4.7 Article

Mechanism of subsurface microstructural fatigue crack initiation during high and very-high cycle fatigue of advanced bainitic steels

Journal

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
Volume 108, Issue -, Pages 142-157

Publisher

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2021.08.060

Keywords

Microstructure; Advanced bainitic steels; Very high cycle fatigue; Mechanism; Retained austenite

Funding

  1. National Key Technologies Research and Development Program of China [2017YFB0304500]
  2. National Natural Science Foundation of China [51771014, U1834202]

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This study investigates the fatigue crack initiation behavior of advanced bainitic steels during high cycle fatigue/very high cycle fatigue regimes and the role of retained austenite in crack initiation and propagation. The study identifies multiple micro-mechanisms responsible for fatigue crack initiation and discusses the formation of fine grains that assist crack advancement. The findings provide insights into the cyclic response of multiphase structures and the mechanisms of fatigue crack initiation during very high cycle fatigue.
Advanced bainitic steels with the multiphase structure of bainitic ferrite, retained austenite and marten-site exhibit distinctive fatigue crack initiation behavior during high cycle fatigue/very high cycle fatigue (HCF/VHCF) regimes. The subsurface microstructural fatigue crack initiation, referred to as non-inclusion induced crack initiation, NIICI, is a leading mode of failure of bainitic steels within the HCF/VHCF regimes. In this regard, there is currently a missing gap in the knowledge with respect to the cyclic response of multiphase structure during VHCF failure and the underlying mechanisms of fatigue crack initiation during VHCF. To address this aspect, we have developed a novel approach that explicitly identi-fies the knowledge gap through an examination of subsurface crack initiation and interaction with the lo -cal microstructure. This was accomplished by uniquely combining electron microscopy, three-dimensional confocal microscopy, focused ion beam, and transmission Kikuchi diffraction. Interestingly, the study indi-cated that there are multiple micro-mechanisms responsible for the NIICI failure of bainitic steels, includ-ing two scenarios of transgranular-crack-assisted NIICI and two scenarios of intergranular-crack-assisted NIICI, which resulted in the different distribution of fine grains in the crack initiation area. The fine grains were formed through fragmentation of bainitic ferrite lath caused by localized plastic deformation or via local continuous dynamic recrystallization because of repeated interaction between slip bands and prior austenite grain boundaries. The formation of fine grains assisted the advancement of small cracks. An-other important aspect discussed is the role of retained austenite (RA) during cyclic loading, on crack ini-tiation and propagation in terms of the morphology, distribution and stability of RA, which determined the development of localized cyclic plastic deformation in multiphase structure. (c) 2022 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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