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Experimental and numerical study on surface roughness of magnetorheological elastomer for controllable friction

机译:可控摩擦磁流变弹性体表面粗糙度的实验性和数值研究

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Magnetorheological elastomer (MRE) is a type of smart material of which mechanical and electrical properties can be reversibly controlled by the magnetic field. In this study, the influence of the magnetic field on the surface roughness of MRE was studied by the microscopic modeling method, and the influence of controllable characteristics of the MRE surface on its friction properties was analyzed by the macroscopic experimental method. First, on the basis of existing studies, an improved mesoscopic model based on magnetomechanical coupling analysis was proposed. The initial surface morphology of MRE was characterized by the W-M fractal function, and the change process of the surface microstructures of MRE, induced by the magnetic interaction between particles, was studied. Then, after analyzing the simulation results, it is found that with the increase in the magnetic field and decrease in the modulus of rubber matrix, the surface of MRE changes more significantly, and the best particle volume fraction is within 7.5%–9%. Furthermore, through experimental observation, it is found that the height of the convex peak on the surface of MRE decreases significantly with the action of the magnetic field, resulting in a reduction in the surface roughness. Consistent with the simulation results, a particle volume fraction of 10% corresponds to a maximum change of 14%. Finally, the macroscopic friction experiment results show that the friction coefficients of MREs with different particle volume fractions all decrease with the decrease in surface roughness under the magnetic field. When the particle volume fraction is 10%, the friction coefficient can decrease by 24.7% under a magnetic field of 400 mT, which is consistent with the trend of surface roughness changes. This shows that the change in surface morphology with the effect of the magnetic field is an important factor in the control of MRE friction properties by magnetic field.
机译:磁流变弹性体(MRE)是一种智能材料,可以通过磁场可逆地控制机械和电气性能。在该研究中,通过微观建模方法研究了磁场对MRE表面粗糙度的影响,通过宏观实验方法分析了MRE表面的可控特性对其摩擦性能的影响。首先,在现有研究的基础上,提出了一种基于磁机械耦合分析的改进的介观模型。研究了MRE的初始表面形态,其特征在于W-M分形功能,并研究了由颗粒之间的磁性相互作用引起的MRE的变化过程。然后,在分析模拟结果之后,发现随着磁场的增加和橡胶基质模量的降低,MRE的表面更显着变化,最佳颗粒体积分数在7.5%-9%之内。此外,通过实验观察,发现MRE表面上的凸峰的高度随着磁场的作用而显着降低,导致表面粗糙度降低。符合模拟结果,10%的粒度分数对应于最大变化为14%。最后,宏观摩擦实验结果表明,具有不同颗粒体积分数的MR的摩擦系数随着磁场下表面粗糙度的降低而变化。当颗粒体积分数为10%时,摩擦系数可以在400mT的磁场下减小24.7%,这与表面粗糙度变化的趋势一致。这表明具有磁场效果的表面形态的变化是通过磁场控制MRE摩擦性能的重要因素。

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