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首页> 外文期刊>International journal of applied mechanics >A Finite Element Framework for Magneto-Actuated Large Deformation and Instability of Slender Magneto-Active Elastomers
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A Finite Element Framework for Magneto-Actuated Large Deformation and Instability of Slender Magneto-Active Elastomers

机译:用于磁化磁性活性弹性体的磁化大变形和不稳定性的有限元框架

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摘要

In this paper, we present an efficient finite element framework for modeling the finite deformations of slender magneto-active elastomers (MAE) under applied magnetic fields or currents. For the convenience of numerical modeling, magnetic field is defined at fixed spatial coordinates in the background space rather than in the elastic MA Fs using material coordinates. The magnetic field will vary with free or localized currents while the spatial distribution of the magnetic field will evolve with the motion or deformation of the MAE materials, which is actuated by the surface or body forces induced by external magnetic fields or equivalent currents. A staggered strategy and a Riks method are introduced to solve the strongly coupled governing equations of the magnetic field and displacement. field using finite element method. The mesh distortion along the interfaces between MAE domain and free-space domain is resolved by considering concurrent deformation of the mesh in these two domains. A few 2D numerical examples demonstrate the validity and efficiency of the developed model for simulating large deformation of MAE with non-uniform spatial magnetic field under different actuation sources such as free currents, magnetization or external magnetic field. This framework offers a new solution strategy for modeling mechano-magneto problems of MAEs and will help rational design and analysis of MAE-based actuators and soft robotics in the future.
机译:在本文中,我们提出了一种有效的有限元框架,用于在应用磁场或电流下建模细长磁活性弹性体(MAE)的有限变形。为了便于使用数值建模,磁场在背景空间中的固定空间坐标处限定,而不是使用材料坐标在弹性MA FS中。磁场将随着自由或局部电流而变化,而磁场的空间分布将随着MAE材料的运动或变形而发展,其由由外部磁场或等效电流引起的表面或体力致动。引入了交错的策略和RIKS方法,以解决磁场和位移的强耦合控制方程。采用有限元法的场。通过考虑这两个域中的网格并发变形,解决沿MAE域和自由空间域之间的接口的网状失真。几个2D数值示例展示了在不同的致动源下模拟MAE的大变形的开发模型的有效性和效率,例如自由电流,磁化或外部磁场。该框架提供了一种新的解决方法,用于建模MAES Maes-Mage-Magnero问题,并将有助于未来对Mae的执行器和软机器人进行合理的设计和分析。

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