Ni-Mn-Ga合金在磁场辅助定向凝固下的组织和力学特性

L. Hou, Siyuan Yang, Xingfu Yu, Y. Fautrelle, Zongbin Li, D. Cong, Z. Ren, Yanyan Zhu, Xi Li
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摘要

本文研究了横向磁场辅助定向凝固(MFADS)对Ni-Mn-Ga合金组织的影响。结果表明:磁场能诱导垂直于磁场方向的横向宏观偏析,使奥氏体基体中出现马氏体团簇;此外,磁场减轻了枝晶尺度上的微观偏析,促进了奥氏体枝晶的择优生长。在此基础上,利用MFADS设计了几种特殊样品,研究了热/应力诱导马氏体相变过程中的晶体学演变和力学行为。利用奥氏体基体中的马氏体团簇研究了冷却-加热循环下马氏体的转变和生长。对马氏体和奥氏体的结晶关系和相界组织进行了表征。此外,基于变形梯度张量的分析,枝晶尺度上的微观偏析对马氏体变异分布有显著影响,与压缩循环时的表现相对应。应力诱发的超弹性与取向密切相关,从不同的分解剪应力因子和对应的变对形成转化应变的角度可以很好地解释。在原位应力诱导转变过程中,对晶体学演化进行了表征。这一发现不仅加深了对Ni-Mn-Ga合金在热应力场作用下马氏体相变和力学行为的认识,而且为利用MFADS获得组织可控的功能合金提供了一种有前景的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microstructural and Mechanical Characteristics in Ni-Mn-Ga Alloys Under a Magnetic Field-Assisted Directional Solidification
In the present work, the effect of a transverse magnetic field-assisted directional solidification (MFADS) on the microstructures in Ni-Mn-Ga alloys has been investigated. The results show that the magnetic field is capable of inducing transversal macro segregation perpendicular to magnetic field, causing the emergence of martensite clusters in austenite matrix. Moreover, the magnetic field alleviates the micro segregation on a dendritic scale and promotes the preferred growth of austenite dendrites. On the basis of above investigation, several special samples are designed using the MFADS to study the crystallographic evolution and mechanical behavior during thermal/stress induced martensite transformation. The martensite cluster in austenite matrix is used to investigate the martensite transformation and growth under cooling-heating cycles. The crystallographic relationship and phase boundary microstructure between martensite and austenite have been characterized. In addition, the micro segregation on a dendritic scale can significantly influence the martensite variant distribution, corresponding to the performance during compressive circles based on the analysis about deformation gradient tensor. The stress-induced super elasticity is closely dependent on orientation, well explained from the perspective of different resolved shear stress factors and correspondence variant pair formation transformation strain. The crystallographic evolution has been characterized during in-situ stress-induced transformation. The findings not only deepen the understanding of martensite transformation and mechanical behavior under a thermal/stress field in Ni-Mn-Ga alloys, but also propose a promising strategy to obtain microstructure-controllable functional alloys by MFADS.
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