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DEVELOPMENT AND VALIDATION OF A BIDIRECTIONAL MAGNETO-MECHANICAL COUPLED ACTUATOR MODEL

机译:双向磁机耦合执行器模型的开发与验证

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摘要

The bidirectionally coupled magnetoelastic model (BCMEM) developed by [1] has been modified to include electric currents in its magnetic finite element formulation. This enables the model to capture the magnetoelastic behavior of magnetostrictive materials subjected to elastic stresses and magnetic fields applied not only by permanent magnets but also by current carrying coils used often in actuator applications. This model was implemented by combining COMSOL Multiphysics 3.4 (Finite Element Modeling software) with an energy-based non-linear magnetomechanical constitutive model. The coupling variables are magnetostriction and magnetic permeability that are dependent on both magnetic (magnetic flux density) and mechanical (stress) properties. In this research, the BCMEM was used to simulate actuator load lines for a magnetostrictive Fe_(84)Ga_(16) alloy, which were then compared to experimental data [2]. Also, the ability of the model to capture the presence of the AE effect in Galfenol was demonstrated using the BCMEM. Finally, the use of the BCMEM to as a tool for transducer design optimization is demonstrated by using the model to visualize the influence of different magnetic circuit designs on transducer performance.
机译:由[1]开发的双向耦合磁弹性模型(BCMEM)已被修改为在其磁性有限元公式中包含电流。这使模型能够捕获磁致伸缩材料的磁弹性行为,这些材料不仅受到永磁体而且还受到致动器应用中经常使用的载流线圈施加的弹性应力和磁场的作用。该模型是通过将COMSOL Multiphysics 3.4(有限元建模软件)与基于能量的非线性磁机械本构模型相结合来实现的。耦合变量是磁致伸缩和导磁率,它们取决于磁(磁通密度)和机械(应力)特性。在这项研究中,BCMEM用于模拟磁致伸缩Fe_(84)Ga_(16)合金的执行器负载线,然后将其与实验数据进行比较[2]。同样,使用BCMEM证明了模型捕获Galfenol中AE效应的能力。最后,通过使用模型可视化不同磁路设计对换能器性能的影响,证明了将BCMEM用作换能器设计优化的工具。

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