首页> 外文期刊>The European physical journal: Special topics >Training, constraints, and high-cycle magneto-mechanical properties of Ni-Mn-Ga magnetic shape-memory alloys
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Training, constraints, and high-cycle magneto-mechanical properties of Ni-Mn-Ga magnetic shape-memory alloys

机译:Ni-Mn-Ga磁性形状记忆合金的训练,约束和高循环磁机械性能

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摘要

Magneto-mechanical experiments with a rotating magnetic field of 0.97 T were performed with a Ni-Mn-Ga single crystal. Periodic strains exceeding 1% were recorded over a hundred million magneto-mechanical cycles. The twin microstructure of the cycled crystal was characterized using atomic force microscopy (AFM) and magnetic force microscopy (MFM). In the center of the sample, no twin boundaries were found. At the sample edges, the microstructure shows a dense twin pattern. The results are compared with previous experiments of differently trained crystals. It is useful to distinguish between "ineffective training", which results in a nearly self-accommodated martensite, and "effective training", which results in a nearly single-variant crystal. The evolution of twin structure is discussed in terms of training, magneto-mechanical cycling, and extrinsic constraints imposed by the experimental setting. It is concluded that the response of a magnetic shape memory alloy to an alternating excitation depends strongly on the initial twin microstructure established through training. In particular, ineffective training results in a twin microstructure which can adapt to extrinsic constraints resulting in continued large periodic magnetic-field-induced deformation. In contrast, the twin microstructure of an effectively trained crystal can not adapt to extrinsic constraints resulting in early failure by fracture.
机译:用Ni-Mn-Ga单晶进行了旋转磁场为0.97 T的磁机械实验。在超过一亿次的磁-机械循环中,记录到超过1%的周期性应变。使用原子力显微镜(AFM)和磁力显微镜(MFM)对循环晶体的孪生微观结构进行了表征。在样品的中心,没有发现孪生边界。在样品边缘,微观结构显示出致密的孪晶图案。将结果与以前训练有素的晶体的实验进行了比较。区分“无效训练”和“有效训练”是有用的,“无效训练”导致近乎适应的马氏体,而“有效训练”导致近乎单变量的晶体。从训练,磁机械循环和实验环境施加的外在约束方面讨论了孪生结构的演变。结论是,磁性形状记忆合金对交替激发的响应在很大程度上取决于通过训练建立的初始孪晶微观结构。特别是,无效的训练会导致孪生微观结构,该微观结构可适应外部约束,从而导致持续的周期性磁场引起的大变形。相反,受过有效训练的晶体的孪生微观结构无法适应外部约束,导致早期断裂破坏。

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