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ID 65891
フルテキストURL
著者
Senuma, Takehide Department of Mechanical and Systems Engineering, Okayama University
Okayasu, Mitsuhiro Department of Mechanical and Systems Engineering, Okayama University ORCID Kaken ID researchmap
Mohrbacher, Hardy NiobelCon BV
抄録
The demand for higher-strength automotive steel sheets has increased significantly for lightweight and safe body concepts. However, the increment of the steel strength is often limited by the potential occurrence of delayed fracture. This paper discusses proper microstructure control and alloy design to improve the resistance against the delayed fracture of ultrahigh-strength automotive steel sheets in order to increase the usable upper limit of their strength and provides basic data serving as a practical guide for solving the problem of delayed fracture in ultrahigh-strength automotive steel sheets. It is confirmed that grain refinement, the appropriate dual-phase structure of martensite with ferrite or retained austenite, and surface decarburization, increase the resistance to delayed fracture. In terms of alloy design, the effects of Nb, Mo, and B on the delayed fracture resistance of hot-stamped steels have been investigated. The results suggest that there are other reasons for Nb to improve delayed fracture resistance in addition to grain refinement and the ability to trap hydrogen by its precipitates, as has been conventionally believed. Regarding Mo, it was clearly demonstrated that the segregation of this element at the grain boundary plays a main role in improving the delayed fracture resistance.
キーワード
delayed fracture
hydrogen embrittlement
high-strength steel
automotive steel sheets
microstructural control
alloy design
発行日
2023-07-29
出版物タイトル
Metals
13巻
8号
出版者
MDPI
開始ページ
1368
ISSN
2075-4701
資料タイプ
学術雑誌論文
言語
英語
OAI-PMH Set
岡山大学
著作権者
© 2023 by the authors.
論文のバージョン
publisher
DOI
Web of Science KeyUT
関連URL
isVersionOf https://doi.org/10.3390/met13081368
ライセンス
https://creativecommons.org/licenses/by/4.0/
Citation
Senuma, T.; Okayasu, M.; Mohrbacher, H. Microstructural Control and Alloy Design for Improving the Resistance to Delayed Fracture of Ultrahigh-Strength Automotive Steel Sheets. Metals 2023, 13, 1368. https://doi.org/10.3390/met13081368