Effects of Control on the DC Impedance of Modular Multilevel Converters

Pengkun Li, Yue Wang, Xuan Li, Zhuling Li, T. Yin, Runtian Li
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Abstract

The dc impedance of modular multilevel converters (MMCs) and two-level voltage-source converters (TL-VSCs) in open-loop control mode, ac current control mode and dual-loop control mode are derived and compared separately based on multiharmonic linearization method. Then the effect of control loops on the dc impedance of MMC are further analyzed. Moreover, this paper provides a deep discussion about the effect of four circulating current suppressing controller (CCSC) strategies in terms of impedance and stability. It is revealed that dc impedance of MMC differs from TL-VSC in most control modes due to the complex internal dynamics. It also turns out that dc voltage control loop introduces negative damping effect which can be reduced by increasing proportional and decoupling coefficients of CCSC or decreasing proportional coefficient of dc voltage control loop. The time-domain simulations are provided to verify the theoretical analysis.
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控制对模块化多电平变换器直流阻抗的影响
基于多谐波线性化方法,分别推导并比较了开环控制模式、交流电流控制模式和双环控制模式下模块化多电平变换器(mmc)和双电平电压源变换器(TL-VSCs)的直流阻抗。然后进一步分析了控制回路对MMC直流阻抗的影响。此外,本文还深入讨论了四种循环电流抑制控制器(CCSC)策略在阻抗和稳定性方面的影响。结果表明,由于复杂的内部动力学特性,在大多数控制模式下,MMC与TL-VSC的直流阻抗存在差异。直流电压控制环引入负阻尼效应,可以通过增大CCSC的比例系数和解耦系数或减小直流电压控制环的比例系数来减小负阻尼效应。通过时域仿真验证了理论分析的正确性。
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