基于颗粒动力学演化的磁弹体力磁耦合数值模型

A mechanics-magnetic coupling numerical model of magnetorheological elastomers based on particle dynamics simulation

  • 摘要: 基于颗粒动力学演化的磁致微观结构建立了横观各向同性磁弹体(MREs)三维几何模型,在考虑了磁场和变形耦合作用的基础上,依据当前MREs研究较热的两种磁颗粒作用模型构建了颗粒的控制方程,从而建立MREs多颗粒的力磁耦合数值模型,从细观角度研究MREs的力磁耦合性能。数值模型和剪切实验对比表明,点偶极子作用力模拟的MREs磁流变效应远低于实验数据,而多极作用力在量级上更接近实验数据。基于构建的数值模型,还详细探究了磁感应强度和颗粒浓度对磁致剪切模量的影响,模拟结果和实验趋势吻合较好,颗粒体积分数在20%附近时,相对磁流变效应达到最大。

     

    Abstract: Based on the evolution of magneto-induced microstructure by particle dynamics simulation, the 3D geometric model was established for transversely isotropic magnetorheological elastomers(MREs). On the basis of the current two main theories for the interaction between magnetic particles, the control equations on particles were built considering the coupling effect between deformation and magnetic field. The mechanics-magnetic coupling properties were studied in the mesoscopic level by establishing the multi-particles numerical model of MREs. The comparison result between numerical model and shear experiments indicates that multipole force model is closer to the test data than point-dipoles model. The influences of magnetic flux density and particle volume fraction on magneto-induced shear modulus were also discussed, that is, the numerical model gives an excellent agreement with experiments. The optimum particle volume fraction for the largest relative magnetorheological effect is about 20%.

     

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