基于反馈变换器SSC的并网风力发电系统动态性能控制

P. Rani, V. Arora, N. Sharma
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引用次数: 0

摘要

基于反馈变换器的静态串联补偿器(FBC-SSC)是一种能够同时对配电网中的电流和电压进行补偿以提高电网综合能源系统电能质量的装置。PQ是指电压和电流稳定性的结合。由于电压、频率不平衡、暂态等PQ约束,在配电网和企业中具有重要适用性的电子操作和非线性器件已成为重要的方面。本研究提出了改进的基于迟滞的FBC-SSC来优化GIWES的PQ。本研究的新颖之处是改进迟滞或混合PI和pwm的迟滞控制FBC-SSC。在风力发电系统中,采用基于改进磁滞量的栅极触发脉冲寻优方法。该控制器与FBC-SSC相结合,改善了WES的动态性能。同时,电网可以补偿附近终端的电流和电压的不规则性。所提出的拓扑结构中的所有转换器共享一个标准直流链路电容器。因此,电力可以从一个分配器传输到另一个分配器。在MATLAB/SIMULINK环境中对所提出的拓扑结构进行了建模。利用改进后的迟滞控制器进行了有效性研究。最后,将得到的结果与两种现有的控制器进行了比较:比例积分控制器和传统的脉宽调制(PWM)控制器。因此,性能水平可以表明所建议的技术是有效的。与另一种典型的控制方法相比,该系统的THD值非常低,仅为0.94%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control of Dynamic Performance Through Feedback Converter SSC In Grid Integrated Wind Energy System
A feedback converter-based Static series compensator (FBC-SSC) is a device that can simultaneously compensate for currents and voltages in a distribution network to enhance the Power Quality (PQ) in Grid integrated Energy System (GIWES). PQ is a term that refers to the conjunction of voltage and current stability. Electronically operated and non-linear gadgets with significant applicability in distribution networks and enterprises have become significant aspects due to PQ constraints such as imbalance voltage and frequency, and transients. Improved hysteresis-based FBC-SSC is suggested in this study for optimizing PQ in GIWES. The novelty in this research is improved hysteresis or hybrid PI and PWM-based hysteresis controlled FBC-SSC. In a wind turbine generation system, improved hysteresis based is used to find the gate trigger pulse for SSC. The suggested controller, when combined with FBC-SSC, improves the WES dynamic performance. Simultaneously, the grid network can compensate for current and voltage irregularities in nearby terminals. All converters in the proposed topology share a standard dc-link capacitor. As a result, power can be transmitted from one distributor to another. The proposed topology is modelled in the MATLAB/SIMULINK environment. The effectiveness research is performed using the improved hysteresis controller. Finally, the obtained results are compared to two existing controllers: a Proportional Integral controller and a traditional Pulse Width Modulation (PWM) controller. As a consequence, the performance level can show that the advised technique is effective. When compared to another typical control approach, the suggested system obtains remarkably low THD values of 0.94 percent.
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