掺杂 Zr 和 V 对 NiMnIn 形状记忆合金马氏体转变和磁性能的影响

IF 2.4 4区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Yahya Taşgın , M. Sait Kanca , Mediha Kök , Ecem Özen Öner , Ömer Güler
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引用次数: 0

摘要

本研究在三元镍锰铟 Heusler 磁性形状记忆合金中分别掺入了第四种元素钒(V)和锆(Zr),并通过电弧熔炼法生产出了合金锭。详细研究了这些新型合金的形状记忆特性、微观结构、磁性和微观结构变化。合金中掺入的钒(V)和锆(Zr)元素导致合金的转化温度值降低,但并未引起其磁性能的显著变化。由于孪晶边界处奥氏体相的成核增加,具有低磁滞的母样会发生从马氏体相到奥氏体相的相变。在这里,合金中掺入钒和锆会使合金的强度和韧性值增加,从而导致第二相的形成。由于合金中第二相的形成增加,可以说合金的形状保持率略有下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Zr and V-doped effect on Martensitic transformations and magnetic properties of NiMnIn shape memory alloy

Zr and V-doped effect on Martensitic transformations and magnetic properties of NiMnIn shape memory alloy

Zr and V-doped effect on Martensitic transformations and magnetic properties of NiMnIn shape memory alloy

In this study, the elements vanadium (V) and zirconium (Zr) were doped separately as a fourth element to the ternary NiMnIn Heusler magnetic shape memory alloy and the alloys were produced as ingots by arc-melting method. The shape memory properties, microstructures, magnetic and microstructural changes of these new alloys were investigated in detail. The vanadium (V) and zirconium (Zr) elements doped into the alloy caused a decrease in the transformation temperature values of the alloy, but did not cause a significant change in its magnetic properties. The master sample, which has low hysteresis, undergoes a phase transition from the martensite phase to the austenite phase due to an increase in the nucleation of austenite phases at the twinning boundaries. Here, the vanadium and zirconium doping of the alloy caused an increase in the strength and ductility values of the alloy and this caused the formation of the second phase. Due to the increase of this phase formation in the alloy, it can be said that there is a slight decrease in the shape retention of the alloy.

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来源期刊
Current Applied Physics
Current Applied Physics 物理-材料科学:综合
CiteScore
4.80
自引率
0.00%
发文量
213
审稿时长
33 days
期刊介绍: Current Applied Physics (Curr. Appl. Phys.) is a monthly published international journal covering all the fields of applied science investigating the physics of the advanced materials for future applications. Other areas covered: Experimental and theoretical aspects of advanced materials and devices dealing with synthesis or structural chemistry, physical and electronic properties, photonics, engineering applications, and uniquely pertinent measurement or analytical techniques. Current Applied Physics, published since 2001, covers physics, chemistry and materials science, including bio-materials, with their engineering aspects. It is a truly interdisciplinary journal opening a forum for scientists of all related fields, a unique point of the journal discriminating it from other worldwide and/or Pacific Rim applied physics journals. Regular research papers, letters and review articles with contents meeting the scope of the journal will be considered for publication after peer review. The Journal is owned by the Korean Physical Society.
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