Effect of tempering on microstructure and mechanical properties of 3Mn-Si-Ni martensitic steel

The dependence of microstructures and mechanical properties on tempering temperature (from 180 to 650°C) in a designed 3Mn-Si-Ni martensitic steel was systematically analyzed. Microstructure was characterized using scanning and transmission electron microscopy; mechanical properties were measured us...

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Veröffentlicht in:Materials science & engineering. A, Structural materials : properties, microstructure and processing Structural materials : properties, microstructure and processing, 2018-01, Vol.711, p.397-404
Hauptverfasser: Zhao, Yan-jun, Ren, Xue-ping, Hu, Zhi-liu, Xiong, Zhi-ping, Zeng, Jian-min, Hou, Bao-yu
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Sprache:eng
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Zusammenfassung:The dependence of microstructures and mechanical properties on tempering temperature (from 180 to 650°C) in a designed 3Mn-Si-Ni martensitic steel was systematically analyzed. Microstructure was characterized using scanning and transmission electron microscopy; mechanical properties were measured using uniaxial tensile test and Charpy V-notch impact test. After tempering at different temperatures, recovery, partial recrystallization, carbides precipitation and decomposition of residual austenite were observed. After tempering at 230°C, an excellent combination of strength (1550MPa) and toughness (91.5J) was achieved, due to high dislocation density and ε-carbides precipitation. However, with an increase in tempering temperature from 320 to 550°C, tempered martensite embrittlement was observed, where impact energy was ~ 10J. It was ascribed to cementite formation instead of transition carbides and decomposition of residual austenite. With an increase in tempering temperature up to 650°C, high fracture impact toughness of 75J was obtained with deteriorated tensile strength of 850MPa due to strong recovery and partial recrystallization.
ISSN:0921-5093
1873-4936
DOI:10.1016/j.msea.2017.11.037