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Martensitic transformations and functional stability in ultra-fine grained NiTi shape memory alloys

机译:NiTi超细颗粒形状记忆合金的马氏体相变和功能稳定性

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Martensitic transformations in NiTi shape memory alloys (SMAs) strongly depend on the microstructure. In the present work, we investigate how martensitic transformations are affected by various types of ultra-fine grained (UFG) microstructures resulting from various processing routes. NiTi SMAs with UFG microstructures were obtained by equal channel angular pressing, high pressure torsion, wire drawing and subsequent annealing treatments. The resulting material states were characterized by transmission electron microscopy and differential scanning calorimetry (DSC). The three thermomechanical processing routes yield microstructures which significantly differ in terms of grain size and related DSC chart features. While the initial coarse grained material shows a well defined one-step martensitic transformation on cooling, two-step transformations were found for all UFG material states. The functional stability of the various UFG microstructures was evaluated by thermal cycling. It was found that UFG NiTi alloys show a significantly higher stability. In the present work, we also provide preliminary results on the effect of grain size on the undercooling required to transform the material into B19' and on the related heat of transformation.
机译:NiTi形状记忆合金(SMAs)中的马氏体转变在很大程度上取决于微观结构。在目前的工作中,我们调查了马氏体相变如何受到各种加工路线产生的各种类型的超细晶粒(UFG)微结构的影响。通过等通道角压,高压扭转,拉丝和随后的退火处理,获得具有UFG微结构的NiTi SMA。通过透射电子显微镜和差示扫描量热法(DSC)表征得到的材料状态。三种热机械加工路线产生的微观结构在晶粒尺寸和相关的DSC图表特征方面存在显着差异。最初的粗粒材料在冷却时表现出明确的一步马氏体相变,而对于所有UFG材料状态都发现了两步相变。通过热循环评价了各种UFG微结构的功能稳定性。发现UFG NiTi合金显示出明显更高的稳定性。在目前的工作中,我们还提供了有关晶粒尺寸对将材料转变为B19'所需的过冷的影响以及相关的转变热的初步结果。

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