Marchenko Ekaterina S, Klopotov Anatoly A, Baigonakova Gulsharat A, Zhukov Ilya A
Laboratory of Superelastic Biointerfaces, National Research Tomsk State University, 36 Lenin Ave., 634045 Tomsk, Russia.
Institute for Problems of Chemical and Energy Technologies, Siberian Branch of the Russian Academy of Sciences, St. Socialist 1, 659322 Biysk, Russia.
Materials (Basel). 2023 Dec 28;17(1):175. doi: 10.3390/ma17010175.
This article presents the results of studies of the features of the development of thermoelastic martensitic transformations during cooling/heating in the free state and under load of TiNiNbMo alloys (X = 0.5, 1.0 and 1.5 at% Nb) with shape memory effects. Using X-ray diffraction analysis, it was found that all the alloys studied at room temperature contained a multiphase mixture consisting of intermetallic compounds with the TiNi (B2, B19'), NiTiNb, and TiNi compositions. Scanning electron microscopy was used to study the microstructure of TiNi (Nb,Mo) alloys and it was found that the distribution of fine NiTiNb particles in the matrix depends significantly on the concentration of the alloying element. A correlation was established between changes in the structural-phase state in TiNi (Nb,Mo) alloys and the occurrence of the B2↔B19' martensitic transition in the free state and under load. Based on physical and mechanical studies, the temperature ranges of the martensitic transformations (MT) in the free state and under load were established. Based on the thermodynamic description of the MT and the analysis of the characteristic temperatures of the MT, it was found that the MT mechanism is strongly dependent on the concentration of the alloying element.
本文介绍了对具有形状记忆效应的TiNiNbMo合金(X = 0.5、1.0和1.5原子百分比的Nb)在自由状态以及加载状态下冷却/加热过程中热弹性马氏体转变发展特征的研究结果。通过X射线衍射分析发现,所有在室温下研究的合金均包含由具有TiNi(B2、B19')、NiTiNb和TiNi成分的金属间化合物组成的多相混合物。利用扫描电子显微镜研究了TiNi(Nb,Mo)合金的微观结构,发现基体中细小NiTiNb颗粒的分布显著取决于合金元素的浓度。在TiNi(Nb,Mo)合金的结构相状态变化与自由状态以及加载状态下B2↔B19'马氏体转变的发生之间建立了相关性。基于物理和力学研究,确定了自由状态以及加载状态下马氏体转变(MT)的温度范围。基于对MT的热力学描述以及对MT特征温度的分析,发现MT机制强烈依赖于合金元素的浓度。