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首页> 外文期刊>Metallurgical and materials transactions. A, physical metallurgy and materials science >High-Resolution Transmission Electron Microscopy Investigation of the Face-Centered Cubic/Hexagonal Close-Packed Martensite Transformation in Co-31.8 Wt Pct Ni Alloy: Part 2. Plate Intersections, Extended Defects, and Nucleation Mechanisms
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High-Resolution Transmission Electron Microscopy Investigation of the Face-Centered Cubic/Hexagonal Close-Packed Martensite Transformation in Co-31.8 Wt Pct Ni Alloy: Part 2. Plate Intersections, Extended Defects, and Nucleation Mechanisms

机译:Co-31.8 Wt Pct Ni合金中的面心立方/六方密堆积马氏体相转变的高分辨率透射电镜研究:第2部分。平板相交,扩展缺陷和成核机制

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摘要

The face-centered cubic/hexagonal close-packed (fcc/hcp) martensite phase transformation in a Co-31.8 wt pct Ni alloy was studied by high-resolution transmission electron microscopy (HRTEM). The HRTEM was used to study the structure and properties of intersections between martensite plates and other defects observed in the alloy such as stacking fault tetrahedra (SFT) and Z-type defects. The HRTEM was also used to attempt to determine if various proposed mechanisms for the fcc/hcp martensite transformation were operating. There is evidence to suggest that the reflection mechanism proposed by Bollmann and the dipole mechanism proposed by Hirth are active in the fcc/hcp martensitic transformation, although the evidence is not completely certain in either case. Growth of the hcp phase by a four- or six-plane mechanism as proposed by Mahajan et al. is possible in theory but was not observed in this study. Transformation by previously proposed pole mechanisms was also not observed in this study, although evidence for a new type of pole mechanism was found. The formation of SFT along the fcc/hcp martensite interface was observed to occur by the cross-slip of Shockley partial dislocations out of the fcc/hcp interface onto conjugate fcc matrix planes, followed by further cross-slip to form the SFT, as previously observed for grain boundaries in fcc alloys.
机译:通过高分辨率透射电子显微镜(HRTEM)研究了Co-31.8 wt pct Ni合金中的面心立方/六方密堆积(fcc / hcp)马氏体相变。 HRTEM用于研究马氏体板与合金中观察到的其他缺陷(例如堆垛层错四面体(SFT)和Z型缺陷)之间的相交结构和性能。 HRTEM还用于确定fcc / hcp马氏体相变的各种建议机制是否正在运行。有证据表明,Bollmann提出的反射机制和Hirth提出的偶极机制在fcc / hcp马氏体相变中是活跃的,尽管在这两种情况下都没有完全确定的证据。 Mahpjan等人提出的通过四或六平面机制生长hcp相。从理论上讲是可能的,但这项研究并未观察到。尽管发现了新型磁极机理的证据,但在本研究中也未​​观察到以前提出的磁极机理的转化。沿着fcc / hcp马氏体界面观察到SFT的形成是通过将Shockley部分位错从fcc / hcp界面滑出到共轭fcc基质平面上,然后再进行进一步的滑移以形成SFT而发生的。在fcc合金中观察到晶界。

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