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Finite element analysis and validation of dielectric elastomer actuators used for active origami

机译:用于有源折纸的介电弹性体执行器的有限元分析和验证

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The field of active origami explores the incorporation of active materials into origami-inspired structures in order to serve as a means of actuation. Active origami-inspired structures capable of folding into complex three-dimensional (3D) shapes have the potential to be lightweight and versatile compared to traditional methods of actuation. This paper details the finite element analysis and experimental validation of unimorph actuators. Actuators are fabricated by adhering layers of electroded dielectric elastomer (3M VHB F9473PC) onto a passive substrate layer (3M Magic Scotch Tape). Finite element analysis of the actuators simulates the electromechanical coupling of the dielectric elastomer under an applied voltage by applying pressures to the surfaces of the dielectric elastomer where the compliant electrode (conductive carbon grease) is present. 3D finite element analysis of the bending actuators shows that applying contact boundary conditions to the electroded region of the active and passive layers provides better agreement to experimental data compared to modeling the entire actuator as continuous. To improve the applicability of dielectric elastomer-based actuators for active origami-inspired structures, folding actuators are developed by taking advantage of localized deformation caused by a passive layer with non-uniform thickness. Two-dimensional analysis of the folding actuators shows that agreement to experimental data diminishes as localized deformation increases. Limitations of using pressures to approximate the electromechanical coupling of the dielectric elastomer under an applied electric field and additional modeling considerations are also discussed.
机译:活性折纸领域探索了将活性材料掺入以折纸为灵感的结构中的目的,以作为一种致动手段。与传统的驱动方法相比,能够折叠成复杂的三维(3D)形状的主动折纸风格结构具有轻巧和多功能的潜力。本文详细介绍了单压电晶片执行器的有限元分析和实验验证。通过将电介电弹性体层(3M VHB F9473PC)粘附到无源基板层(3M魔术胶带)上来制造执行器。通过对存在顺从性电极(导电碳脂)的介电弹性体表面施加压力,对执行器进行有限元分析,可模拟介电弹性体在施加电压下的机电耦合。弯曲促动器的3D有限元分析表明,与将整个促动器建模为连续模型相比,将接触边界条件应用于主动层和被动层的电极区域可提供与实验数据更好的一致性。为了提高基于电介质弹性体的促动器在主动折纸启发的结构中的适用性,通过利用厚度不均匀的钝化层引起的局部变形来开发折叠促动器。折叠执行器的二维分析表明,随着局部变形的增加,与实验数据的一致性降低。还讨论了在外加电场下使用压力逼近介电弹性体的机电耦合的限制以及其他建模注意事项。

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