AbstractThe present study investigates the evolution of nanocrystalline (NC) and ultrafine-grained (UF'/> Grain Nucleation and Growth in Deformed NiTi Shape Memory Alloys: An In Situ TEM Study
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Grain Nucleation and Growth in Deformed NiTi Shape Memory Alloys: An In Situ TEM Study

机译:变形的NITI形状记忆合金的谷物成核和生长:原位TEM研究

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AbstractThe present study investigates the evolution of nanocrystalline (NC) and ultrafine-grained (UFG) microstructures in plastically deformed NiTi. Two deformed NiTi alloys were subjected to in situ annealing in a transmission electron microscope (TEM) at 400 and 550?°C: an amorphous material state produced by high-pressure torsion (HPT) and a mostly martensitic partly amorphous alloy produced by wire drawing. In situ annealing experiments were performed to characterize the microstructural evolution from the initial?nonequilibrium states toward energetically more favorable microstructures. In general, the formation and evolution of nanocrystalline microstructures are governed by the nucleation of new grains and their subsequent growth. Austenite nuclei which form in HPT and wire-drawn microstructures have sizes close to 10?nm. Grain coarsening occurs in a sporadic, nonuniform manner and depends on the physical and chemical features of the local environment. The mobility of grain boundaries in NiTi is governed by the local interaction of each grain with its microstructural environment. Nanograin growth in thin TEM foils seems to follow similar kinetic laws to those in bulk microstructures. The present study demonstrates the strength of in situ TEM analysis and also highlights aspects which need to be considered when interpreting the results.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>本研究调查了纳米晶体(NC)的演变和塑性变形Niti中的超细晶粒(UFG)微结构。在400和550℃的透射电子显微镜(TEM)中,在400和550°C的透射电子显微镜(TEM)中以原位退火进行两种变形的NITI合金:由高压扭转(HPT)产生的无定形物质状态和由电线拉伸产生的主要马氏体部分无定形合金。在原地退火实验中进行了表征从初始θ非近频态的微观结构演化朝向具有能量更有利的微观结构。通常,纳米晶体微观结构的形成和演化受到新颗粒的成核和随后生长的管切。在HPT和线束微结构中形成的奥氏体核具有接近10μm的尺寸。籽粒粗化以散发性,不均匀的方式发生,并取决于当地环境的物理和化学特征。 NITI中晶界的迁移性受到每种谷物的局部相互作用,其微观结构环境受到。稀薄TEM箔的纳米疱疹似乎遵循与散装微观结构相似的动力学法。本研究表明了原位TEM分析的强度,并且还突出了解释结果时需要考虑的方面。 ]]>

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