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首页> 外文期刊>Journal of intelligent material systems and structures >Optimization of Piezoelectric Actuator Configuration on a Flexible Fin for Vibration Control using Genetic Algorithms
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Optimization of Piezoelectric Actuator Configuration on a Flexible Fin for Vibration Control using Genetic Algorithms

机译:利用遗传算法优化柔性鳍片上压电执行器的振动控制

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摘要

This study presents a novel approach to optimizing the configuration of piezoelectric actuators for vibration control of a flexible aircraft fin. The fitness (cost) function for optimization using a genetic algorithm is derived directly from the frequency response function (FRF) obtained from a finite element model of the fin. In comparison to existing approaches, this method allows optimization on much more complex geometries where the derivation of an analytical fitness function is prohibitive or impossible. This technique is applied to two optimization problems for vibration control of the fin. First, the position of a single actuator is optimized anywhere within a judiciously pre-determined area of the fin using a genetic algorithm for polynomial surface fitting of the FRF in order to obtain a continuous fitness function. Next, the configuration of a pre-determined number of up to 48 separate actuators is optimized within the same area. The optimization approach is verified against experimental results obtained from a set of 12 actuators fixed to an experimental model of the fin.
机译:这项研究提出了一种新颖的方法,可以优化压电致动器的配置,以控制柔性飞机鳍的振动。使用遗传算法进行优化的适应性(成本)函数直接来自从鳍的有限元模型获得的频率响应函数(FRF)。与现有方法相比,此方法允许对复杂得多的几何结构进行优化,在这些几何结构中无法推导或不可能得出分析适应度函数。这项技术应用于两个优化问题的鳍的振动控制。首先,使用遗传算法对FRF进行多项式曲面拟合,从而在鳍片明智预定区域内的任意位置优化单个执行器的位置,以获得连续的适应度函数。接下来,在同一区域内优化多达48个独立执行器的预定数量。根据从固定到散热片实验模型的12个执行器获得的实验结果验证了优化方法。

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