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  4. Microstructural Evolution Study of Fe-Mn-Al-C Steels Through Variable Thermomechanical Treatments
 
research article

Microstructural Evolution Study of Fe-Mn-Al-C Steels Through Variable Thermomechanical Treatments

Duran, J. F.
•
Perez, G. A.
•
Rodriguez, J. S.
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August 26, 2021
Metallurgical And Materials Transactions A-Physical Metallurgy And Materials Science

The microstructural evolution of the two austenitic alloys Fe-20Mn-3Al-0.7C wt pct and Fe-20Mn-6Al-0.7C wt pct when different thermal and thermomechanical treatments are performed has been studied. To this end, a generic industrial die of 100 ton capacity and a Gleeble 3800 simulator were selected to perform the thermomechanical treatments. A solubilization treatment was carried out at 1100 degrees C for 4 days for the two alloys in as cast state. In addition, the specimens deformed with the industrial die underwent a solubilization treatment at 1100 degrees C for 4 hours. Microstructural characterizations were performed by X-ray diffraction, transmission Mossbauer spectrometry, and electron backscatter diffraction. The results showed both the formation of different austenites rich and poor in solute atoms, as well as different microstructures, as a function of the treatments performed, which affected the resulting dynamically recrystallized microstructures. Notably, it was observed that it is possible to explain and relate the evolution of the microstructure to the hyperfine parameters resulting from fitting the Mossbauer spectra. In particular, the relationship between the degree of dynamic recrystallization and the evolution of an ordered austenitic structure is discussed.

  • Details
  • Metrics
Type
research article
DOI
10.1007/s11661-021-06424-0
Web of Science ID

WOS:000690589800001

Author(s)
Duran, J. F.
Perez, G. A.
Rodriguez, J. S.
Aguilar, Y.
Loge, R. E.  
Zambrano, O. A.
Date Issued

2021-08-26

Publisher

SPRINGER

Published in
Metallurgical And Materials Transactions A-Physical Metallurgy And Materials Science
Volume

42

Start page

4785

End page

4799

Subjects

Materials Science, Multidisciplinary

•

Metallurgy & Metallurgical Engineering

•

Materials Science

•

high-strength

•

phase-transformation

•

mechanical-properties

•

kappa-carbide

•

spinodal decomposition

•

neutron-diffraction

•

induced plasticity

•

trip/twip steels

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hot deformation

•

twip steel

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMTM  
Available on Infoscience
September 11, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/181286
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