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Micromechanical analysis on tensile modulus of structured magneto-rheological elastomer

机译:结构磁流变弹性体拉伸模量的微力学分析

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This paper proposed a micromechanical model to investigate the tensile modulus of structured magnetorheological elastomers (MRE) to understand its anisotropic properties. A three parameter representative volume element (RVE) model was presented to describe the microscopic structure, where particles could be organized in layer-like or chain-like structure. And the tensile modulus is defined as a ratio of stress to strain in the stretched direction. We then applied effective medium theory to derive a theoretical model for the modulus of MRE in the absence of magnetic field, considering the influence of particles configuration and volume fraction. In addition, the effect of magnetic field on magneto-induced stress inside MRE is evaluated to further establish a multi-scale model which explains the magneto-rheological effect of structured MRE. The proposed model was then compared with finite element analysis and 'free energy' model. It demonstrated that the proposed model match better with the finite element solutions than that of 'free energy' method. The advantage of the proposed model is that it couples the magnetic field and displacement field, and considers the influence of both particles spatial energy and the relative position on magneto-rheological effect. The stiffer or softer of MREs induced by an applied magnetic field under tensile stress is predicted that is conformed to previous studies.
机译:本文提出了一个微力学模型来研究结构磁流变弹性体(MRE)的拉伸模量,以了解其各向异性特性。提出了一个三参数代表体积元(RVE)模型来描述微观结构,其中颗粒可以以层状或链状结构组织。并且拉伸模量定义为在拉伸方向上的应力与应变的比率。然后,我们应用有效介质理论,在不存在磁场的情况下,考虑了粒子构型和体积分数的影响,得出了MRE模量的理论模型。此外,评估了磁场对MRE内部磁致应力的影响,以进一步建立多尺度模型,该模型解释了结构化MRE的磁流变效应。然后将所提出的模型与有限元分析和“自由能”模型进行比较。结果表明,与“自由能”方法相比,所提出的模型更适合有限元求解。提出的模型的优点是它耦合了磁场和位移场,并考虑了粒子空间能量和相对位置对磁流变效应的影响。可以预测,在拉伸应力作用下,施加磁场引起的MRE会变硬或变软,这与以前的研究一致。

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