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An Advanced Control Strategy for Dual-Actuator Driving System in Full-Scale Fatigue Test of Wind Turbine Blades

机译:一种先进的双执行器驱动系统在风力发电机叶片全尺寸疲劳试验中的控制策略

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摘要

A new dual-actuator fatigue loading system of wind turbine blades was designed. Compared with the traditional pendulum loading mode, the masses in this system only moved linearly along the loading direction to increase the exciting force. However, the two actuators and the blade constituted a complicated non-linear energy transferring system, which led to the non-synchronization of actuators. On-site test results showed that the virtual spindle synchronous strategy commonly used in synchronous control was undesirable and caused the instability of the blade's amplitude eventually. A cross-coupled control strategy based on the active disturbance rejection algorithm was proposed. Firstly, a control system model was built according to the synchronization error and tracking error. Furthermore, based on arranging the transition process, estimating the system state and error feedback, and compensating disturbance, an active disturbance rejection controller was designed by adopting the optimal control function. Finally, on-site test results showed that the cross-coupled control strategy based on the active disturbance rejection algorithm could ensure the synchronization of two actuators. The maximum speed synchronization error of the two motors was less than 16 RPM, the displacement synchronization error of the two actuators was less than 0.25 mm and approaching zero after 4 seconds, and the peak value of vibration of the blade was less than 5 mm, which satisfied the fatigue test requirement.
机译:设计了一种新的风力发电机叶片双执行器疲劳载荷系统。与传统的摆式加载方式相比,该系统中的质量仅沿加载方向线性移动以增加激振力。然而,两个执行器和叶片构成了一个复杂的非线性能量传输系统,导致执行器不同步。现场测试结果表明,同步控制中常用的虚拟主轴同步策略是不可取的,最终导致叶片振幅不稳定。提出了一种基于主动干扰抑制算法的交叉耦合控制策略。首先,根据同步误差和跟踪误差构建控制系统模型;此外,在安排转换过程、估计系统状态和误差反馈、补偿干扰的基础上,设计了一种采用最优控制功能的主动抗扰控制器。最后,现场测试结果表明,基于主动抗扰算法的交叉耦合控制策略能够保证两个执行器的同步。两台电机的最大速度同步误差小于16 RPM,两台执行器的位移同步误差小于0。25 mm,4秒后趋近于零,叶片振动峰值小于5 mm,满足疲劳试验要求。

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