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Erschienen in: Advances in Manufacturing 4/2016

23.11.2016

Application of thermodynamics in designing of advanced automotive steels

verfasst von: Lin Li, Hu Jiang

Erschienen in: Advances in Manufacturing | Ausgabe 4/2016

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Abstract

Advanced automotive steels were designed with alloy concept and thermodynamics. Several phases were taken for the designing of transformation induced plasticity(TRIP) steels in accordance with the practical metallurgy process. Al was firstly chosen to substitute Si for improving galvanizing property, afterwards P was proved to be another alternative of Si by thermodynamic calculation and kinetic estimation. Thermodynamic investigation in the third phase revealed the effective function of Al to increase carbon solubility in austenite as well as TRIP effect of steel. Stack fault energy was calculated, in combination with heat treatment and microstructure measurement, which led to a successful composition designing of twin induced plasticity (TWIP) steel.

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Literatur
1.
Zurück zum Zitat Matsumumura O, Sakuma Y, Takechi A (1987) Enhancement of elongation by retained austenite in intercritical annealed 0.4 C-1.5 Si-0.8 Mn steel. Trans. ISIJ 27:570CrossRef Matsumumura O, Sakuma Y, Takechi A (1987) Enhancement of elongation by retained austenite in intercritical annealed 0.4 C-1.5 Si-0.8 Mn steel. Trans. ISIJ 27:570CrossRef
2.
Zurück zum Zitat Li Lin, De Cooman BC, Wollants P et al (2004) Effect of aluminum and silicon on transformation induced plasticity of the TRIP steel. J Mater Sci Technol 20(2):135–138 Li Lin, De Cooman BC, Wollants P et al (2004) Effect of aluminum and silicon on transformation induced plasticity of the TRIP steel. J Mater Sci Technol 20(2):135–138
3.
Zurück zum Zitat Li L, Liu R, Shi W et al (2009) Development of a new type TRIP steel with good weldability and galvanizing property. In: Proceedings of international symposium automobile steel, Dalian, China, 2009, pp 332–336 Li L, Liu R, Shi W et al (2009) Development of a new type TRIP steel with good weldability and galvanizing property. In: Proceedings of international symposium automobile steel, Dalian, China, 2009, pp 332–336
4.
Zurück zum Zitat Guttmann M, Mclean D (1979) Grain boundary segregation in multicomponent systems. In: Johnson WC, Blakely JM (eds) Interfacial segregation. ASM, Metals Park, pp 261–348 Guttmann M, Mclean D (1979) Grain boundary segregation in multicomponent systems. In: Johnson WC, Blakely JM (eds) Interfacial segregation. ASM, Metals Park, pp 261–348
5.
Zurück zum Zitat Hillert M, Staffansson LI (1970) Regular-solution model for stoichiometric phases and ionic melts. Acta Chem Scand 24:3618CrossRef Hillert M, Staffansson LI (1970) Regular-solution model for stoichiometric phases and ionic melts. Acta Chem Scand 24:3618CrossRef
6.
Zurück zum Zitat Li L, Delaey L, Wollants P et al (1993) Thermodynamic analysis of the segregation of multicomponent steels. J Chim Phys 90:305–311 Li L, Delaey L, Wollants P et al (1993) Thermodynamic analysis of the segregation of multicomponent steels. J Chim Phys 90:305–311
7.
Zurück zum Zitat Li L, Delaey L, Wollants P et al (1996) Thermodynamic calculation of segregation in multicomponent steels. J Mater Sci Technol 12(3):238–240 Li L, Delaey L, Wollants P et al (1996) Thermodynamic calculation of segregation in multicomponent steels. J Mater Sci Technol 12(3):238–240
8.
Zurück zum Zitat Guttmann M, Dumoulin Ph, Wayman M (1982) The thermodynamics of interactive co-segregation of phosphorus and alloying elements in iron and temper-brittle steels. Metall Trans 13A:1693–1711CrossRef Guttmann M, Dumoulin Ph, Wayman M (1982) The thermodynamics of interactive co-segregation of phosphorus and alloying elements in iron and temper-brittle steels. Metall Trans 13A:1693–1711CrossRef
9.
Zurück zum Zitat Li L (2010) Microstructure and property control of advanced high strength automotive steel. In: Weng YQ, Dong H, Gan Y (eds) Metalluygical. Industry Press, Beijing, p 265 Li L (2010) Microstructure and property control of advanced high strength automotive steel. In: Weng YQ, Dong H, Gan Y (eds) Metalluygical. Industry Press, Beijing, p 265
10.
Zurück zum Zitat Mclean D (1957) Grain boundaries in metals. Clarendon Press, Oxford Mclean D (1957) Grain boundaries in metals. Clarendon Press, Oxford
11.
Zurück zum Zitat Sundman B, Jansson B, Andersson J (1985) The thermo-calc databank system. Calphad 9(2):153–190CrossRef Sundman B, Jansson B, Andersson J (1985) The thermo-calc databank system. Calphad 9(2):153–190CrossRef
12.
Zurück zum Zitat Li L, Huang SG, Wang L et al (2009) Thermodynamic re-assessment of the Fe-Al-C system based on the Fe-rich experimental data. Front Mater Sci China 3(1):33–37CrossRef Li L, Huang SG, Wang L et al (2009) Thermodynamic re-assessment of the Fe-Al-C system based on the Fe-rich experimental data. Front Mater Sci China 3(1):33–37CrossRef
13.
Zurück zum Zitat Redlich O, Kister AT (1948) Algebraic representation of thermodynamic properties and the classification of solutions. Ind Eng Chem 40:345–348CrossRef Redlich O, Kister AT (1948) Algebraic representation of thermodynamic properties and the classification of solutions. Ind Eng Chem 40:345–348CrossRef
14.
Zurück zum Zitat Sundman B, Ågren J (1981) A regular solution model for phases with several components and sublattices, suitable for computer applications. J Phys Chem Solids 42(4):297–301CrossRef Sundman B, Ågren J (1981) A regular solution model for phases with several components and sublattices, suitable for computer applications. J Phys Chem Solids 42(4):297–301CrossRef
15.
Zurück zum Zitat Kumar KCH, Raghavan V (1991) a thermodynamic analysis of the Al-C-Fe system. J Phase Equilib 12(3):275–286CrossRef Kumar KCH, Raghavan V (1991) a thermodynamic analysis of the Al-C-Fe system. J Phase Equilib 12(3):275–286CrossRef
16.
Zurück zum Zitat Gustafson P (1985) A thermodynamic evaluation of the Fe-C system. Scand J Metall 14:259 Gustafson P (1985) A thermodynamic evaluation of the Fe-C system. Scand J Metall 14:259
17.
Zurück zum Zitat Matlock DK, Speer JG (2009) Third generation of AHSS, microstructure design concepts. In: Haldar A, Suwas S, Bhattacharjee D (eds) Microstructure and texture in steels. Springer, New York, pp 185–205CrossRef Matlock DK, Speer JG (2009) Third generation of AHSS, microstructure design concepts. In: Haldar A, Suwas S, Bhattacharjee D (eds) Microstructure and texture in steels. Springer, New York, pp 185–205CrossRef
18.
Zurück zum Zitat Li L, Gao Y, Shi W et al (2011) Martensite transformation in high Mn steels. HMnS2011, Soeal, Korea, p A19 Li L, Gao Y, Shi W et al (2011) Martensite transformation in high Mn steels. HMnS2011, Soeal, Korea, p A19
19.
Zurück zum Zitat Olson GB, Cohen M (1976) A general mechanism of martensitic nucleation: Part II. FCC→ BCC and other martensitic transformations. Metall Trans A 7A:1905–1914 Olson GB, Cohen M (1976) A general mechanism of martensitic nucleation: Part II. FCC→ BCC and other martensitic transformations. Metall Trans A 7A:1905–1914
20.
Zurück zum Zitat Allain S, Chateau JP, Bouaziz O et al (2004) Correlations between the calculated stacking fault energy and the plasticity mechanisms in Fe-Mn-C alloys. Mater Sci Eng A 387–389:158–162CrossRef Allain S, Chateau JP, Bouaziz O et al (2004) Correlations between the calculated stacking fault energy and the plasticity mechanisms in Fe-Mn-C alloys. Mater Sci Eng A 387–389:158–162CrossRef
21.
Zurück zum Zitat Dumaya A, Chateau JP, Allain S et al (2008) Application of thermodynamics and kinetics in materials engineering. Mater Sci Eng A 483–484:184–187CrossRef Dumaya A, Chateau JP, Allain S et al (2008) Application of thermodynamics and kinetics in materials engineering. Mater Sci Eng A 483–484:184–187CrossRef
22.
Zurück zum Zitat Inden G (1977) Determination of chemical and magnetic interchange and magnetic interchange energies in BCC alloys. Metallkde Z 68:529–534 Inden G (1977) Determination of chemical and magnetic interchange and magnetic interchange energies in BCC alloys. Metallkde Z 68:529–534
23.
Zurück zum Zitat Hillert M, Jarl M (1978) A model for alloying in ferromagnetic metals. Calphad 2:227–238CrossRef Hillert M, Jarl M (1978) A model for alloying in ferromagnetic metals. Calphad 2:227–238CrossRef
24.
Metadaten
Titel
Application of thermodynamics in designing of advanced automotive steels
verfasst von
Lin Li
Hu Jiang
Publikationsdatum
23.11.2016
Verlag
Shanghai University
Erschienen in
Advances in Manufacturing / Ausgabe 4/2016
Print ISSN: 2095-3127
Elektronische ISSN: 2195-3597
DOI
https://doi.org/10.1007/s40436-016-0156-3

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