Effect of Carbon Amount of Dual-Phase Steels on Deformation Behavior Using Acoustic Emission
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Effect of Carbon Amount of Dual-Phase Steels on Deformation Behavior Using Acoustic Emission

Authors: Ramin Khamedi, Isa Ahmadi

Abstract:

In this study acoustic emission (AE) signals obtained during deformation and fracture of two types of ferrite-martensite dual phase steels (DPS) specimens have been analyzed in frequency domain. For this reason two low carbon steels with various amounts of carbon were chosen, and intercritically heat treated. In the introduced method, identifying the mechanisms of failure in the various phases of DPS is done. For this aim, AE monitoring has been used during tensile test of several DPS with various volume fraction of the martensite (VM) and attempted to relate the AE signals and failure mechanisms in these steels. Different signals, which referred to 2-3 micro-mechanisms of failure due to amount of carbon and also VM have been seen. By Fast Fourier Transformation (FFT) of signals in distinct locations, an excellent relationship between peak frequencies in these areas and micro-mechanisms of failure were seen. The results were verified by microscopic observations (SEM).

Keywords: Dual Phase Steel, Deformation, Acoustic Emission.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1093502

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References:


[1] A. Fallahi, "Microstructure properties correlation of dual phase steels produced rolling process,” J. Mater. Sci. Tech. vol. 18, no. 5, pp. 451-454, 2002.
[2] W.C. Leslie, The Physical Metallurgy of Steels, McGraw-Hill, 1981, pp. 257.
[3] CU Grosse, M Ohtsu, Acoustic emission testing, New York: Springer, 2008, ch. 1.
[4] S.R. Mediratta, V. Ramaswamy, P.R. Rao, "Influence of ferrite-martensite microstructural morphology on the low cycle fatigue of a dual-phase steel, ” Int. J. Fatigue, vol. 7, no. 2, pp. 107-115, 1985.
[5] D. A. Korzekwa, R. D. Lawson, D. K. Matlock, G. Krauss, "A consideration of models describing the strength and ductility of dual-phase steels”, Scripta Metallurgica, vol. 14, pp. 1023-1028, 1980.
[6] G. R. Speich and R. L. Miller, "Mechanical properties of ferrite-martensite steels, structure and properties of dual-phase steels”, in TMS-AIME , R. A. Kot and J. W. Morris, Ed. New York, 1979, pp. 145-182.
[7] M. S. Rashid and E. R. Cperk, "Relationship between microstructure and formability in two high-strength, Low alloy steels”, Formability Topics – Metallic materials, ASTM STP 647, American Society for Testing and Materials, Philadelphia, Pa, pp. 174-190.
[8] N. K. Balliger and T. Gladman, "Work hardening of dual-phase steels”, Metal. Science, vol. 15, no. 3, pp. 95-108, 1981.
[9] A. Fallahi, "The Effect of Heat Treatment on Fatigue and Tensile Properties of Dual - Phase Steel”, Amirkabir J. of Sic &‌ Tech, vol. 2. no. 6, pp. 141-148, 1987.
[10] Sh. Sun, M. Pugh, "Properties of thermomechanically processed dual-phase steels containing fibrous martensite”, Mater. Sci. and Eng. A, vol. 335, pp. 298–308, 2002.
[11] D. L. Steinbrunner and G. Krauss, "Void formation during tensile testing of dual phase steels”, Metallurgical Transaction, vol. 9(A), pp. 579-589, 1988.
[12] O. R. Jardim, W. P. Longo and K. K. Chawla, "Fracture behaviour of a tempered dual phase steel”, Metallography, vol. 17, pp. 123-130, 1984.
[13] S. R. Mediratta, V. Ramaswamy and P. Rama Rao, "Influence of ferrite-martensite microstructural morphology on the low cycle fatigue of a dual-phase steel”, Int. J. Fatigue, vol. 7, no. 2, pp. 107-115, 1985.
[14] J. Kang, Y. Ososkov, J. D. Embury and D. S. Wilkinson, "Digital image correlation studies for microscopic strain distribution and damage in dual phase”, Scripta Materialia, vol. 56, pp. 999–1002, 2007
[15] R. Khamedi, A. Fallahi, A. Refahi Oskouei, "Effect of martensite phase volume fraction on acoustic emission signals using wavelet packet analysis during tensile loading of dual phase steels” Mater Design, vol. 31, no.6, pp. 2752-2759, 2010.
[16] R. Khamedi, A. Fallahi, H. Zoghi, "The influence of morphology and volume fraction of martensite on AE signals during tensile loading of dual-phase steels” Int J Recent Trend Eng, vol. 1, no. 5, pp. 30–34, 2009.
[17] R. Khamedi, A. Fallahi, A. Refahi Oskouei, M. Ahmadi, "The effect of martensite phase volume fraction of dual-phase steels on acoustic emission signals under tensile loading”. J Pure Appl Ultrasonics, vol. 31, no.4, pp.133-137, 2009.
[18] A. Fallahi, R. Khamedi, "An investigation to effective parameters on the damage of dual phase steels by Acoustic Emission Using Energy Ratio,” Int. J. Mech. Mater. Eng., vol.1, no.1, pp. 14-19, 2010.
[19] B. Raj, B. Jha, P. Rodriguez, "Frequency spectrum analysys of acoustic emission signals obtained during tensile deformation and fracture of an AISI 316 type stainless steel,” Acta Metal. vol.37, no.8, pp. 2211-2215, 1989.
[20] C.S. Lee, J.H. Huh, D.M. Li, D.H. Shin, "Acoustic Emission Behavior during Tensile Tests of Low Carbon Steel Welds,” ISIJ Int. vol. 39, no. 4, pp. 365-370, 1999.
[21] C.R. Heiple, S.H. Carpenter, "Acoustic emission produced by deformation of metals and alloys – a review: part I,” J. Acous. Emission, vol. 6, pp. 177–207, 1987.
[22] Q.Y. Long, Y. Huazi, "Acoustic emission during deformation of dual-phase steels”, Metal. Mater. Trans. A, vol. 21, no. 1, pp. 373-379, 1990.