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On the mechanism of crack propagation resistance of fully lamellar TiAl alloy

Authors :
Cao, R.
Yao, H.J.
Chen, J.H.
Zhang, J.
Source :
Materials Science & Engineering: A. Mar2006, Vol. 420 Issue 1/2, p122-134. 13p.
Publication Year :
2006

Abstract

Abstract: The study was done using notched two-colony thick tensile specimens of a directionally solidified cast fully lamellar TiAl alloy. In-situ observations of fracture processes in scanning electron microscope (SEM) were combined with section-to-section related observations of fracture surfaces to investigate the crack growth process. Finite element method (FEM) calculations are carried out to evaluate the stresses for propagating cracks. The results reveal that: (1) the reason why enhancement of applied load is required to propagate the main crack, was attributed to that the main crack observed at the surface did not extend all the way through the specimen''s thickness thus the stress field was still controlled by the notch, in which a definite stress required for extending a crack tip should be kept by increasing the applied load. (2) Crack propagation resistance is enhanced at colony boundaries, only when a change occurs from an inter-lamellar propagation to a trans-lamellar propagation (3) Ligament bridging toughening phenomena can be integrated into aforementioned mechanism. As a whole the processes of new crack nucleation with bridging ligament formation decreases the crack propagation resistance rather than increasing it. (4) In case the majority of microcracks are surface cracks, the effect of microcrack shielding is not obvious. [Copyright &y& Elsevier]

Details

Language :
English
ISSN :
09215093
Volume :
420
Issue :
1/2
Database :
Academic Search Index
Journal :
Materials Science & Engineering: A
Publication Type :
Academic Journal
Accession number :
20525923
Full Text :
https://doi.org/10.1016/j.msea.2006.01.089