Title of article :
Dislocation decorrelation and relationship to deformation microtwins during creep of a γ′ precipitate strengthened Ni-based superalloy Original Research Article
Author/Authors :
R.R. Unocic، نويسنده , , N. Zhou، نويسنده , , L. Kovarik، نويسنده , , C. Shen، نويسنده , , Y. Wang، نويسنده , , M.J. Mills، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2011
Pages :
15
From page :
7325
To page :
7339
Abstract :
The evolution of microtwins during high temperature creep deformation in a γ′ strengthened Ni-based superalloy has been investigated through a combination of creep testing, transmission electron microscopy (TEM), theoretical modeling, and computer simulation. Experimentally, microtwin nucleation sources were identified and their evolution was tracked by characterizing the deformation substructure at different stages of creep deformation. Deformation is highly localized around stress concentrators such as carbides, borides and serrated grain boundaries, which act as sources of a/2〈1 1 0〉 matrix-type dislocations. Due to fine channels between the γ′ particles, coupled with a low γ matrix stacking fault energy, the a/2〈1 1 0〉 matrix dislocations dissociate into a/6〈1 1 2〉 Shockley partials, which were commonly observed to be decorrelated from one another, creating extended intrinsic stacking faults in the γ matrix. Microtwins are common and form via Shockley partial dislocations, cooperatively shearing both the γ and γ′ phases on adjacent {1 1 1} glide planes. The TEM observations lead directly to an analysis of dislocation–precipitate interactions. The important processes of dislocation dissociation and decorrelation were modeled in detail through phase field simulations and theoretical analyses based on Orowan looping, providing a comprehensive insight into the microstructural features and applied stress conditions that favor the microtwinning deformation mode in γ′ strengthened Ni-based superalloys.
Keywords :
Creep , Diffusion , Microtwinning , Shockley partial dislocations , Atomic ordering
Journal title :
ACTA Materialia
Serial Year :
2011
Journal title :
ACTA Materialia
Record number :
1145968
Link To Document :
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