The Role of High Magnetic Fields in the Evolution of Microstructure and Mechanical Properties in Medium Manganese Steel

IF 2.5 3区 材料科学 Q2 METALLURGY & METALLURGICAL ENGINEERING
Dong Zhang, Tingping Hou, Jie Zhou, Shi Cheng, Yihang Zheng, Kaiming Wu
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Abstract

The influence of the external magnetic field on the microstructures and mechanical properties of medium manganese steel during tempering is investigated. Microstructural analysis reveals that a high magnetic field accelerates martensite recovery, and the width of martensitic laths increased by 150% and 130% after tempering at 200 or 500 °C, respectively. This phenomenon is likely attributed to the magnetic field influence on elevating the diffusion activation energy. Dislocation motion is accelerated due to the magnetic field, leading to dislocation accumulation. The dislocation provides more nucleation sites for the carbide precipitation compared to without the magnetic field. Furthermore, a magnetic field triggers carbide precipitation, with rod-shaped transforming into spherical ones. The mechanical properties of specimens after tempering with a magnetic field are slightly higher than those of the specimens tempered without a magnetic field, which is due to the synergistic effect of the precipitation and dislocation motion. Special attention has been paid to emphasizing the medium-temperature tempering brittleness that arises from the precipitation and micro-voids along martensite lath and prior austenite grain boundaries. The mechanism of a magnetic field-induced transformation is further explored in this study, which has important theoretical and practical implications for the creation of advanced steel materials.

Abstract Image

强磁场对中锰钢组织和力学性能演变的影响
研究了外加磁场对中锰钢回火过程中组织和力学性能的影响。显微组织分析表明,高磁场加速了马氏体的恢复,在200℃和500℃回火后,马氏体板条宽度分别增加了150%和130%。这种现象可能是由于磁场对扩散活化能升高的影响。磁场加速位错运动,导致位错积累。与无磁场相比,位错为碳化物的析出提供了更多的成核位置。此外,磁场触发碳化物沉淀,棒状转变为球形。有磁场回火后试样的力学性能略高于无磁场回火试样,这是由于析出和位错运动的协同作用。特别注意强调中温回火脆性是由沿马氏体板条和奥氏体晶界的析出和微空洞引起的。本研究进一步探讨了磁场诱导相变的机理,对制造先进的钢材料具有重要的理论和实践意义。
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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
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