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Stress-rupture behavior of a Re-containing Ni-base single crystal superalloy at high temperatures.

Authors :
Wang, G.L.
Qi, D.Q.
Liu, J.L.
Liu, J.D.
Li, J.G.
Zhou, Y.Z.
Sun, X.F.
Source :
Journal of Materials Science & Technology; Nov2023, Vol. 163, p237-244, 8p
Publication Year :
2023

Abstract

• The rupture behavior at 900 ℃ is mainly determined by the multiplication of dislocations within the widening γ channels, which is closely linked with the propagation of microcracks along the inherent γ/γʹ interfaces. • The rapid formation of lamella raft structure, along with the developed-well interfacial dislocation networks, and its elastic instability are primarily responsible for the rupture behavior at 1100 °C. • There is a clear curvature tendency in the Larson-Miller plot of stress-rupture lifetime in relation with stress at high temperatures. It indicates that the influence extent of γʹ rafting on stress-rupture behavior is sensitive to the acting conditions of temperature and stress. A Re-containing Ni-base single crystal superalloy was used to investigate the elementary processes associated with stress-rupture behavior at different temperatures where the γʹ rafting occurs. At 900 °C, the rupture behavior is mainly determined by the multiplication of dislocations within the widening γ channels, which is closely linked with the propagation of microcracks along the inherent γ/γʹ interfaces. The rapid formation of lamella γ/γʹ raft structure, along with the developed-well interfacial dislocation networks, and its elastic instability are primarily responsible for the rupture behavior at 1100 °C. There is a clear curvature tendency in the Larson-Miller plot of stress-rupture lifetime in relation to stress at high temperatures. It indicates that the influence extent of γʹ rafting on stress-rupture behavior is sensitive to the acting conditions of temperature and stress. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10050302
Volume :
163
Database :
Supplemental Index
Journal :
Journal of Materials Science & Technology
Publication Type :
Periodical
Accession number :
171365294
Full Text :
https://doi.org/10.1016/j.jmst.2023.02.035