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Suppressing high-order surface errors of an active carbon fiber reinforced composite reflector using two types of actuators

机译:使用两种类型的致动器抑制有源碳纤维增强复合物反射器的高阶表面误差

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摘要

Active feedback control is a feasible approach for maintaining the desired shape of a reflector. An architecture for an active reflector is presented in which both piezoelectric ceramic transducer (PZT) and macro-fiber composite (MFC) actuators are introduced to reduce both the global and local (high-order) surface errors. An electromechanical finite element model with two types of actuators is developed using the Hamilton principle. An optimal shape controller is then developed to minimize the reflector surface error. Lower-order orthogonal Zernike polynomials are derived in a unit hexagon. The polynomials are considered to be the basic error modes of a reflector and are used to optimize the length of the PZT actuators. The arrangement of MFC actuators can be optimized in a single triangular component of the reflector because the deflections they induced are very local. An experiment is conducted to verify the performance of MFC actuators in a triangular component. The improvement in the control efficiency of the active reflector is demonstrated by two numerical examples.
机译:主动反馈控制是一种可行的方法,用于保持反射器的所需形状。提出了一种用于有源反射器的架构,其中引入压电陶瓷换能器(PZT)和宏观光纤复合物(MFC)致动器,以减少全局和局部(高阶)表面误差。使用汉密尔顿原理开发了一种具有两种执行器的机电有限元模型。然后开发出最佳形状控制器以最小化反射器表面误差。低阶正交Zernike多项式衍生在单位六边形中。多项式被认为是反射器的基本误差模式,用于优化PZT致动器的长度。 MFC致动器的布置可以在反射器的单个三角形部件中优化,因为它们所诱导的偏转非常局部。进行实验以验证三角形部件中MFC执行器的性能。通过两个数值例子证明了活性反射器的控制效率的改进。

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