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Comparisons between the dynamic and quasi-static performances of a dissipative dielectric elastomer under pure shear mode

机译:纯剪切模式下耗散介电弹性体的动态和准静态性能的比较

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摘要

Based on the Helmholtz free energy function of the dielectric elastomer (DE) with consideration of the dissipation processes and thermal effects, the dynamic equations derived from the work done by the inertia forces and Euler-Lagrange equation along with the quasi-static equation can be established. Under typical loading patterns, including linear and sinusoidal voltages and a sinusoidal force coupled with a constant voltage, the distinctions between the performances of DE induced by the two different governing equations can be fully discussed. Therefore, the effects of the inertia forces in both plane and thickness directions can also be revealed in detail. Furthermore, the mechanisms of failures are briefly studied. The numerical results have indicated that the deformations calculated from the quasi-static and dynamic models are identical under small amplitudes and frequencies of actuation. However, when the external loading is large enough to cause failures, obvious distinction appears and the DE suffers from rupture sooner using the quasi-static model, especially under linear actuation. In addition, no resonance can be detected via the quasi-static equation and the mean stretch calculated from the dynamic equation coincides with the stretch obtained from the equivalent voltage (static) of the applied sinusoidal voltage in some extents. Under a sinusoidal force with a static voltage, the stretch calculated from the dynamic equation oscillates around the curve induced by the quasi-static model at first and finally coincides with it. When power source is cut off, the current leakage lowers the mean stretch of the oscillation.
机译:基于介电弹性体(DE)的亥姆霍兹自由能量,考虑到耗散过程和热效应,从惯性力和欧拉拉格朗日方程与准静态方程一起完成的动态方程可以已确立的。在典型的装载模式下,包括线性和正弦电压和与恒定电压耦合的正弦力,可以完全讨论由两个不同的控制方程所引起的DE的性能之间的区别。因此,还可以详细揭示两个平面和厚度方向上的惯性力的影响。此外,简要研究了故障机制。数值结果表明,根据准静态和动态模型计算的变形在小幅度和致动频率下是相同的。然而,当外部负载足够大以引起故障时,出现明显的区别,并且使用准静态模型,尤其是在线性致动时越早遭受破裂。另外,没有通过准静态方程检测谐振,并且根据动态方程计算的平均拉伸与从一些范围内施加的正弦电压的等效电压(静态)获得的拉伸一致。在具有静电电压的正弦力下,从动态方程计算的拉伸围绕着由准静态模型引起的曲线首先振荡,最后与其一致。当电源被切断时,电流泄漏降低了振荡的平均延伸。

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