Analysis of Voltage Dip Impact on Doubly Fed Induction Generator under Dynamic Conditions

IF 0.7 Q4 COMPUTER SCIENCE, INFORMATION SYSTEMS
Kidist Zergaw, M. Tuka
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Abstract

Doubly Fed Induction Generator (DFIG) is the most widely employed generator in the Wind Energy Conversion Systems (WECS) for the production of electricity. However, despite all of its various advantages, it is extremely vulnerable to grid faults such as voltage dip since its stator is directly coupled to the grid. A voltage dip problem is one the main issues among the power quality concerns. This fault causes the flow of excessive current across both the stator and the rotor terminals, which may lead to serious damage to the generator, power converters, and DC Link capacitor. On the other hand, the current Grid Codes (GC) requires the system to stay connected to the grid during this fault condition and support it in healing its nominal voltage. This capacity of the system is known as the Low Voltage Ride Through (LVRT) capacity. For the system to achieve such capacity, appropriate protection mechanisms or controlling strategies must be utilized. Therefore, in this paper, the crowbar protection technique, PI controller, and the Adaptive Neuro-Fuzzy Inference System (ANFIS) controller are employed. Furthermore, the performance of the system employing PI, crowbar, and ANFIS is analyzed and compared under grid fault conditions, i.e., a voltage dip with a magnitude of 0.1 pu (worst case) using MATLAB/Simulink software and based on actual data obtained from Adama II wind farm. The obtained results unveil that the settling time of ANFIS for controlling the rotor currents in d and q axes (idr and iqr) and DC link voltage is 3.6 s, 3.57 s, and 3.4 s, respectively. On the other hand, the settling times of the PI controller for controlling the rotor currents in d and q axes and the DC link voltage are found to be 4 s, 3.91 s, and 45.2 s, respectively, while the crowbar protection technique’s settling times are found to be 4 s, 6 s, and 4.9 s, respectively. It is evident from the aforesaid results that the ANFIS controller provides the best performance of the three strategies since it allows both the rotor currents and the DC link voltage to return to their steady state values faster than the other two techniques, employed in this investigation.
动态条件下双馈感应发电机电压跌落影响分析
双馈感应发电机(DFIG)是风能转换系统(WECS)中应用最广泛的发电设备。然而,尽管它有各种各样的优点,但由于其定子直接与电网耦合,因此极易受到电压下降等电网故障的影响。电压下降问题是电力质量关注的主要问题之一。该故障会导致定子和转子两端都有过大的电流流过,可能会对发电机、电源变换器和DC Link电容造成严重损坏。另一方面,当前的电网规范(GC)要求系统在这种故障状态下保持与电网的连接,并支持它修复其标称电压。系统的这种容量被称为低电压穿越(LVRT)容量。为了使该系统达到这种能力,必须利用适当的保护机制或控制战略。因此,本文采用了撬棍保护技术、PI控制器和自适应神经模糊推理系统(ANFIS)控制器。利用MATLAB/Simulink软件,结合Adama II风电场实测数据,分析比较了电网故障条件下(最坏情况下)电压降为0.1 pu的情况下,采用PI、crowbar和ANFIS的系统性能。结果表明,控制d轴和q轴(idr和iqr)电流和直流链路电压的ANFIS的稳定时间分别为3.6 s、3.57 s和3.4 s。另一方面,控制d轴和q轴转子电流和直流链路电压的PI控制器的沉降时间分别为4 s、3.91 s和45.2 s,而撬棒保护技术的沉降时间分别为4 s、6 s和4.9 s。从上述结果中可以明显看出,ANFIS控制器提供了三种策略的最佳性能,因为它允许转子电流和直流链路电压比本研究中采用的其他两种技术更快地恢复到稳态值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
0.20
自引率
14.30%
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