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Thermo-mechanical fatigue crack growth in a nickel-based powder metallurgy superalloy

journal contribution
posted on 2024-07-29, 15:39 authored by Lu Zhang, Yuzhuo Wang, Zhiwei Yu, Rong Jiang, Konstantinos BaxevanakisKonstantinos Baxevanakis, Anish RoyAnish Roy, Liguo Zhao, Gaofeng Tian, Yingdong Song
Fatigue crack growth is studied in a nickel-based powder metallurgy (PM) superalloy (FGH4099) subjected to in-phase (IP) and out-of-phase (OP) thermo-mechanical fatigue (TMF), as well as isothermal fatigue (IF) at peak temperature. The crack growth rate and path are evaluated for both coarse grain (CG) and fine grain (FG) FGH4099, especially the effects of phase angle and polycrystalline microstructure. The results show that the TMF crack propagation is mainly transgranular in OP condition; while in IP condition, fatigue crack propagates intergranularly at low ΔK and transforms to transgranular after passing the transition region. The crack propagation resistance for FG microstructure is lower than that for CG microstructure at elevated temperature, as a result of secondary cracks and grain boundary weakening effect. Crystallographic slip controls the crack propagation process, while the twin boundaries (TB) and special grain boundaries also exert a significant influence on crack deflection. The formation of secondary cracks is closely related to local misorientation and crystallographic deformation during TMF crack propagation. The crack deflection in a single grain reveals a competition mechanism between crystallographic slip and grain boundary effect, which explains the lower crack growth rate for OP when compared to IP or IF.

Funding

National Natural Science Foundation of China (Grant No. 12250710129)

Natural Science Foundation of Jiangsu Province (Grant No. BK20200450)

China Postdoctoral Science Foundation (Grant No. 2023M731823)

Fundamental Research Funds for the Central Universities (Grant No. NS2022019)

History

School

  • Mechanical, Electrical and Manufacturing Engineering

Published in

International Journal of Fatigue

Volume

186

Issue

2024

Publisher

Elsevier

Version

  • AM (Accepted Manuscript)

Rights holder

© Elsevier

Publisher statement

This paper was accepted for publication in International Journal of Fatigue published by Elsevier. The final publication is available at https://doi.org/10.1016/j.ijfatigue.2024.108413. This manuscript version is made available under the CC-BY-NC-ND 4.0 license https://creativecommons.org/licenses/by-nc-nd/4.0/

Acceptance date

2024-05-20

Publication date

2024-05-22

Copyright date

2024

ISSN

0142-1123

eISSN

1879-3452

Language

  • en

Depositor

Dr Konstantinos Baxevanakis. Deposit date: 3 July 2024

Article number

108413