Effect of α-Ferrite on Plasticity and Fracture Mechanisms of Dual-Phase Ultrastrong Heterolamellar Steels

IF 1.9 3区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING steel research international Pub Date : 2024-09-23 DOI:10.1002/srin.202400392
Hao Wu, Ye Jia, Xiangtao Deng, Tianliang Fu, Zhaodong Wang
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Abstract

Lamellar heterostructure design is widely recognized as a potential method to improve strength and ductility simultaneously of high-performance steel. However, the high mechanical contrast among soft/hard phase and inharmonic plastic deformation lead to complex fracture mechanisms and limit the improvement of plasticity. Herein, the plasticity and tensile fracture mechanisms of two types of δ-ferrite and lath martensite heterolamellar steels with and without α-ferrite are investigated. The sample without α-ferrite shows a combination of cleavage in δ-ferrite and dimple zones in the martensite. The microcracks initiate in the martensite early and the then the cleavage fracture occurs in the δ-ferrite due to the stress concentration. In contrast, the sample with α-ferrite has lower plasticity. Failure of the samples with α-ferrite is govern by the microcracks initiating in the interface of martensite/α-ferrite. Eliminating the impact of the effect of α-ferrite, the total elongation increases from 8.9% to 11.6%, and the ultimate tensile strength (UTS) increases from 1567 to 1652 MPa. This study investigates the critical factor in plasticity control of dual-phase heterostructure and promotes the development and application of lamellar structure.

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α-铁素体对双相超强异质层钢塑性及断裂机制的影响
片层异质结构设计是一种有潜力同时提高高性能钢强度和延性的方法。然而,高强度的软/硬相力学对比和非调和塑性变形导致断裂机制复杂,限制了塑性的提高。研究了含α-铁素体和不含α-铁素体δ-铁素体和板条马氏体两种异质层钢的塑性和拉伸断裂机理。不含α-铁素体的试样在δ-铁素体中有解理,在马氏体中有韧窝区。应力集中导致马氏体较早萌生微裂纹,δ-铁素体较早发生解理断裂。α-铁素体的塑性较低。α-铁素体试样的破坏是由马氏体/α-铁素体界面产生的微裂纹控制的。消除α-铁素体的影响后,总伸长率由8.9%提高到11.6%,极限抗拉强度由1567提高到1652 MPa。本研究探讨了双相异质结构塑性控制的关键因素,促进了片层结构的发展和应用。
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来源期刊
steel research international
steel research international 工程技术-冶金工程
CiteScore
3.30
自引率
18.20%
发文量
319
审稿时长
1.9 months
期刊介绍: steel research international is a journal providing a forum for the publication of high-quality manuscripts in areas ranging from process metallurgy and metal forming to materials engineering as well as process control and testing. The emphasis is on steel and on materials involved in steelmaking and the processing of steel, such as refractories and slags. steel research international welcomes manuscripts describing basic scientific research as well as industrial research. The journal received a further increased, record-high Impact Factor of 1.522 (2018 Journal Impact Factor, Journal Citation Reports (Clarivate Analytics, 2019)). The journal was formerly well known as "Archiv für das Eisenhüttenwesen" and "steel research"; with effect from January 1, 2006, the former "Scandinavian Journal of Metallurgy" merged with Steel Research International. Hot Topics: -Steels for Automotive Applications -High-strength Steels -Sustainable steelmaking -Interstitially Alloyed Steels -Electromagnetic Processing of Metals -High Speed Forming
期刊最新文献
Masthead Cover Picture Contents: steel research int. 12/2024 Masthead Cover Picture
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