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Short-Circuit Current Calculation and Harmonic Characteristic Analysis for a Doubly-Fed Induction Generator Wind Turbine under Converter Control

机译:换流器控制下双馈感应风力发电机的短路电流计算及谐波特性分析

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An accurate calculation of short-circuit current (SCC) is very important for relay protection setting and optimization design of electrical equipment. The short-circuit current for a doubly-fed induction generator wind turbine (DFIG-WT) under excitation regulation of a converter contains the stator current and grid-side converter (GSC) current. The transient characteristics of GSC current are controlled by double closed-loops of the converter and influenced by fluctuations of direct current (DC) bus voltage, which is characterized as high order, multiple variables, and strong coupling, resulting in great difficulty with analysis. Existing studies are mainly focused on the stator current, neglecting or only considering the steady-state short-circuit current of GSC, resulting in errors in the short-circuit calculation of DFIG-WT. This paper constructs a DFIG-WT total current analytical model involving GSC current. Based on Fourier decomposition of switch functions and the frequency domain analytical method, the fluctuation of DC bus voltage is considered and described in detail. With the proposed DFIG-WT short-circuit current analytical model, the generation mechanism and evolution law of harmonic components are revealed quantitatively, especially the second harmonic component, which has a great influence on transformer protection. The accuracies of the theoretical analysis and mathematical model are verified by comparing calculation results with simulation results and low-voltage ride-through (LVRT) field test data of a real DFIG.
机译:准确的短路电流(SCC)计算对于继电器保护设置和电气设备的优化设计非常重要。在转换器的励磁调节下,双馈感应发电机风力涡轮机(DFIG-WT)的短路电流包含定子电流和电网侧转换器(GSC)电流。 GSC电流的瞬态特性受转换器的双闭环控制,并受直流母线电压波动的影响,直流母线电压波动具有高阶,多变量和强耦合的特点,因此很难进行分析。现有研究主要集中在定子电流上,忽略或仅考虑了GSC的稳态短路电流,从而导致DFIG-WT的短路计算中存在误差。本文构建了涉及GSC电流的DFIG-WT总电流分析模型。基于开关函数的傅立叶分解和频域分析方法,对直流母线电压的波动进行了考虑和详细描述。利用提出的DFIG-WT短路电流分析模型,定量地揭示了谐波分量的产生机理和演化规律,尤其是二次谐波分量,这对变压器的保护影响很大。通过将计算结果与仿真结果以及实际DFIG的低压穿越(LVRT)现场测试数据进行比较,可以验证理论分析和数学模型的准确性。

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