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NON-LINEAR VIBRATION OF THICK DIELECTRIC MEMBRANE DISKS WITH RADIAL LOADS

机译:具有径向载荷的厚介电膜盘的非线性振动

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This study analyzes the large-amplitude, non-linear vibration of dielectric elastomer membrane disks with applied voltages through their thickness and mechanical loads applied radially around their outer circumferential surface. The material is modeled as an isotropic ideal dielectric, with the large-stretch mechanical stiffening captured using the Gent hyperelastic constitutive model. The fully non-linear equation of motion for the coupled electromechanical system is derived using Hamilton's principle. The disk comes to a steady equilibrium where the com-pressive stresses due to the applied voltage balance the tensile stresses from the applied radial loads. The equilibria are calculated numerically for a wide range of radial loads, applied voltages, and limiting stretches. It is possible for the disk to have two stable steady equilibria at given radial load and applied voltage, which gives rise to an instability where extreme stretches occur for infinitesimal changes in applied voltage. The equation of motion is determined for small vibrations of the system about equilibrium. Unlike for thin membrane disks, the vibrating mass of thick membrane disks depends on the steady equilibrium stretch. The natural frequency for membrane disks meaningfully decreases with increasing thickness due to the inertia associated with dynamic changes in the membrane thickness. The amount of axial inertia depends on the ratio of the nominal disk thickness to its radius and the steady equilibrium stretch. Large amplitude vibrations are numerically investigated for a wide range of system parameters. The frequency response characteristics of circular membranes due to sinusoidal voltage fluctuations are analyzed about small and large equilibrium stretches. Whereas axial inertia meaningfully alters the frequency response about small equilibrium stretches, it has negligible effects on the frequency response about large equilibrium stretches.
机译:该研究分析了介电弹性体膜盘的大幅度,非线性振动,其具有施加电压的厚度和机械载荷径向围绕其外圆周表面施加。该材料被建模为各向同性理想的电介质,使用Gent超弹性本构模型捕获的大拉伸机械加强。耦合机电系统的完全非线性方程使用Hamilton原理推导出来。盘达到稳定的平衡,其中由于施加的电压平衡来自施加的径向载荷的拉伸应力而导致的压力应力。均衡在数量上计算出宽范围的径向载荷,施加的电压和限制延伸。磁盘可以在给定的径向载荷和施加电压下具有两个稳定的稳定平衡,这导致不稳定性,其中施加电压的无限变化发生极端延伸。确定运动方程,用于对均衡系统的小振动。与薄膜盘不同,厚膜盘的振动质量取决于稳定的平衡伸展。由于与膜厚度的动态变化相关的惯性,膜磁盘的固有频率有意义地随着厚度的增加而降低。轴向惯量的量取决于标称磁盘厚度与其半径的比例和稳定的平衡伸展。针对各种系统参数进行数值研究大量振幅振动。分析了圆形膜由于正弦电压波动引起的频率响应特性约为小而大的平衡延伸。虽然轴向惯性有意义地改变了关于小平衡脉冲的频率响应,但它对大平衡延伸的频率响应具有可忽略的影响。

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