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A viscoelastic model for dielectric elastomers based on a continuum mechanical formulation and its finite element implementation

机译:基于连续力学公式的介电弹性体粘弹性模型及其有限元实现

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Smart materials are active and multifunctional materials, which play an important part for sensor and actuator applications. These materials have the potential to transform passive structures into adaptive systems. However, a prerequisite for the design and the optimization of these materials is, that reliable models exist, which incorporate the interaction between the different combinations of thermal, electrical, magnetic, optical and mechanical effects. Polymeric electroclastic materials, so-called electroactive polymer (EAP), own the characteristic to deform if an electric field is applied. EAP's possesses the benefit that they share the characteristic of polymers, these are lightweight, inexpensive, fracture tolerant, elastic, and the chemical and physical structure is well understood. However, the description "electroactive polymer" is a generic term for many kinds of different microscopic mechanisms and polymeric materials. Based on the laws of electromagnetism and elasticity, a visco-electroelastic model is developed and implemented into the finite clement method (FEM). The presented three-dimensional solid element has eight nodes and trilinear interpolation functions for the displacement and the electric potential. The continuum mechanics model contains finite deformations, the time dependency and the nearly incompressible behavior of the material. To describe the possible, large time dependent deformations, a finite viscoelastic model with a split of the deformation gradient is used. Thereby the time dependent characteristic of polymeric materials is incorporated through the free energy function. The electromechanical interactions arc considered by the electrostatic forces and inside the energy function.
机译:智能材料是活性和多功能材料,在传感器和执行器应用中起着重要的作用。这些材料具有将无源结构转换为自适应系统的潜力。但是,设计和优化这些材料的先决条件是存在可靠的模型,该模型包含了热,电,磁,光学和机械效应的不同组合之间的相互作用。聚合物电碎石材料,即所谓的电活性聚合物(EAP),具有施加电场时会变形的特性。 EAP的好处是它们具有聚合物的特性,它们重量轻,价格低廉,耐断裂,具有弹性,并且化学和物理结构已广为人知。然而,描述“电活性聚合物”是许多不同的微观机理和聚合物材料的通用术语。根据电磁定律,建立了粘弹性模型,并将其应用于有限元法(FEM)。提出的三维实体元素具有八个节点和三线性插值函数,用于位移和电势。连续力学模型包含有限的变形,时间依赖性和材料几乎不可压缩的行为。为了描述可能的,与时间有关的大变形,使用了具有变形梯度分裂的有限粘弹性模型。因此,通过自由能函数结合了聚合物材料的时间相关特性。机电相互作用是由静电力和能量函数来考虑的。

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