首页> 外文会议>International Conference on Textures of Materials;ICOTOM 15 >CRYSTALLOGRAPHIC FEATURES DURING MARTENSITIC TRANSFORMATION IN Ni-Mn-Ga FERROMAGNETIC SHAPE MEMORY ALLOYS
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CRYSTALLOGRAPHIC FEATURES DURING MARTENSITIC TRANSFORMATION IN Ni-Mn-Ga FERROMAGNETIC SHAPE MEMORY ALLOYS

机译:Ni-Mn-Ga铁磁形状记忆合金马氏体相变过程中的晶体学特征

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The martensitic transformation crystallography in two Ni_(53)Mn_(25)Ga_(22) (at. %) ferromagnetic shape memory alloys (FSMAs) was investigated by means of misorientation calculation and pole figure analysis based on the orientation of the martensitic lamellae obtained from electron backscattered diffraction (EBSD) measurements. In the alloy that was first annealed at 1073K for 4h, and then cooled to 473K at~4K/min and held for 30min, followed by cooling to room temperature at~10K/min, there are only two kinds of differently orientated martensitic lamellae with a misorientation angle of ~82° distributed alternatively in each initial austenite grain. There is a compound twinning orientation relationship between the two lamellae. The prevalent orientation relationship between austenite and martensite is Kurdjumov-Sachs (K-S) relationship with (111)_A//(101)_M, [1-10]_a//[11-1]_m. In the alloy that was annealed at 1173K for 4h followed by furnace cooling, nanoscale twins inside the martensitic lamellae were observed and the orientation relationships both between the nanotwins within one lamella and between the nanotwins in two neighboring lamellae were determined. The results presented in this paper will enrich the crystallographic data of the FSMAs and offer useful information for the development of novel FSMAs with optimal performances.
机译:通过失取向计算和基于获得的马氏体片晶取向的极图分析,研究了两种Ni_(53)Mn_(25)Ga_(22)(原子%)铁磁形状记忆合金(FSMAs)中的马氏体相变晶体学由电子背散射衍射(EBSD)测量得出。首先在1073K下退火4h,然后以〜4K / min冷却至473K并保持30min,然后以〜10K / min冷却至室温的合金中,只有两种取向不同的马氏体薄片:在每个初始奥氏体晶粒中交替分布的〜82°的取向差角。两个薄片之间存在复合孪生取向关系。奥氏体和马氏体之间的普遍取向关系是Kurdjumov-Sachs(K-S)关系,其(111)_A //(101)_M,[1-10] _a // [11-1] _m。在1173K退火4h,然后炉内冷却的合金中,观察到马氏体薄片内部的纳米孪晶,并确定了一个薄片内的纳米孪晶与两个相邻薄片中的纳米孪晶之间的取向关系。本文提出的结果将丰富FSMA的晶体学数据,并为开发具有最佳性能的新型FSMA提供有用的信息。

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