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On the competition between the stress-induced formation of martensite and dislocation plasticity during crack propagation in pseudoelastic NiTi shape memory alloys

机译:伪弹性NiTi形状记忆合金在裂纹扩展过程中应力诱导马氏体形成与位错塑性之间的竞争

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摘要

The present work addresses the competition between dislocation plasticity and stress-induced martensitic transformations in crack affected regions of a pseudoelastic NiTi miniature compact tension specimen. For this purpose X-ray line profile analysis was performed after fracture to identify dislocation densities and remnant martensite volume fractions in regions along the crack path. Special emphasis was placed on characterizing sub fracture surface zones to obtain depth profiles. The stress affected zone in front of the crack-tip is interpreted in terms of a true plastic zone associated with dislocation plasticity and a pseudoelastic zone where stress-induced martensite can form. On unloading, most of the stress-induced martensite transforms back to austenite but a fraction of it is stabilized by dislocations in both, the irreversible martensite and the surrounding austenite phase. The largest volume fraction of the irreversible or remnant martensite along with the highest density of dislocations in this phase was found close to the primary crack-tip. With increasing distance from the primary crack-tip both, the dislocation density and the volume fraction of irreversible martensite decrease to lower values.
机译:目前的工作解决了位错可塑性和应力诱发的马氏体转变在拟弹性NiTi微型紧凑拉伸试样的裂纹影响区域之间的竞争。为此,在断裂后进行X射线线轮廓分析,以确定沿裂纹路径的区域中的位错密度和残余马氏体体积分数。重点放在表征次裂缝表面区域以获得深度剖面上。裂纹尖端前的应力影响区是根据与位错可塑性相关的真塑性区和应力诱发的马氏体可能形成的假弹性区来解释的。卸荷时,大多数应力诱发的马氏体都转变回奥氏体,但其中一部分通过不可逆马氏体和周围奥氏体相中的位错而稳定。在该相附近,发现不可逆或残余马氏体的最大体积分数以及位错的最高密度。随着距初级裂纹尖端的距离增加,不可逆马氏体的位错密度和体积分数减小至较低值。

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  • 来源
    《Journal of Materials Research》 |2017年第23期|4433-4442|共10页
  • 作者单位

    Department of Materials Physics, Edtvos University Budapest, Budapest H-1518, Hungary and School of Materials, The University of Manchester, Manchester M13 9PL, U.K.;

    Institut fuer Werkstoffe, Ruhr-Universitaet Bochum, 44801 Bochum, Germany;

    Institut fuer Werkstoffe, Ruhr-Universitaet Bochum, 44801 Bochum, Germany;

    Department of Materials Physics, Eoetvoes University Budapest, Budapest H-1518, Hungary;

    Department of Materials Physics, Eoetvoes University Budapest, Budapest H-1518, Hungary and Department of Mechanical and Materials Engineering, Queen's University, Kingston, Ontario K7L 3N6, Canada;

    Institut fuer Werkstoffe, Ruhr-Universitaet Bochum, 44801 Bochum, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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