Permanent Magnet Synchronous Generator Connected to a Grid via a High Speed Sliding Mode Control

O. Tola, E. Umoh, E. A. Yahaya, Osinowo E. Olusegun
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引用次数: 3

Abstract

Wind power generation has recently received a lot of attention in terms of generating electricity, and it has emerged as one of the most important sources of alternative energy. Maximum power generation from a wind energy conversion system (WECS) necessitates accurate estimation of aerodynamic torque and system uncertainties. Regulating the wind energy conversion system (WECS) under varying wind speeds and improving the quality of electrical power delivered to the grid has become a difficult issue in recent years. A permanent magnet synchronous generator (PMSG) is used in the grid-connected wind-turbine system under investigation, followed by back-to-back bidirectional converters. The machine-side converter (MSC) controls the PMSG speed, while the grid-side converter (GSC) controls the DC bus voltage and maintains the unity power factor. The control approach is second-order sliding mode controls, which are used to regulate a nonlinear wind energy conversion system while reducing chattering, which causes mechanical wear when using first-order sliding mode controls. The sliding mode control is created using the modified super-twisting method. Both the power and control components are built and simulated in the same MATLAB/Simulink environment. The study successfully decreased the chattering effect caused by the switching gain owing to the high activity of the control input.
永磁同步发电机通过高速滑模控制并网
风力发电近年来在发电方面受到了广泛的关注,并已成为最重要的替代能源之一。风能转换系统(WECS)的最大发电量需要准确估计气动扭矩和系统不确定性。如何在不同风速条件下调节风能转换系统,提高输电网电能质量已成为近年来的一个难题。并网风力发电系统采用永磁同步发电机(PMSG),并网风力发电系统采用背靠背双向变流器。机器侧变流器(MSC)控制PMSG的速度,而电网侧变流器(GSC)控制直流母线电压并保持单位功率因数。该控制方法采用二阶滑模控制,用于调节非线性风能转换系统,同时减少一阶滑模控制引起的机械磨损。采用改进的超扭转方法建立滑模控制。电源和控制组件在相同的MATLAB/Simulink环境中构建和仿真。该研究成功地降低了由于控制输入的高活动性而引起的开关增益的抖振效应。
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CiteScore
3.10
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