Robust additive manufacturable Ni superalloys designed by the integrated optimization of local elemental segregation and cracking susceptibility criteria

Journal Article (2024)
Author(s)

Hao Yu (Northeastern University China)

Jiabo Fu (Northeastern University China)

Chenchong Wang (Northeastern University China)

Yinping Chen (Northeastern University China)

Lingyu Wang (Northeastern University China)

Haixing Fang (European Synchrotron Radiation Facility, Université de Lyon, Université Grenoble Alpes, Grenoble INP)

Jinguo Li (Chinese Academy of Sciences)

Sybrand van der Zwaag (TU Delft - Aerospace Engineering)

Wei Xu (Northeastern University China)

Research Group
Group Garcia Espallargas
DOI related publication
https://doi.org/10.1016/j.actamat.2024.119658 Final published version
More Info
expand_more
Publication Year
2024
Language
English
Research Group
Group Garcia Espallargas
Bibliographical Note
Green Open Access added to TU Delft Institutional Repository ‘You share, we take care!’ – Taverne project https://www.openaccess.nl/en/you-share-we-take-care Otherwise as indicated in the copyright section: the publisher is the copyright holder of this work and the author uses the Dutch legislation to make this work public.
Journal title
Acta Materialia
Volume number
266
Article number
119658
Downloads counter
388
Collections
Institutional Repository
Reuse Rights

Other than for strictly personal use, it is not permitted to download, forward or distribute the text or part of it, without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license such as Creative Commons.

Abstract

To achieve an effective design of additively manufacturable Ni superalloys with decent service performance, a hybrid computational design model has been developed, where the strategy to tailor local elemental segregations was integrated within a scheme of minimizing the cracking susceptibility. More specifically, the phase boundary of primary NbC / γ matrix was introduced into the design routine to tune the spatial distribution of critical solutes at an atomic scale, thereby inhibiting the formation of borides and segregation-induced cracking. Based on the output of the design, new grades of Ni superalloy have been developed with excellent additive manufacturability, as confirmed by the robustness of printing parameters in fabricating low-defect-density samples. The capability of the phase boundaries to evenly distribute boron atoms was validated experimentally, and the cracking induced by uncontrolled boron segregation at grain boundaries was effectively prevented. The newly designed alloys showed good tensile properties and decent oxidation resistance at different service temperatures, which are comparable to those of conventionally produced superalloys. The finding that phase boundaries can be employed to prevent undesirable clustering of boron atoms can be extended to manipulate the distributions of other critical elements, which provides a new path for designing novel Ni superalloys with balanced printability and mechanical properties.

Files

1-s2.0-S1359645424000119-main.... (pdf)
(pdf | 15.6 Mb)
- Embargo expired in 08-07-2024
License info not available