High-energy X-ray diffraction study on the temperature-dependent mechanical stability of retained austenite in low-alloyed TRIP steels
Creators
- 1. Materials Innovation Institute, Mekelweg 2, 2628 CD Delft (Netherlands)
- 2. Fundamental Aspects of Materials and Energy, Faculty of Applied Sciences, Delft University of Technology, Mekelweg 15, 2629 JB Delft (Netherlands)
- 3. Department of Materials Science and Engineering, Delft University of Technology, Mekelweg 2, 2628 CD Delft (Netherlands)
- 4. European Synchrotron Radiation Facility, 6 Rue Jules Horowitz, BP 220, 38043 Grenoble Cedex (France)
- 5. Novel Aerospace Materials Group, Faculty of Aerospace Engineering, Delft University of Technology, Kluyverweg 1, 2629 HS Delft (Netherlands)
Description
The stability of the retained austenite has been studied in situ in low-alloyed transformation-induced-plasticity (TRIP) steels using high-energy X-ray diffraction during tensile tests at variable temperatures down to 153 K. A detailed powder diffraction analysis has been performed to probe the austenite-to-martensite transformation by characterizing the evolution of the phase fraction, load partitioning and texture of the constituent phases simultaneously. Our results show that at lower temperatures the mechanically induced austenite transformation is significantly enhanced and extends over a wider deformation range, resulting in a higher elongation at fracture. Low carbon content grains transform first, leading to an initial increase in average carbon concentration of the remaining austenite. Later the carbon content saturates while the austenite still continues to transform. In the elastic regime the probed {h k l} planes develop different strains reflecting the elastic anisotropy of the constituent phases. The observed texture evolution indicates that the austenite grains oriented with the {2 0 0} plane along the loading direction are transformed preferentially as they show the highest resolved shear stress. For increasing degrees of plastic deformation the combined preferential transformation and grain rotation results in the standard deformation texture for austenite with the {1 1 1} component along the loading direction. The mechanical stability of retained austenite in TRIP steel is found to be a complex interplay between carbon concentration in the austenite, grain orientation, load partitioning and temperature.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.actamat.2011.10.019Additional details
Identifiers
- DOI
- 10.1016/j.actamat.2011.10.019;
- PII
- S1359-6454(11)00724-5;
Publishing Information
- Journal Title
- Acta Materialia
- Journal Volume
- 60
- Journal Issue
- 2
- Journal Page Range
- p. 565-577
- ISSN
- 1359-6454
- CODEN
- ACMAFD
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 43114844
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- ANISOTROPY; AUSTENITE; CARBON; CRYSTALS; ELONGATION; GRAIN ORIENTATION; MARTENSITE; PHASE TRANSFORMATIONS; PLASTICITY; PROBES; SHEAR; STABILITY; STEELS; SYNCHROTRON RADIATION; TEMPERATURE DEPENDENCE; TEXTURE; X-RAY DIFFRACTION
- Descriptors DEC
- ALLOYS; BREMSSTRAHLUNG; CARBON ADDITIONS; COHERENT SCATTERING; DEFORMATION; DIFFRACTION; ELECTROMAGNETIC RADIATION; ELEMENTS; IRON ALLOYS; IRON BASE ALLOYS; MECHANICAL PROPERTIES; MICROSTRUCTURE; NONMETALS; ORIENTATION; RADIATIONS; SCATTERING; TRANSITION ELEMENT ALLOYS
Optional Information
- Copyright
- Copyright (c) 2011 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.