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Published January 2021 | Version v1
Journal article

Enhanced creep performance in a polycrystalline superalloy driven by atomic-scale phase transformation along planar faults

  • 1. Max-Planck-Institut für Eisenforschung, Max-Planck Straße 1, 40237 Düsseldorf (Germany)
  • 2. Department of Materials, Imperial College, South Kensington, London SW7 2AZ (United Kingdom)
  • 3. Illinois Institute of Technology, 10 W. 32nd Street, Chicago, IL, 60616 (United States)

Description

Predicting the mechanical failure of parts in service requires understanding their deformation behavior, and associated dynamic microstructural evolution up to the near-atomic scale. Solutes are known to interact with defects generated by plastic deformation, thereby affecting their displacement throughout the microstructure and hence the material's mechanical response to solicitation. This effect is studied here in a polycrystalline Ni-based superalloy with two different Nb contents that lead to a significant change in their creep lifetime. Creep testing at 750°C and 600 MPa shows that the high-Nb alloy performs better in terms of creep strain rate. Considering the similar initial microstructures, the difference in mechanical behavior is attributed to a phase transformation that occurs along planar faults, controlled by the different types of stacking faults and alloy composition. Electron channeling contrast imaging reveals the presence of stacking faults in both alloys. Microtwinning is observed only in the low-Nb alloy, rationalizing in part the higher creep strain rate. In the high-Nb alloy, atom probe tomography evidences two different types of stacking faults based on their partitioning behavior. Superlattice intrinsic stacking faults were found enriched in Nb, Co, Cr and Mo while only Nb and Co was segregated at superlattice extrinsic stacking faults. Based on their composition, a local phase transformation occurring along the faults is suggested, resulting in slower creep strain rate in the high-Nb alloy. In comparison, mainly superlattice intrinsic stacking faults enriched in Co, Cr, Nb and Mo were found in the low-Nb alloy. Following the results presented here, and those available in the literature, an atomic-scale driven alloy design approach that controls and promotes local phase transformation along planar faults at 750°C is proposed, aiming to design superalloys with enhanced creep resistance.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.actamat.2020.10.062

Additional details

Identifiers

DOI
10.1016/j.actamat.2020.10.062;
PII
S1359645420308600;

Publishing Information

Journal Title
Acta Materialia
Journal Volume
202
Journal Page Range
p. 232-242
ISSN
1359-6454
CODEN
ACMAFD

Optional Information

Copyright
Copyright (c) 2020 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.