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Control of Power Electronic Converters in Distributed Power Generation Systems: Evaluation of Current Control Structures for Voltage Source Converters operating under Weak Grid Conditions

机译:分布式发电系统中功率电子转换器的控制:在弱电网条件下运行的电压源转换器的电流控制结构评估

摘要

The performance of different current controller structures for Voltage Source Converters (VSC) under weak grid conditions caused by large grid impedance is investigated. The VSC is synchronized to the grid by a Phase Locked Loop (PLL). Current control techniques and PLL techniques for handling both symmetrical and asymmetrical conditions are presented and discussed. The investigated current control structures are; the conventional Proportional Integral (PI)-controller in the synchronous rotating reference frame, dual PI-controllers implemented in positive- and negative-sequence rotating reference frame, the Proportional Resonant (PR)-controller in the stationary reference frame, the phase current hysteresis controller, and a space vector base hysteresis controller in the synchronous rotating reference frame. The PLL-techniques used for synchronization are; a conventional synchronous rotating reference frame PLL, a PLL with notch filter, and a Decoupled Double Synchronous Reference frame PLL (DDSRF-PLL).The different current control strategies and PLL-techniques are studied by simulations. The results show how large grid impedance can influence the dynamic response of the system and how the interaction between the PLLs, the current controllers and the large grid inductance can even trigger instability when the voltage measurements are highly influenced by the operation of the converter. The PI-controllers in the synchronous rotating reference frames are particularly sensitive to oscillations that can be reinforced when the measured voltage feed-forward terms are used in the control system. The response of the PR-controller is instead slowed down by the interaction with the PLL, while both the hysteresis controllers are quickly tracking the reference value as long as the interaction with the PLL is not leading to instability.Operation under asymmetrical weak grid conditions are investigated for current controllers that exploit PLL techniques designed to remove the oscillations that occur in the positive sequence reference frame voltage during unbalanced grid voltage. The simulations show that the DDSRF-PLL has a shorter transient period than the PLL with notch filter, but with a small steady state 100 Hz oscillation under the weak asymmetrical grid conditions.The results indicate that the tuning of the PLL is of large importance for the stability of the control system, and that a slower PLL can lead to less interaction with the current controllers at the cost of a slower and less accurate dynamic overall control performance.
机译:研究了在大电网阻抗引起的弱电网条件下,电压源转换器(VSC)不同电流控制器结构的性能。 VSC通过锁相环(PLL)与电网同步。提出并讨论了用于处理对称和非对称条件的电流控制技术和PLL技术。研究的电流控制结构是;同步旋转参考系中的常规比例积分(PI)控制器,正序和负序旋转参考系中实现的双PI控制器,固定参考系中的比例谐振(PR)控制器,相电流滞后控制器和同步旋转参考系中的空间矢量基滞回控制器。用于同步的PLL技术是:通过仿真研究了不同的电流控制策略和PLL技术,包括传统的同步旋转参考框架PLL,带陷波滤波器的PLL和去耦双同步参考框架PLL(DDSRF-PLL)。结果表明,当电压测量受到转换器操作的严重影响时,较大的电网阻抗会影响系统的动态响应,以及PLL,电流控制器和较大的电网电感之间的相互作用甚至会引发不稳定性。当在控制系统中使用测得的电压前馈项时,同步旋转参考系中的PI控制器对振荡尤其敏感。相反,PR控制器的响应因与PLL的相互作用而减慢了速度,而只要与PLL的相互作用不会导致不稳定,两个磁滞控制器都将快速跟踪参考值。针对使用PLL技术的电流控制器进行了研究,该技术旨在消除在不平衡电网电压期间在正序参考系电压中发生的振荡。仿真表明,DDSRF-PLL的瞬态周期比带陷波滤波器的PLL要短,但在弱非对称网格条件下具有100 Hz的稳定稳态振荡,结果表明PLL的调谐对于控制系统的稳定性,以及较慢的PLL会导致与当前控制器的交互减少,但代价是动态整体控制性能会变慢且精度较低。

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    Midtsund Tarjei;

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  • 年度 2010
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  • 原文格式 PDF
  • 正文语种 eng
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