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Erschienen in: Metal Science and Heat Treatment 9-10/2018

20.01.2018

A Study of Redistribution of Silicon in Dual-Phase Silicon Steels

verfasst von: Ashkan Nouri, Shahram Kheirandish, Hassan Saghafian

Erschienen in: Metal Science and Heat Treatment | Ausgabe 9-10/2018

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Abstract

Dual-phase steels containing 0.34 – 2.26 wt.% Si are studied after quenching from the intercritical temperature range. The critical temperatures Ac1 and Ac3 of the steels are determined. The effect of silicon and of the time of holding at 740 – 810°C on the volume fraction of austenite and on the coefficient of silicon distribution between austenite and ferrite is considered.

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Literatur
1.
Zurück zum Zitat G. R. Speich, V. A. Demarest, and R. L. Miller, “Formation of austenite during intercritical annealing of dual-phase steels,” Metall. Trans. A, 12, 1419 (1981).CrossRef G. R. Speich, V. A. Demarest, and R. L. Miller, “Formation of austenite during intercritical annealing of dual-phase steels,” Metall. Trans. A, 12, 1419 (1981).CrossRef
2.
Zurück zum Zitat M. S. Rashid and B. V. N. Rao, “Tempering characteristics of a vanadium containing dual-phase steel,” Metall. Trans. A, 13, 1679 (1982).CrossRef M. S. Rashid and B. V. N. Rao, “Tempering characteristics of a vanadium containing dual-phase steel,” Metall. Trans. A, 13, 1679 (1982).CrossRef
3.
Zurück zum Zitat S. Kumar and S. K. Nath, “Development of dual-phase steels from plain carbon sheet steels,” Z. Metallkd., 89, 779 (1998). S. Kumar and S. K. Nath, “Development of dual-phase steels from plain carbon sheet steels,” Z. Metallkd., 89, 779 (1998).
4.
Zurück zum Zitat U. Liedl, S. Traint, and E. A.Werner, “An unexpected feature of the stress-strain diagram of dual-phase steel,” Comp. Mater. Sci., 25, 122 (2002).CrossRef U. Liedl, S. Traint, and E. A.Werner, “An unexpected feature of the stress-strain diagram of dual-phase steel,” Comp. Mater. Sci., 25, 122 (2002).CrossRef
5.
Zurück zum Zitat T. G. Thiessen, J. Sietsma, T. A. Palmer, et al., “Phase-field modeling and synchrotron validation of phase transformations in martensitic dual-phase steel,” Acta Mater., 55, 601 (2007).CrossRef T. G. Thiessen, J. Sietsma, T. A. Palmer, et al., “Phase-field modeling and synchrotron validation of phase transformations in martensitic dual-phase steel,” Acta Mater., 55, 601 (2007).CrossRef
6.
Zurück zum Zitat M. Asadi, B. C. De Comman, and H. Palkowski, “Influence of martensite volume fraction and cooling rate on the properties of thermomechanically processed dual phase steel,” Mater. Sci. Eng., A538, 42 (2012).CrossRef M. Asadi, B. C. De Comman, and H. Palkowski, “Influence of martensite volume fraction and cooling rate on the properties of thermomechanically processed dual phase steel,” Mater. Sci. Eng., A538, 42 (2012).CrossRef
7.
Zurück zum Zitat R. H. Hoel, “Metallography and partitioning of alloying elements in dual-phase steels,” Metallography, 17, 273 (1984).CrossRef R. H. Hoel, “Metallography and partitioning of alloying elements in dual-phase steels,” Metallography, 17, 273 (1984).CrossRef
8.
Zurück zum Zitat S. S. G. Bandkouki and E. Fereiduni, “Effect of prior austenite carbon partitioning on martensite hardening variation in a low alloy ferrite-martensite dual phase steel,” Mater. Sci. Eng., A619, 129 (2014).CrossRef S. S. G. Bandkouki and E. Fereiduni, “Effect of prior austenite carbon partitioning on martensite hardening variation in a low alloy ferrite-martensite dual phase steel,” Mater. Sci. Eng., A619, 129 (2014).CrossRef
9.
Zurück zum Zitat H. K. Khaira, A. K. Jena, and M. C. Chaturvedi, “Effects of heat treatment cycle on equilibrium between ferrite and austenite during intercritical annealing,” Mater. Sci. Eng., A161, 267 (1993).CrossRef H. K. Khaira, A. K. Jena, and M. C. Chaturvedi, “Effects of heat treatment cycle on equilibrium between ferrite and austenite during intercritical annealing,” Mater. Sci. Eng., A161, 267 (1993).CrossRef
10.
Zurück zum Zitat J. Lis, J. Morgiel, and A. Lis, “The effect of Mn partitioning in Fe – Mn – Si alloy investigated with STEM-EDS techniques,” Mater. Chem. Phys., 81, 466 (2003).CrossRef J. Lis, J. Morgiel, and A. Lis, “The effect of Mn partitioning in Fe – Mn – Si alloy investigated with STEM-EDS techniques,” Mater. Chem. Phys., 81, 466 (2003).CrossRef
11.
Zurück zum Zitat P. M. N. Ocancey and D. R. Pourier, “Equilibrium partition ratios of C, Mn and Si in high carbon steel,” Mater. Sci. Eng., A211, 10 (1996).CrossRef P. M. N. Ocancey and D. R. Pourier, “Equilibrium partition ratios of C, Mn and Si in high carbon steel,” Mater. Sci. Eng., A211, 10 (1996).CrossRef
12.
Zurück zum Zitat G. E. Totten, Steel Heat Treatment, Hand Book, Taylor and Francis Group, CRC Press (2007). G. E. Totten, Steel Heat Treatment, Hand Book, Taylor and Francis Group, CRC Press (2007).
13.
Zurück zum Zitat M. Erdogan, “Effect of austenite dispersion on phase transformation in dual-phase steels,” Scr. Mater., 48, 501 (2003).CrossRef M. Erdogan, “Effect of austenite dispersion on phase transformation in dual-phase steels,” Scr. Mater., 48, 501 (2003).CrossRef
14.
Zurück zum Zitat M. Chaturvedi and A. K. Jena, “Effect of intercritical annealing temperature on equilibrium between ferrite and austenite,” Mater. Sci. Eng., 94, L1 (1987).CrossRef M. Chaturvedi and A. K. Jena, “Effect of intercritical annealing temperature on equilibrium between ferrite and austenite,” Mater. Sci. Eng., 94, L1 (1987).CrossRef
15.
Zurück zum Zitat D. K. Mondal and R. K. Ray, “Effect of chemical composition and initial heat treatment on the structure and properties of a few dual-phase steels,” Steel Res., 60, 25 (1989).CrossRef D. K. Mondal and R. K. Ray, “Effect of chemical composition and initial heat treatment on the structure and properties of a few dual-phase steels,” Steel Res., 60, 25 (1989).CrossRef
16.
Zurück zum Zitat G. Thomas and J. Y. Koo, “Developments in strong,” in: R. A. Kot and J. W. Morris (eds.), Ductile Duplex Ferritic-Martensitic Steels. Structure and Properties of Dual Phase Steel, TMS-AIME, New York (1979), p. 183. G. Thomas and J. Y. Koo, “Developments in strong,” in: R. A. Kot and J. W. Morris (eds.), Ductile Duplex Ferritic-Martensitic Steels. Structure and Properties of Dual Phase Steel, TMS-AIME, New York (1979), p. 183.
17.
Zurück zum Zitat J. H. Park, Y. Tomota, and M. Y. Wey, “Suppression of grain growth in dual-phase steel,” Mater. Sci. Tech., 18, 1517 (2001).CrossRef J. H. Park, Y. Tomota, and M. Y. Wey, “Suppression of grain growth in dual-phase steel,” Mater. Sci. Tech., 18, 1517 (2001).CrossRef
18.
Zurück zum Zitat J. Y. Koo and G. Thomas, “Metallurgical factors controlling impact properties of two phase steels,” Scr. Metall., 13, 1141 (1979).CrossRef J. Y. Koo and G. Thomas, “Metallurgical factors controlling impact properties of two phase steels,” Scr. Metall., 13, 1141 (1979).CrossRef
19.
Zurück zum Zitat A. D. Romig and R. Salzbrener, “Elemental partitioning as a function of heat treatment in an Fe – Si – V – C dual phase steel,” Scr. Metall., 16, 33 (1982).CrossRef A. D. Romig and R. Salzbrener, “Elemental partitioning as a function of heat treatment in an Fe – Si – V – C dual phase steel,” Scr. Metall., 16, 33 (1982).CrossRef
20.
Zurück zum Zitat W. C. Leslie and G. C. Rauch, “Precipitation of carbides in low-carbon Fe – Al – C alloys,” Metall. Trans. A, 9, 343 (1978).CrossRef W. C. Leslie and G. C. Rauch, “Precipitation of carbides in low-carbon Fe – Al – C alloys,” Metall. Trans. A, 9, 343 (1978).CrossRef
21.
Zurück zum Zitat H. C. Chen, H. Era, and M. Shimizu, “Effect of phosphorus on the formation of retained austenite and mechanical properties in Si-containing low-carbon steel sheet,” Metall. Trans. A, 20, 347 (1989). H. C. Chen, H. Era, and M. Shimizu, “Effect of phosphorus on the formation of retained austenite and mechanical properties in Si-containing low-carbon steel sheet,” Metall. Trans. A, 20, 347 (1989).
22.
Zurück zum Zitat M. H. Saleh and R. Priestner, “Retained austenite in dual-phase silicon steels and its effect on mechanical properties,” J. Mater. Proc. Tech., 113, 587 (2001).CrossRef M. H. Saleh and R. Priestner, “Retained austenite in dual-phase silicon steels and its effect on mechanical properties,” J. Mater. Proc. Tech., 113, 587 (2001).CrossRef
23.
Zurück zum Zitat O. Matsumura, Y. Sakuma, and H. Takechi, “Retained austenite in 0.4 C – Si – 1.2 Mn steel sheet intercritically heated and austempered,” ISIJ Int., 32, 1014 (1992).CrossRef O. Matsumura, Y. Sakuma, and H. Takechi, “Retained austenite in 0.4 C – Si – 1.2 Mn steel sheet intercritically heated and austempered,” ISIJ Int., 32, 1014 (1992).CrossRef
24.
Zurück zum Zitat R. Priestner and M. Ajmal, “Effect of carbon content and microalloying on martensitic hardenability of austenite of dual-phase steels,” Mater. Sci. Tech., 3, 360 (1987).CrossRef R. Priestner and M. Ajmal, “Effect of carbon content and microalloying on martensitic hardenability of austenite of dual-phase steels,” Mater. Sci. Tech., 3, 360 (1987).CrossRef
25.
Zurück zum Zitat C. I. Garcia and A. J. DeArdo, “Formation of austenite in low alloy steels,” Metall. Trans. A, 12, 521 (1981).CrossRef C. I. Garcia and A. J. DeArdo, “Formation of austenite in low alloy steels,” Metall. Trans. A, 12, 521 (1981).CrossRef
26.
Zurück zum Zitat A. Murugaiyan, A. S. Podder, A. Pandit, et al., “Phase transformation in two C – Mn – Si – Cr dual phase steels,” ISIJ Int., 46, 1489 (2006).CrossRef A. Murugaiyan, A. S. Podder, A. Pandit, et al., “Phase transformation in two C – Mn – Si – Cr dual phase steels,” ISIJ Int., 46, 1489 (2006).CrossRef
27.
Zurück zum Zitat J. Y. Koo, M. Raghavan, and G. Thomas, “Compositional analysis of dual phase steels by transmission electron microscopy,” Metall. Trans. A, 11, 351 (1980).CrossRef J. Y. Koo, M. Raghavan, and G. Thomas, “Compositional analysis of dual phase steels by transmission electron microscopy,” Metall. Trans. A, 11, 351 (1980).CrossRef
28.
Zurück zum Zitat A. Nouri, H. Saghafian, and S. Kheirandish, “The effects of silicon content and intercritical annealing on the manganese partitioning in the dual-phase steels,” J. Iron Steel Res. Int., 17, 44 (2010).CrossRef A. Nouri, H. Saghafian, and S. Kheirandish, “The effects of silicon content and intercritical annealing on the manganese partitioning in the dual-phase steels,” J. Iron Steel Res. Int., 17, 44 (2010).CrossRef
29.
Zurück zum Zitat D. A. Porter and K. E. Easterling, Phase Transformations in Metals and Alloys, Van Nostrand Reinhold, UK (1992).CrossRef D. A. Porter and K. E. Easterling, Phase Transformations in Metals and Alloys, Van Nostrand Reinhold, UK (1992).CrossRef
30.
Zurück zum Zitat A. Garcia-Junceda, F. G. Caballero, C. Capdevila, and C. Garcia de Andres, “Determination of local carbon content in austenite during intercritical annealing of dual phase steels by peels analysis,” Scr. Mater., 57, 89 (2007).CrossRef A. Garcia-Junceda, F. G. Caballero, C. Capdevila, and C. Garcia de Andres, “Determination of local carbon content in austenite during intercritical annealing of dual phase steels by peels analysis,” Scr. Mater., 57, 89 (2007).CrossRef
31.
Zurück zum Zitat S. Sun and M. Pugh, “Manganese partitioning in dual-phase steel during annealing,” Mater. Sci. Eng., A276, 167 (2000).CrossRef S. Sun and M. Pugh, “Manganese partitioning in dual-phase steel during annealing,” Mater. Sci. Eng., A276, 167 (2000).CrossRef
32.
Zurück zum Zitat B. Ghosh and O. N. Mohanty, “Partitioning of micro-additions in dual phase steels and structure property correlation,” Trans. Indian Inst. Metall., 49, 143 (1996). B. Ghosh and O. N. Mohanty, “Partitioning of micro-additions in dual phase steels and structure property correlation,” Trans. Indian Inst. Metall., 49, 143 (1996).
33.
Zurück zum Zitat R. E. Reed-Hill and R. Abbaschian, Physical Metallurgy Principles, PWS Publ. Co, Boston (1994). R. E. Reed-Hill and R. Abbaschian, Physical Metallurgy Principles, PWS Publ. Co, Boston (1994).
34.
Zurück zum Zitat R. G. Davies, “On the ductility of dual-phase steels,” in: R. A. Kot and J.W. Morris (eds.), Formable HSLS and Dual-Phase Steels, TMS-AIME (1997), p. 671. R. G. Davies, “On the ductility of dual-phase steels,” in: R. A. Kot and J.W. Morris (eds.), Formable HSLS and Dual-Phase Steels, TMS-AIME (1997), p. 671.
35.
Zurück zum Zitat W. C. Leslie, The Physical Metallurgy of Steel, McGraw-Hill (1991). W. C. Leslie, The Physical Metallurgy of Steel, McGraw-Hill (1991).
36.
Metadaten
Titel
A Study of Redistribution of Silicon in Dual-Phase Silicon Steels
verfasst von
Ashkan Nouri
Shahram Kheirandish
Hassan Saghafian
Publikationsdatum
20.01.2018
Verlag
Springer US
Erschienen in
Metal Science and Heat Treatment / Ausgabe 9-10/2018
Print ISSN: 0026-0673
Elektronische ISSN: 1573-8973
DOI
https://doi.org/10.1007/s11041-018-0191-8

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