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Effects of photostrictive actuator and active control of flexible membrane structure

机译:光致伸缩致动器的作用和柔性膜结构的主动控制

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The purpose of this paper is to investigate the flexible structure of parabolic shell using photo strictive actuators. The analysis is made to know its dynamic behavior and light-induced control forces for coupled parabolic shell. The effects of an actuator location as well as membrane and bending components under the control action have been analyzed considering the approximate spherical model. The parabolic membrane shell accuracy is being mathematically approximated and validated comparing the light induced control forces using approximate equivalent spherical shell model. The parabolic shell with kapton smart material and photostrictive actuators has been used to formulate the governing equation in the transverse direction. The Kirchhoff-Love assumptions are used to obtain the governing equation of shell with actuator. The mechanical membrane forces and bending moments for parabolic thin shell with actuator is used to analyze the dynamic effect. The results show that membrane control action is much more significant than bending control action. Photostrictive actuators oriented along circumferential direction (actuator-2) can give better control effect than actuators placed along longitudinal direction (actuator-1). The slight difference is observed between spherical and parabolic shell for a surface with focal length to the diameter ratio of 1.00 or more than unity. Space applications often have the shape of parabolical shells or shell of revolution, due to their required focusing, aiming, or reflecting performance. The present approach is focused that photostrictive actuators can effectively control the vibration of parabolical membrane shell. Also, the actuator's location plays an important role in defming the control force.
机译:本文的目的是研究使用光致伸缩致动器的抛物线壳的柔性结构。进行分析以了解其对于耦合抛物线壳的动态行为和光感控制力。考虑到近似球形模型,已经分析了执行器位置以及在控制作用下的膜和弯曲组件的影响。使用近似等效的球形壳模型,通过比较光诱导的控制力,可以通过数学方式近似和验证抛物线膜壳的精度。具有kapton智能材料和光致伸缩执行器的抛物线壳已用于在横向方向上制定控制方程。基尔霍夫-洛夫(Kirchhoff-Love)假设用于获得带有执行器的壳体的控制方程。采用抛物线形薄壳作动器的机械膜力和弯矩用于分析动力效应。结果表明,膜控制作用比弯曲控制作用重要得多。与沿纵向放置的执行器(执行器-1)相比,沿圆周方向放置的光致伸缩执行器(执行器-2)可提供更好的控制效果。对于焦距与直径比为1.00或大于1的表面,在球形和抛物线形外壳之间观察到细微差异。由于空间应用需要聚焦,瞄准或反射性能,它们通常具有抛物线壳或旋转壳的形状。本方法集中于光致伸缩致动器可以有效地控制抛物线型膜壳的振动。同样,执行机构的位置在确定控制力方面也起着重要作用。

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