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Experimental validation of a geometric method for the design of stable and broadband vibration controllers using a propeller blade test rig

机译:使用螺旋桨叶片试验台设计稳定和宽带振动控制器的几何方法的实验验证

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A systematic geometric design methodology to generate a stable controller for simultaneous local and remote attenuation that was previously proposed is experimentally validated on a structure. The local control path transfer function for this experimental system is non-minimum phase due to which the original broadband controller design would yield an unstable controller. Here a modified procedure for systems with local non-minimum phase dynamics is used to generate a stable controller. According to this method, reduction in vibration at local and remote points on a structure can be parameterised in terms of the available design freedom and a controller is realised in terms of the optimal selection of this using the minimum phase counterpart of the local control path transfer function. The modified method results in a controller that is both stable and stabilizing and which achieves the desired vibration attenuation at the local and remote points on the structure. An experimental facility that replicates the vibration transmission through the shaft of a propeller blade rig system is used to demonstrate the method. Vibration for excitation near the first bending mode frequency of the resonating part of this structure is attenuated at the non-resonating part of the system without deteriorating vibration at the resonating end.
机译:在结构上通过实验验证了一种系统几何设计方法,该方法可生成先前提出的用于同时进行本地和远程衰减的稳定控制器。此实验系统的本地控制路径传递函数是非最小相位,因此原始的宽带控制器设计会产生不稳定的控制器。在此,针对具有局部非最小相位动力学的系统的修改过的程序用于生成稳定的控制器。根据该方法,可以根据可用的设计自由度来参数化结构上的局部和远程点处的振动减小,并使用局部控制路径传递的最小相位对应物来对此进行最佳选择,从而实现控制器功能。修改后的方法可以使控制器既稳定又稳定,并且可以在结构的本地和远端实现所需的振动衰减。实验设备复制了通过螺旋桨叶片钻机系统的轴传递的振动,用于演示该方法。在系统的非谐振部分衰减了该结构的谐振部分的第一弯曲模式频率附近的激励振动,而不会恶化谐振端的振动。

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