system and restricts the WECS to fulfill grid code requirement. Subsequently, a power-hardware-in-the-loop (PHIL) platform based on a 3kW WECS, a 50kVA back-to-back converter and RT-LAB real-time simulation software is constructed. The above simulation results are further validated by the PHIL experiments. WECS damping control which aims to improve SSS is also performed and verified in the PHIL environment.
机译:逐渐需要大型风能转换系统(WECS)参与电力系统的电压/频率调节。结果,WECS的输出特性正从传统的电流源变为电压源,从而影响了电力系统的小信号稳定性(SSS)。本文研究了采用WECS电压/频率辅助控制的电力系统的SSS。通过特征值分析和时域仿真,发现通过WECS辅助控制可以改善系统的电压和频率响应。但是,原始的低频电力系统振荡会恶化,并会引发新的不稳定振荡​​,这威胁了电力系统的SSS,并限制了WECS满足电网规范的要求。随后,构建了基于3kW WECS,50kVA背靠背转换器和RT-LAB实时仿真软件的功率硬件在环(PHIL)平台。 PHIL实验进一步验证了以上仿真结果。在PHIL环境中还执行并验证了旨在改善SSS的WECS阻尼控制。

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