Characteristics of retained austenite in TRIP steels with bainitic ferrite matrix

Mingya Zhang , Fuxian Zhu , Zhengtao Duan , Shicheng Ma

Journal of Wuhan University of Technology Materials Science Edition ›› 2011, Vol. 26 ›› Issue (6) : 1148 -1151.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2011, Vol. 26 ›› Issue (6) : 1148 -1151. DOI: 10.1007/s11595-011-0379-x
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Characteristics of retained austenite in TRIP steels with bainitic ferrite matrix

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Abstract

Heat treatment process for producing cold rolled transformation induced plasticity-aided (TRIP-aided) steels with bainitic ferrite matrix was adopted. Characteristics of retained austenite (RA) in such TRIP steels were investigated. SEM and OM determination results showed that the stable austenite retained at room temperature were mainly located between laths and some of them inside the coarse ferrite. The grains were uniformly distributed in heat treated steel matrix and the regularly dispersed RA represented to be triangular morphology. XRD analysis indicated that RA content in matrix was not less than 10%, and TEM testified that RA inside the matrix were formed at the prior austenite boundaries and represented to be single or twin crystals. The ductile fracture originated from the boundaries of martensite islands from RA and ferrite. The cracks propagated along grain boundaries and some passed through the large ferrite grains and induced transgranular fracture.

Keywords

TRIP steel / retained austenite / morphology / microstructure

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Mingya Zhang, Fuxian Zhu, Zhengtao Duan, Shicheng Ma. Characteristics of retained austenite in TRIP steels with bainitic ferrite matrix. Journal of Wuhan University of Technology Materials Science Edition, 2011, 26(6): 1148-1151 DOI:10.1007/s11595-011-0379-x

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References

[1]

Glage A, Weidner A and Biermann H. Effect of Austenite s t ability on the Low Cycle Fatigue Behavior and Microstructure of High Alloyed Metastable Austenitic Cast TRIP-steels[J]. Procedia Engineering, 2010, (2):2085–2094

[2]

Rusinek A., Klepaczko J. R. Experiments on Heat Generated during Plastic Deformation and Stored Energy for TRIP steels[J]. Materials and Design, 2009, 30: 35-48.

[3]

Sugimoto K., Fiji D., Yoshikawa N. Fatigue Strength of Newly Developed High-strength Low Alloy TRIP-aided Steels with Good Hardenability[J]. Procedia Engineering, 2010, 2: 359-362.

[4]

Sugimoto K., Murata M., Muramatsu T., . Formability of C-Si-Mn-Al-Nb-Mo Ultra High-strength TRIP-aided Sheet Steels[J]. ISIJ Inter., 2007, 47(a): 1 357-1 362.

[5]

Wei X. C., Fu R. Y., Li L. Tensile Deformation Behavior of Coldrolled TRIP-aided Steels over Large Range of Strain Rates[J]. Materials Science and Engineering A, 2007, 465: 260-266.

[6]

Creuziger A., Foecke T. Transformation Potential Predictions for the Stress-induced Austenite to Martenite Transformation in Steel [J]. Acta Materialia, 2010, 58: 85-91.

[7]

Saha Podder A., Bhadeshia H. K. D. H. Thermal Stability of Austenite Retained in Bainitic Steels [J]. Materials Science and Engineering A, 2010, 527: 2121-2128.

[8]

Wang X. D., Huang B. X., Rong Y. H., . Microstructures and Stability of Retained Austenite in TRIP Steels [J]. Materials Science and Engineering A, 2006, 438–440: 300-305.

[9]

Wasilkowska A., Tsipouridis P., Werner E. A., . Microstructure and Tensile Behavior of Cold-rolled TRIP-aided Steels [J]. J. Mater. Sci. Technol., 2004, 157–158: 633-636.

[10]

Sugimoto K., Murata M., Song S. M. Formability of Al-Nb Bearing Ultra High-strength TRIP-aided Sheet Steels with Bainitic Ferrite and/or Martensite Matrix [J]. ISIJ Inter., 2010, 50(1): 162-168.

[11]

Van Dijk N. H., Butt A. M., Zhao L., . Thermal Stability of Retained Austenite in TRIP Steels Studied by Synchrotron X-ray Diffraction during Cooling[J]. Acta Materialia, 2005, 53: 5 439-5 447.

[12]

Mukherjee M., Singh S. B., Mohanty O. M. Microstructural Characterization of TRIP-aided Steels [J]. Materials Science and Engineering A, 2008, 486: 32-37.

[13]

Jimenez-Melero E., Van Dijk N. H., Zhao L., . Characterization of Individual Retained Austenite Grains and Their Stability in Low-alloyed TRIP Steels[J]. Acta Materialia, 2007, 55: 6713-6723.

[14]

Sugimoto K., Usui N., Kobayashi M., . Effects of Volume Fraction and Stability of Retained Austenite on Ductility of TRIP-Aided Dual-Phase Steels[J]. ISIJ Inter., 1992, 32(12): 1 311-1 318.

[15]

Tomota Y., Tokuda H., Wakita M., . Tensile Behavior of TRIP-aided Multi-phase Steels Studied by in-situ Neutron Diffraction [J]. Acta Materialia, 2004, 52: 5 737-5 745.

[16]

Traint S, Pichler A, Hauzenherger K, et al. Influence of Silicon, Aluminum, Phosphorus and Copper on the Phase Transformation of Low-alloyed TRIP-steel[C]. In: De Cooman B C (Ed.), Proceedings of International Conference on TRIP-aided High Strength Ferrous Alloys, Ghent, Belgium, Wissenschafts-Verlag, Mainz, GmbH Aachen, June, 2002:121–127

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