IMECH-IR  > 非线性力学国家重点实验室
Mechanism of subsurface microstructural fatigue crack initiation during high and very-high cycle fatigue of advanced bainitic steels
Gao, Guhui1; Liu, Rong1; Fan, Yusong1; Qian GA(钱桂安)2; Gui, Xiaolu1; Misra, RDK.3; Bai, Bingzhe1,4
Corresponding AuthorGao, Guhui([email protected])
Source PublicationJOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
2022-05-10
Volume108Pages:142-157
ISSN1005-0302
AbstractAdvanced 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.
KeywordMicrostructure Advanced bainitic steels Very high cycle fatigue Mechanism Retained austenite
DOI10.1016/j.jmst.2021.08.060
Indexed BySCI ; EI
Language英语
WOS IDWOS:000787754200005
WOS KeywordDUPLEX STAINLESS-STEEL ; OPEN-SOURCE SOFTWARE ; FINE GRANULAR AREA ; DYNAMIC RECRYSTALLIZATION ; PLASTIC-DEFORMATION ; BEHAVIOR ; ALLOY ; INCLUSIONS ; CRYSTALLOGRAPHY ; TRANSFORMATION
WOS Research AreaMaterials Science ; Metallurgy & Metallurgical Engineering
WOS SubjectMaterials Science, Multidisciplinary ; Metallurgy & Metallurgical Engineering
Funding ProjectNational Key Technologies Research and Development Program of China[2017YFB0304500] ; National Natural Science Foundation of China[51771014] ; National Natural Science Foundation of China[U1834202]
Funding OrganizationNational Key Technologies Research and Development Program of China ; National Natural Science Foundation of China
Classification一类
Ranking3+
ContributorGao, Guhui
Citation statistics
Cited Times:46[WOS]   [WOS Record]     [Related Records in WOS]
Document Type期刊论文
Identifierhttp://dspace.imech.ac.cn/handle/311007/89022
Collection非线性力学国家重点实验室
Affiliation1.Beijing Jiaotong Univ, Sch Mech Elect & Control Engn, Mat Sci & Engn Res Ctr, Beijing 100044, Peoples R China;
2.Chinese Acad Sci, Inst Mech, State Key Lab Nonlinear Mech LNM, Beijing 100190, Peoples R China;
3.Univ Texas El Paso, Lab Excellence Adv Steel Res, Dept Met Mat & Biomed Engn, 500W Univ Ave, El Paso, TX 79968 USA;
4.Tsinghua Univ, Sch Mat Sci & Engn, Key Lab Adv Mat, Beijing 100084, Peoples R China
Recommended Citation
GB/T 7714
Gao, Guhui,Liu, Rong,Fan, Yusong,et al. Mechanism of subsurface microstructural fatigue crack initiation during high and very-high cycle fatigue of advanced bainitic steels[J]. JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY,2022,108:142-157.Rp_Au:Gao, Guhui
APA Gao, Guhui.,Liu, Rong.,Fan, Yusong.,钱桂安.,Gui, Xiaolu.,...&Bai, Bingzhe.(2022).Mechanism of subsurface microstructural fatigue crack initiation during high and very-high cycle fatigue of advanced bainitic steels.JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY,108,142-157.
MLA Gao, Guhui,et al."Mechanism of subsurface microstructural fatigue crack initiation during high and very-high cycle fatigue of advanced bainitic steels".JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY 108(2022):142-157.
Files in This Item: Download All
File Name/Size DocType Version Access License
Jp2022FA374_2022_Mec(8608KB)期刊论文出版稿开放获取CC BY-NC-SAView Download
Related Services
Recommend this item
Bookmark
Usage statistics
Export to Endnote
Lanfanshu
Similar articles in Lanfanshu
[Gao, Guhui]'s Articles
[Liu, Rong]'s Articles
[Fan, Yusong]'s Articles
Baidu academic
Similar articles in Baidu academic
[Gao, Guhui]'s Articles
[Liu, Rong]'s Articles
[Fan, Yusong]'s Articles
Bing Scholar
Similar articles in Bing Scholar
[Gao, Guhui]'s Articles
[Liu, Rong]'s Articles
[Fan, Yusong]'s Articles
Terms of Use
No data!
Social Bookmark/Share
File name: Jp2022FA374_2022_Mechanism of subsurface microstructural fatigue crack initiation during high.pdf
Format: Adobe PDF
This file does not support browsing at this time
All comments (0)
No comment.
 

Items in the repository are protected by copyright, with all rights reserved, unless otherwise indicated.