4.7 Article

Roles of pre-formed martensite in below- M s bainite formation, microstructure, strain partitioning and impact absorption energies of low-carbon bainitic steel

Journal

JOURNAL OF MATERIALS SCIENCE & TECHNOLOGY
Volume 96, Issue -, Pages 69-84

Publisher

JOURNAL MATER SCI TECHNOL
DOI: 10.1016/j.jmst.2021.05.002

Keywords

Bainite; Martensite; Impact toughness; Transformation kinetics; Strain partitioning

Funding

  1. National Natural Science Foundation of China [U1760116]
  2. Natural Sci-ence Foundation of HeBei Province [E2019203478]

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The pre-formation of martensite accelerates the early stage of bainite transformation, but delays the finishing time. It refines the crystal structure of bainite and retained austenite, and promotes relatively uniform strain partitioning among various phases.
The roles of pre-formed martensite (PM) in below- M s bainite formation, microstructure, crystallography, strain partitioning and mechanical properties of a low-carbon bainitic steel were investigated using electron-backscattered diffraction, transmission electron microscopy, micro digital image correlation technique and mechanical tests. It is demonstrated that the pre-formation of martensite eliminates the incubation time for bainite transformation at various austempering temperatures below M s, indicative of its acceleration effect at the early stage of transformation. This effect is mainly attributed to the surfaces or tips of the PM acting as the nuclei of subsequently-formed bainite, with initial bainite tending to form around the PM. However, the finishing time for below- M s bainite transformation, especially at even lower temperatures, is retarded, owing to the dividing effect of PM on parent austenite grains, the decreasing effect of lowered isothermal temperature on the diffusion rate of carbon atoms and the strengthening effect of lowered isothermal temperature on supercooled austenite. PM and its adjacent bainitic laths have nearly the same crystallographic orientation and belong to the same block. The pre-formation of martensite largely refines the bainitic blocks/laths and retained austenite. The specimens with PM show relatively uniform strain partitioning among various phases, contrasting with the specimens without PM, for which strains are highly concentrated in the bainite region nearby fresh martensite/austenite (M/A) blocks or between adjacent M/A blocks. The impact absorption energies of the specimens with PM, when austempered at 30-60 degrees C below M s, are more than twice higher than those of the specimens without PM, at no expense of tensile properties. (c) 2022 Published by Elsevier Ltd on behalf of The editorial office of Journal of Materials Science & Technology.

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