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首页> 外文期刊>Journal of Materials Science >Magneto-microstructural coupling during stress-induced phase transformation in Co_(49)Ni_(21)Ga_(30) ferromagnetic shape memory alloy single crystals
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Magneto-microstructural coupling during stress-induced phase transformation in Co_(49)Ni_(21)Ga_(30) ferromagnetic shape memory alloy single crystals

机译:Co_(49)Ni_(21)Ga_(30)铁磁形状记忆合金单晶应力诱导相变过程中的磁微结构耦合

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The present study reports on direct magneto-microstructural observations made during the stress-induced martensitic transformation in Co _(49)Ni_(21)Ga_(30) alloy single crystals with optical, scanning electron, and magnetic force microscopy (MFM). The evolution of the microstructure and the associated magnetic domain morphology as a function of applied strain were investigated in the as-grown condition and after thermo-mechanical training. The results demonstrated that the stress-induced martensite (SIM) evolves quite differently in the two conditions and depending on the martensite formation mechanisms, the magnetic domain configuration was dissimilar. In the as-grown crystals two twin-related martensite variants were formed and the growth of these twin variants resulted in large strain. After thermo-mechanical training a morphology similar to a self-accommodating martensite structure was present at the initial stages of the transformation and thereafter martensite reorientation (MR) was the main transformation mechanism. The magnetic domains were found to be superimposed on the nano-scaled martensite twins in the as-grown condition, whereas training brought about the formation of domains on the order of a few microns without showing the one-to-one correspondence between domains and the twin structure. After the thermo-mechanical training detwinning at high-strain levels led to the formation of stripe-like domain structures. The ramifications of the results with respect to the magneto-microstructural coupling that may cause the magnetic shape memory effect (MSME) in Co-Ni-Ga alloys under constant external stress is addressed.
机译:本研究通过光学,扫描电子和磁力显微镜(MFM)报道了在Co _(49)Ni_(21)Ga_(30)合金单晶应力诱导的马氏体转变过程中进行的直接磁微结构观察。在生长条件下和热机械训练后,研究了微观结构的演变以及相关的磁畴形态随所施加应变的变化。结果表明,在两种条件下,应力诱导的马氏体(SIM)的演化差异很大,并且取决于马氏体的形成机理,磁畴构型是不同的。在生长的晶体中,形成了两个孪生相关的马氏体变体,这些孪生变体的生长导致大应变。经过热机械训练后,相变的初始阶段出现了类似于自适应性马氏体结构的形态,此后,马氏体重新定向(MR)是主要的相变机制。发现磁畴在生长状态下叠加在纳米级马氏体孪晶上,而训练却导致了几微米量级的畴的形成,而没有显示出畴与晶界之间的一一对应关系。孪生结构。在热机械训练之后,高应变水平的解缠导致形成条纹状畴结构。解决了在恒定外部应力下可能导致Co-Ni-Ga合金的磁形状记忆效应(MSME)的磁微结构耦合结果的后果。

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