弱电网中LCL滤波器增强电压源变换器稳定性及控制

Rahul Raj Kar;Rupesh Wandhare
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引用次数: 0

摘要

电压源转换器在将可再生能源与电网相结合方面显示出相当大的潜力。lcl型并网变换器的稳定性受到滤波器内部谐振的显著影响。基于比例电容电流反馈的有源阻尼(AD)的数字控制延迟会导致系统不稳定。在弱电网中,由于网格阻抗波动,当共振频率接近临界频率(fs/6)时,就会出现这种不稳定性。为了解决这一限制,提出了一种由电网电流反馈和阻尼电阻组成的混合阻尼,以减轻数字控制延迟的影响。提出了一种不需要额外传感器的前馈共耦合点电压补偿方法,以提高相裕度。所提出的混合阻尼补偿数字控制延迟,将临界频率区域扩展到奈奎斯特频率(fs/2)。所提出的PCC电压前馈设计提高了PM,增强了对电网阻抗变化的鲁棒性。开环同步是为了减轻锁相环(PLL)同步带来的不稳定性(低频不稳定性)。采用图形化的方法设计了混合阻尼和PCC电压前馈控制器。所提出的控制实现了稳定的操作,即使在短路率显着低($\leq 2$)。首先进行了基于导纳的稳定性分析,然后进行了闭环极点轨迹分析。为了验证所提出的方法和控制器设计,在100 kva系统上进行了全面的仿真研究,并在15 kva样机上进行了实验室实验。该方法在不平衡电压条件下进行了测试,并采用了外部功率环控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced Stability and Control of Voltage Source Converters With LCL Filter in Weak Grid
Voltage source converters show considerable potential in integrating renewable energy sources with the power grid. The stability of LCL -type grid-connected converters is significantly affected by internal resonances within filters. The digital control delay can lead to instability with proportional capacitor current feedback-based active damping (AD). This instability emerges when the resonance frequency nears the critical frequency (fs/6) owing to fluctuations in grid impedance, in weak grid. To address this limitation, a hybrid damping comprising grid current feedback with a damping resistor is proposed to mitigate the effect of digital control delay. A feed-forward point of common coupling (PCC) voltage compensation is proposed without additional sensor requirements to enhance the phase margin (PM). The proposed hybrid damping compensates for the digital control delay, extending the critical frequency region to the Nyquist frequency (fs/2). The proposed design of PCC voltage feed-forward enhances the PM and strengthens the robustness against grid impedance variation. An open loop synchronization is implemented to mitigate the instability raised due to phase locked loop (PLL)-based synchronization (low-frequency instability). The hybrid damping and PCC voltage feedforward controller are designed using a graphical approach. The proposed control achieves a stable operation even when the short-circuit ratio is significantly low ( $\leq 2$ ). An admittance-based stability analysis is performed followed by a closed-loop pole trajectory. To validate the proposed method and controller design, comprehensive simulation studies on a 100-kVA system and laboratory experiments on a 15-kVA prototype are conducted. The proposed methodology is tested for unbalanced voltage conditions and with an outer power loop control.
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