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3D constitutive modeling of electro-magneto-visco-hyperelastic elastomers: a semi-analytical solution for cylinders under large torsion-extension deformation

机译:电磁粘膜超弹性弹性体的3D本构模拟:大扭转变形下圆柱体的半分析解决方案

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摘要

The rise of a new class of smart materials known as electro-magnetorheological elastomers (EMREs) requires comprehensive understanding of their electro-magneto-visco-hyperelastic behaviors. The aim of this paper is to develop a generalized three-dimensional (3D) continuum-based framework of the electro-magneto-visco-hyperelastic behaviors of EMREs. The finite strain model is established based on the linear viscoelasticity theory and non-linear electro-magneto-elastic framework. As EMRE devices can be used in a cylindrical shape undergoing shear and normal stresses in many engineering applications like artificial muscles, a boundary-value problem simulating torsion-extension deformations of EMRE cylinders is developed in the finite strain regime and solved semi-analytically. The behaviors of EMRE cylinders under different loading conditions such as purely mechanical loading, purely electric loading as well as full coupling between mechanical, electric and magnetic loading are studied in detail. Influence of different parameters such as electric field, magnetic field, applied strain (-rate) and their coupling on the induced moment and axial force of the EMRE cylinder as well as its relaxation and creep under torsion-extension loading is also examined. It is shown that EMREs have adaptive capability and great potential in applications where the stiffness needs to be controllable. Due to simplicity and accuracy, the model is expected to be used in the future studies dealing with the analysis of EMREs in particular cylinders under torsion-extension developments like 4D printing of artificial EMRE-based cylindrical muscles.
机译:新类智能材料的升高,称为电磁磁体弹性体(EMRES)需要全面了解其电磁 - 粘性超弹性行为。本文的目的是开发一种基于磁场 - 粘性的基于EMRES的电磁求超弹性行为的全面三维(3D)框架。基于线性粘弹性理论和非线性电磁 - 弹性框架建立有限应变模型。由于EMRE器件可以在许多工程应用中经历剪切和正常应力的圆柱形形状中,在有限的应变制度中开发了模拟EMRE汽缸的扭转延伸变形的边值问题并半分析解决。详细地研究了不同负载条件下的EMRE气缸的行为,如纯机械加载,纯电荷以及机械,电动和磁性载荷之间的全耦合。还研究了不同参数的影响,例如电场,磁场,施加的应变( - 施加菌株(-Rate)及其对EMRE圆筒的诱导力矩和轴向力的影响以及在扭转延伸负载下的弛豫和蠕变下的耦合。结果表明,EMRES在刚度需要可控的应用中具有自适应能力和巨大潜力。由于简单性和准确性,预计该模型将在未来的研究中使用,这些研究与特定的圆柱体尤其在扭转开发的圆柱体下进行分析,如4D基于肌型圆柱肌的4D印刷。

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