首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Room temperature metamagnetic transformation of a tough dual-phase Ni-Mn-Sn-Fe ferromagnetic shape memory alloy
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Room temperature metamagnetic transformation of a tough dual-phase Ni-Mn-Sn-Fe ferromagnetic shape memory alloy

机译:高温双相Ni-Mn-Sn-Fe铁磁形状记忆合金的室温元磁性变换

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摘要

Achieving concurrent good mechanical and magnetic properties is highly desirable for ferromagnetic shape memory alloys for meaningful applications, yet is challenging due to the difficulty to combine ideal microstructure and magnetism in one. This work demonstrates an alloy design strategy to overcome this challenge in a Ni51.5Mn40-xFexSn8.5 (x = 5, 6, 7) alloy system via microstructure engineering and composition tuning for its eutectic dual-phase microstructure. The alloys achieved a high strength of similar to 2000 MPa and a ductility of similar to 21%. In the meantime, the martensitic transformation was controlled within a particular temperature window between the Curie transition temperatures of the austenite and the martensite. This gives rise to the largest possible difference in saturation magnetization across the transformation and thus the highest driving force for the magnetic field mediated functionalities. (C) 2020 Elsevier B.V. All rights reserved.
机译:对于用于有意义的应用的铁磁形状记忆合金,非常希望实现同时良好的机械和磁性,因此由于难以结合理想的微观结构和磁力而挑战。 这项工作展示了一种合金设计策略,通过微观结构工程和组成调整,以克服Ni51.5Mn40-Xfexsn8.5(X = 5,6,7)合金系统,以克服Ni51.5Mn40-Xfexsn8.5(X = 5,6,7)合金系统,并为其共晶双相微观结构进行调整。 合金实现了与2000MPa相似的高强度,并且类似于21%的延展性。 同时,在奥氏体和马氏体的居里转变温度之间的特定温度窗口中控制马氏体转化。 这引起了跨越变换饱和磁化强度的最大可能差异,从而产生磁场介导的功能的最高驱动力。 (c)2020 Elsevier B.v.保留所有权利。

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