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Stability Analysis of Pitch-regulated, Variable-speed Wind Turbines in Closed Loop Operation Using a Linear Eigenvalue Approach

机译:线性特征值方法在闭环运行中变桨调速风力发电机的稳定性分析

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摘要

A multi-body aeroelastic design code based on the implementation of the combined aero-elastic beam element is extended to cover closed loop operation conditions of wind turbines. The equations of a controller for variable generator speed and pitch-controlled operation in high wind speeds are combined with the aeroelastic equations of motion for the complete wind turbine, in order to provide a compound aeroservoelastic system of equations. The control equations comprise linear differential equations for the pitch and generator torque actuators, the control feedback elements (proportional-integral control) and the various filters acting on the feedback signals. In its non-linear form, the dynamic equations are integrated in time to provide the reference state, while upon linearization of the system and transformation in the non-rotating frame, the linear stability equations are derived. Stability results for a multi-MW wind turbine show that the coupling of the controller dynamics with the aeroelastic dynamics of the machine is important and must be taken into account in view of defining the controller parameters.
机译:扩展了基于组合气动弹性梁单元的多体气动弹性设计规范,以涵盖风力涡轮机的闭环运行条件。将用于可变发电机速度和高风速下的变桨控制操作的控制器方程与完整风力涡轮机的气动弹性运动方程相结合,以提供复合的气动弹性方程系统。控制方程式包括用于变桨和发电机转矩执行器,控制反馈元件(比例积分控制)和作用于反馈信号的各种滤波器的线性微分方程式。在其非线性形式中,动态方程会及时积分以提供参考状态,而在系统线性化和在非旋转框架中进行变换时,会得出线性稳定性方程。多兆瓦级风力涡轮机的稳定性结果表明,控制器动力学与机器的气动弹性动力学的耦合非常重要,在定义控制器参数时必须考虑在内。

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