The effect of ultra-fast heating on the microstructure, grain size and texture evolution of a commercial low-C, medium-Mn DP steel
- Author
- Alexandros Banis (UGent) , Eliseo Hernández Durán, Vitaliy Bliznuk (UGent) , Ilchat Sabirov, Roumen Petrov (UGent) and Spyros Papaefthymiou
- Organization
- Abstract
- The effect of ultra-fast heating on the microstructures of steel has been thoroughly studied over the last year as it imposes a suitable alternative for the production of ultra high strength steel grades. Rapid reheating followed by quenching leads to fine-grained mixed microstructures. This way the desirable strength/ductility ratio can be achieved while the use of costly alloying elements is significantly reduced. The current work focuses on the effect of ultra-fast heating on commercial dual phase grades for use in the automotive industry. Here, a cold-rolled, low-carbon, medium-manganese steel was treated with a rapid heating rate of 780 degrees C/s to an intercritical peak temperature (760 degrees C), followed by subsequent quenching. For comparison, a conventionally heated sample was studied with a heating rate of 10 degrees C/s. The initial microstructure of both sets of samples consisted of ferrite, pearlite and martensite. It is found that the very short heating time impedes the dissolution of cementite and leads to an interface-controlled alpha -> gamma transformation. The undissolved cementite affects the grain size of the parent austenite grains and of the microstructural constituents after quenching. The final microstructure consists of ferrite and martensite in a 4/1 ratio, undissolved cementite and traces of austenite while the presence of bainite is possible. Finally, it is shown that the texture is not strongly affected during ultra-fast heating, and the recovery and recrystallization of ferrite are taking place simultaneously with the alpha -> gamma transformation.
- Keywords
- ultra-fast heating, DP steels, diffusionless transformations, recrystallization, AHSS, AUSTENITE FORMATION, BAINITIC MECHANISM, CEMENTITE DISSOLUTION, TRANSFORMATION, KINETICS, FERRITE, EBSD
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Citation
Please use this url to cite or link to this publication: http://hdl.handle.net/1854/LU-8669780
- MLA
- Banis, Alexandros, et al. “The Effect of Ultra-Fast Heating on the Microstructure, Grain Size and Texture Evolution of a Commercial Low-C, Medium-Mn DP Steel.” METALS, vol. 9, no. 8, 2019, doi:10.3390/met9080877.
- APA
- Banis, A., Hernández Durán, E., Bliznuk, V., Sabirov, I., Petrov, R., & Papaefthymiou, S. (2019). The effect of ultra-fast heating on the microstructure, grain size and texture evolution of a commercial low-C, medium-Mn DP steel. METALS, 9(8). https://doi.org/10.3390/met9080877
- Chicago author-date
- Banis, Alexandros, Eliseo Hernández Durán, Vitaliy Bliznuk, Ilchat Sabirov, Roumen Petrov, and Spyros Papaefthymiou. 2019. “The Effect of Ultra-Fast Heating on the Microstructure, Grain Size and Texture Evolution of a Commercial Low-C, Medium-Mn DP Steel.” METALS 9 (8). https://doi.org/10.3390/met9080877.
- Chicago author-date (all authors)
- Banis, Alexandros, Eliseo Hernández Durán, Vitaliy Bliznuk, Ilchat Sabirov, Roumen Petrov, and Spyros Papaefthymiou. 2019. “The Effect of Ultra-Fast Heating on the Microstructure, Grain Size and Texture Evolution of a Commercial Low-C, Medium-Mn DP Steel.” METALS 9 (8). doi:10.3390/met9080877.
- Vancouver
- 1.Banis A, Hernández Durán E, Bliznuk V, Sabirov I, Petrov R, Papaefthymiou S. The effect of ultra-fast heating on the microstructure, grain size and texture evolution of a commercial low-C, medium-Mn DP steel. METALS. 2019;9(8).
- IEEE
- [1]A. Banis, E. Hernández Durán, V. Bliznuk, I. Sabirov, R. Petrov, and S. Papaefthymiou, “The effect of ultra-fast heating on the microstructure, grain size and texture evolution of a commercial low-C, medium-Mn DP steel,” METALS, vol. 9, no. 8, 2019.
@article{8669780,
abstract = {{The effect of ultra-fast heating on the microstructures of steel has been thoroughly studied over the last year as it imposes a suitable alternative for the production of ultra high strength steel grades. Rapid reheating followed by quenching leads to fine-grained mixed microstructures. This way the desirable strength/ductility ratio can be achieved while the use of costly alloying elements is significantly reduced. The current work focuses on the effect of ultra-fast heating on commercial dual phase grades for use in the automotive industry. Here, a cold-rolled, low-carbon, medium-manganese steel was treated with a rapid heating rate of 780 degrees C/s to an intercritical peak temperature (760 degrees C), followed by subsequent quenching. For comparison, a conventionally heated sample was studied with a heating rate of 10 degrees C/s. The initial microstructure of both sets of samples consisted of ferrite, pearlite and martensite. It is found that the very short heating time impedes the dissolution of cementite and leads to an interface-controlled alpha -> gamma transformation. The undissolved cementite affects the grain size of the parent austenite grains and of the microstructural constituents after quenching. The final microstructure consists of ferrite and martensite in a 4/1 ratio, undissolved cementite and traces of austenite while the presence of bainite is possible. Finally, it is shown that the texture is not strongly affected during ultra-fast heating, and the recovery and recrystallization of ferrite are taking place simultaneously with the alpha -> gamma transformation.}},
articleno = {{877}},
author = {{Banis, Alexandros and Hernández Durán, Eliseo and Bliznuk, Vitaliy and Sabirov, Ilchat and Petrov, Roumen and Papaefthymiou, Spyros}},
issn = {{2075-4701}},
journal = {{METALS}},
keywords = {{ultra-fast heating,DP steels,diffusionless transformations,recrystallization,AHSS,AUSTENITE FORMATION,BAINITIC MECHANISM,CEMENTITE DISSOLUTION,TRANSFORMATION,KINETICS,FERRITE,EBSD}},
language = {{eng}},
number = {{8}},
pages = {{18}},
title = {{The effect of ultra-fast heating on the microstructure, grain size and texture evolution of a commercial low-C, medium-Mn DP steel}},
url = {{http://doi.org/10.3390/met9080877}},
volume = {{9}},
year = {{2019}},
}
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