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Work Output Enhancement of Ferromagnetic Shape Memory Micro Actuators

机译:铁磁形状记忆微执行器的工作输出增强

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Ferromagnetic shape memory (FSM) alloys are a class of materials which are both ferromagnetic and capable of undergoing a structural phase transformation. FSM alloys have significant advantage over conventional shape-memory temperature-based actuators because they can be remotly actuated by fast alternating magnetic fields. Therefore, FSM alloys attract keen attention as promising candidates for a variety of MEMS applications, as they can provide large strokes using small components. The most commonly used FSM alloy is Ni_2MnGa and its off-stoichiometric alloys, which are used in commercial cm-scale FSM actuator. However, at the current stage, no experiments of the magneto-mechnical behavior of micro-scale actuators were conducted.Overall, the behavior of FSM alloys involves motion of twin boundaries and is significantly influenced by its microstructure. Based on a theoretical model, we have shown that down-scale specimens have finer twin boundary microstructure that consequently may increase the blocking stress characteristic such that it will enhance the output work for actuation. In lightof this, a novel experimental method was realized to establish this conjecture and to provide comprehensive information on the behavior of small actuators. A series of tests demonstrated no actuation strain reduction up to extraordinary loads of 1 OMPa, and thus paves the route for engineering FSM high-power micro actuators by controlling their microstructure.
机译:铁磁形状记忆(FSM)合金是一类既是铁磁的又能进行结构相变的材料。 FSM合金相对于传统的基于形状记忆温度的执行器具有显着优势,因为它们可以通过快速交变磁场来快速启动。因此,FSM合金作为各种MEMS应用的有前途的候选者引起了人们的极大关注,因为它们可以使用较小的组件提供较大的行程。最常用的FSM合金是Ni_2MnGa及其非化学计量合金,用于商业厘米级FSM执行器。但是,在目前阶段,还没有对微型执行器的磁机械行为进行实验。 总体而言,FSM合金的行为涉及孪晶边界的运动,并且受其微观结构的影响很大。基于理论模型,我们已经显示出小尺寸的样品具有更精细的孪晶边界微观结构,因此可能会增加阻塞应力特性,从而将增强驱动的输出功。在光明中 其中,实现了一种新颖的实验方法来建立这种推测并提供有关小型执行器性能的全面信息。一系列测试表明,在高达1 OMPa的特殊负载下,致动应变都没有降低,因此通过控制微结构的微结构,为FSM大功率微致动器的工程设计铺平了道路。

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