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A nonlinear magnetorheological elastomer model based on fractional viscoelasticity, magnetic dipole interactions, and adaptive smooth Coulomb friction

机译:基于分数粘弹性,磁偶极子相互作用和自适应平滑库仑摩擦的非线性磁流变弹性体模型

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Magnetorheological elastomers (MRE) are emerging as smart materials for application in the field of the intelligent devices and structures. In order to design MRE-based vibration control devices, their dynamic behavior should be mathematically represented with respect to broadband excitation frequency, amplitude, and the applied magnetic field. In this study, a nonlinear MRE model consisting of three parts - a fractional viscoelasticity model, magnetic dipole model, and an adaptive smooth Coulomb friction model - is developed. The fractional Maxwell model with only three parameters was introduced to simulate the dynamic behavior of MRE in a wide frequency range. A magnetic interaction model for adjacent particles was investigated and the magnetic force corresponding to the particle volume was calculated. We found that the interaction force not only affects the shear modulus, but also affects slipping at the interface between the particle and matrix. The adaptive smooth Coulomb friction used to model the magnetic field-dependent properties of the MRE accurately described the behavior of the material over a wide range of amplitudes at different magnetic field strengths. The model parameters were estimated by a simple procedure and the proposed model was found to represent MRE characteristics accurately. Therefore, the new model is expected to be advantageous for designing MRE-based vibration devices.
机译:磁流变弹性体(MRE)逐渐成为智能材料,可应用于智能设备和结构领域。为了设计基于MRE的振动控制设备,应在宽带激励频率,幅度和所施加的磁场方面用数学方式表示其动态行为。在这项研究中,开发了一个由三部分组成的非线性MRE模型-分数粘弹性模型,磁偶极子模型和自适应平滑库仑摩擦模型。引入仅具有三个参数的分数麦克斯韦模型来模拟MRE在较宽频率范围内的动态行为。研究了相邻颗粒的磁相互作用模型,并计算了与颗粒体积相对应的磁力。我们发现相互作用力不仅影响剪切模量,而且影响颗粒与基体之间的界面处的滑动。用于对MRE的磁场相关特性进行建模的自适应平滑库仑摩擦力可准确描述材料在不同磁场强度下的宽幅度范围内的行为。通过简单的过程估算模型参数,发现所提出的模型可以准确地表示MRE特征。因此,新模型有望在设计基于MRE的振动设备时具有优势。

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