Cold Rolling Effect on Microstructure and Mechanical Properties of Low Carbon Al-Killed Steels

Article Preview

Abstract:

It have been studied the cold rolling effects on the microstructure of samples prepared from Al-killed low carbon steel sheets with high coiling temperatures. The microstructure of the hot rolled steels sheet is formed from ferrite and large carbides when the coiling temperature is high. The cold rolling affects the steel mechanical and electrochemical properties due to microstructural changes. We have studied the microstructure by optical microscope and scanning electron microscope. Low angles grain boundaries and the texture of samples were studied by EBSD method.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

315-320

Citation:

Online since:

February 2015

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2015 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Hosford W. F. and Backholen W.A. Fundamentals of Deformation Processing, Syracuse Press, New York, 1964, p.259.

Google Scholar

[2] Lankford W. T., Snyder S. C. and Bauscher J. A. Trans. AS1/I, Vol. 42, (1950) p.1197—1232.

Google Scholar

[3] Yoshicla K. at. (1974): Deep Drawing Research Group, Proc. 8th Biennial IDDIG Congr. Gothenburg, 1974, p.258—268.

Google Scholar

[4] Holie S. Mater. Sci . Technol., Vol 16, (2000). pp.1079-1093.

Google Scholar

[5] Klein A. J. and Hitchler, E. W. Met. Eng. Q., Vol. 13. (1973)., p.25—27.

Google Scholar

[6] Whiteley R. L. and Wise D. E Flat rolled products III, Interscience, New York, 1962., pp.47-63.

Google Scholar

[7] Kestens L., Jonas J. J., Van Houtte P. and Aernoudt E. (1996). Textures and Microstructures, Vol. 26-27, pp.321-335.

DOI: 10.1155/tsm.26-27.321

Google Scholar

[8] D. Daniel and J. J. Jonas: Metall. Trans. A., 1990, 21, 331-342.

Google Scholar

[9] Held J. F. Mechanical Working and Steel Processing IV, ed. D. A. Edgecombe, American Institute of Mining, Metallurgical and Petroleum Engineers, New York, , 1965, p.3.

Google Scholar

[10] Perera M., Saimoto S. and Boyd D. Interstitial Free Steel Sheet: Processing, Fabrication and Properties, eds. L. E. Collins and D.L. Baragar; Ottawa, CIM/ICM, 1991, pp.55-64.

Google Scholar

[11] Wilshynsky-Dresler D. O., Matlock D. K. and Krauss G. (1995): ISS Mech. Work. Steel Process. Conf., 1995, 33, p.927 – 940.

Google Scholar

[12] Kumkum Banerjee Physical Metallurgy and Drawability of Extra Deep Drawing and Interstitial Free Steels, Recristalization book edited by Krzysztof Sztwiertnia, ISBN 978-953-51-0122-2, 2012 under DOI: 10. 5772/35073 p.168, 141-142, 175.

DOI: 10.5772/35073

Google Scholar

[13] Tsunoyama K. Phys. Stat. Sol. (A), Vol. 167, No. 427, (1998), pp.427-433.

Google Scholar

[14] Information on http: /www. arcelormittal. com/fce/repository/Brochures/Enamelledsteel_brochure_FR. pdf.

Google Scholar

[15] E. R. Fábián: Materials Science Forum, 659:. (2010), pp.7-12.

Google Scholar

[16] E. R. Fábián, L. Dévényi, Materials Science Forum Vols. 537-538 (2007) pp.33-40.

Google Scholar

[17] E. R. Fábián, B. Verő, and L. Dévényi: Materials Science Forum 473-474 (2005) pp.201-206, ].

DOI: 10.4028/www.scientific.net/msf.473-474.201

Google Scholar

[18] D. E. Jiang and Emily A. Carter: Physical Review B, 70, 2004, 064102-5.

Google Scholar

[19] J.I. Verdeja, J. Asensio, and J.A. Pero-Sanz: Mater. Charact. 2003, vol. 50, p.81–86.

Google Scholar

[20] G Beranger, G Henry and G Sanz. 1996. The book of Steel, Springer-Verlag, 2-85206-981-18 USA, (1994), pp.935-951.

Google Scholar

[21] Mendoza R. , Alanis M. , Aramburo G. , Serrania F. and Juárez-Islas J. A. Mater. Sci. Eng. A, Vol. 368 (2004) p.249–254.

Google Scholar

[22] H. Kang, C. I. Garcia, K. Chin and A. J DeArdo. ISIJ Int., Vol. 47 No. 3, . (2007)p.486–492.

Google Scholar

[23] E.R. Fábián., P.J. Szabó: Materials Science Forum, Vol. 659: (2010), pp.301-306.

Google Scholar