大型风力变流器俯仰系统的非线性PID控制

A. Gambier, Y. Y. Nazaruddin
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引用次数: 10

摘要

三叶片变速水平轴大型风力机在额定风速下的主要控制策略是基于三叶片的均匀驱动。除了这种集体螺距控制(CPC)之外,提供的螺距角可以根据根弯矩(IPC,个人螺距控制)的测量值进行轻微的单独修改,以减轻负载。最后,俯仰驱动会产生额外的塔架振荡,这需要主动塔架阻尼控制(ATDC)。所有这些控制回路通常都是基于pid的。本文描述了大型风力发电机俯仰系统非线性PID控制方法的研究结果。基于双曲正割函数的非线性PID方法分别用于CPC, ICP和ATDC。采用NREL研制的5mw参考水轮机和FAST软件作为仿真平台。结果表明,与经典控制方法相比,NPID方法可以显著改善控制性能,特别是当风速远离额定值时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonlinear PID Control for Pitch Systems of Large Wind Energy Converters
The main control strategy of three-bladed, variable-speed, horizontal-axis large-sized wind turbines, in case of over rated wind speed is based on the equal actuation of the all three blades. In addition to this collective pitch control (CPC), the provided pitch angles can be slightly individually modified according to measurements of the root bending moments (IPC, individual pitch control) in order to mitigate loads. Finally, the pitch actuation produces additional tower oscillations that will require an active tower damping control (ATDC). All these control loops are usually PID-based. The present work describes the results obtained from a nonlinear PID control (NPID) approach for the pitch system of a large wind turbine. Nonlinear PID approaches based on hyperbolic secant functions are used for the CPC, ICP and ATDC, respectively. As simulation platform, the 5-MW reference turbine developed by NREL and the software FAST are used. Results show that the NPID approach can provide significant improvements in the control performance in comparison to the classic control approach, in particular when the wind speed goes far from its rated value.
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