scholarly journals Correction: Liss, K.-D., et al. Hydrostatic Compression Behavior and High-Pressure Stabilized β-Phase in γ-Based Titanium Aluminide Intermetallics. Metals 2016, 6, 165

Metals ◽  
2017 ◽  
Vol 7 (9) ◽  
pp. 353
Author(s):  
Klaus-Dieter Liss ◽  
Ken-Ichi Funakoshi ◽  
Rian Dippenaar ◽  
Yuji Higo ◽  
Ayumi Shiro ◽  
...  
Metals ◽  
2016 ◽  
Vol 6 (7) ◽  
pp. 165 ◽  
Author(s):  
Klaus-Dieter Liss ◽  
Ken-Ichi Funakoshi ◽  
Rian Dippenaar ◽  
Yuji Higo ◽  
Ayumi Shiro ◽  
...  

Author(s):  
Naveed Zafar Ali ◽  
Branton J. Campbell ◽  
Martin Jansen

CsCoO2, featuring a two-dimensional layered architecture of edge- and vertex-linked CoO4 tetrahedra, is subjected to a temperature-driven reversible second-order phase transformation (α → β) at 100 K, which corresponds to a structural relaxation with concurrent tilting and breathing modes of edge-sharing CoO4 tetrahedra. In the present investigation, it was found that pressure induces a phase transition, which encompasses a dramatic change in the connectivity of the tetrahedra. At 923 K and 2 GPa, β-CsCoO2 undergoes a first-order phase transition to a new quenchable high-pressure polymorph, γ-CsCoO2. It is built up of a three-dimensional cristobalite-type network of vertex-sharing CoO4 tetrahedra. According to a Rietveld refinement of high-resolution powder diffraction data, the new high-pressure polymorph γ-CsCoO2 crystallizes in the tetragonal space group I41/amd:2 (Z = 4) with the lattice constants a = 5.8711 (1) and c = 8.3214 (2) Å, corresponding to a shrinkage in volume by 5.7% compared with the ambient-temperature and atmospheric pressure β-CsCoO2 polymorph. The pressure-induced transition (β → γ) is reversible; γ-CsCoO2 stays metastable under ambient conditions, but transforms back to the β-CsCoO2 structure upon heating to 573 K. The transformation pathway revealed is remarkable in that it is topotactic, as is demonstrated through a clean displacive transformation track between the two phases that employs the symmetry of their common subgroup Pb21 a (alternative setting of space group No. 29 that matches the conventional β-phase cell).


2016 ◽  
Vol 36 (4) ◽  
pp. 549-556 ◽  
Author(s):  
Anya M. Rasmussen ◽  
Elham Mafi ◽  
Wenguang Zhu ◽  
Yi Gu ◽  
Matthew D. McCluskey

2013 ◽  
Vol 84 (6) ◽  
pp. 063903 ◽  
Author(s):  
C. R. Rotundu ◽  
T. Ćuk ◽  
R. L. Greene ◽  
Z.-X. Shen ◽  
Russell J. Hemley ◽  
...  

2015 ◽  
Vol 29 (10n11) ◽  
pp. 1540009
Author(s):  
Liang Cheng ◽  
Xiangyi Xue ◽  
Bin Tang ◽  
Hongchao Kou ◽  
Jinshan Li

In this paper, ingot breakdown process of a high Nb containing TiAl alloy with a chemical composition of Ti –42.63 Al –8.11 Nb –0.21 W –0.09 Y (at.%) has been investigated under conventional forging conditions. It was found that the present alloy possesses superior hot-workability that can be successfully forged by conventional upsetting route due to the appearance of large amount of β/B2 phase, though shear band was observed in the forged-pancake. Further studies revealed that hot-working performed in (α + β) phase region which can effectively impede the β → α transformation and thus significantly increase the volume fraction of β/B2 phase. In contrast, the amount of β/B2 phase was notably reduced by heat treatment at the same conditions. This stress-induced effect is considered to be responsible to the superior hot-workability of the present alloy and the mechanism has been discussed and reasonably clarified. It was also suggested that the stress-induced effect has practical significance that it allows the implementation of conventional multi-step forging process which can develop fine and uniform microstructures suitable for secondary processing.


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