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A discrete twin-boundary approach for simulating the magneto-mechanical response of Ni-Mn-Ga

机译:模拟Ni-Mn-Ga磁机械响应的离散双边界方法

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The design and optimization of ferromagnetic shape memory alloys (FSMA)-based devices require quantitative understanding of the dynamics of twin boundaries within these materials. Here, we present a discrete twin boundary modeling approach for simulating the behavior of an FSMA Ni-Mn-Ga crystal under combined magneto-mechanical loading conditions. The model is based on experimentally measured kinetic relations that describe the motion of individual twin boundaries over a wide range of velocities. The resulting calculations capture the dynamic response of Ni-Mn-Ga and reveal the relations between fundamental material parameters and actuation performance at different frequencies of the magnetic field. In particular, we show that at high field rates, the magnitude of the lattice barrier that resists twin boundary motion is the important property that determines the level of actuation strain, while the contribution of twinning stress property is minor. Consequently, type II twin boundaries, whose lattice barrier is smaller compared to type I, are expected to show better actuation performance at high rates, irrespective of the differences in the twinning stress property between the two boundary types. In addition, the simulation enables optimization of the actuation strain of a Ni-Mn-Ga crystal by adjusting the magnitude of the bias mechanical stress, thus providing direct guidelines for the design of actuating devices. Finally, we show that the use of a linear kinetic law for simulating the twinning-based response is inadequate and results in incorrect predictions.
机译:基于铁磁形状记忆合金(FSMA)的设备的设计和优化要求对这些材料中孪晶边界的动力学有定量的了解。在这里,我们提出了一种离散的孪晶边界建模方法,用于模拟组合的磁-机械载荷条件下的FSMA Ni-Mn-Ga晶体的行为。该模型基于实验测量的动力学关系,该动力学关系描述了单个双边界在较大速度范围内的运动。所得的计算结果捕获了Ni-Mn-Ga的动态响应,并揭示了基本材料参数与在不同磁场频率下的驱动性能之间的关系。尤其是,我们表明,在高场频下,抵抗孪晶边界运动的晶格势垒的大小是决定驱动应变水平的重要属性,而孪生应力属性的贡献很小。因此,与两种晶界之间的孪生应力特性不同,与晶格壁垒相比I型晶界更小的II型孪晶边界有望表现出更高的致动性能。此外,该模拟通过调整偏置机械应力的大小,可以优化Ni-Mn-Ga晶体的致动应变,从而为致动装置的设计提供直接指导。最后,我们表明使用线性动力学定律模拟基于孪生的响应是不充分的,并且会导致错误的预测。

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