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Erschienen in: Metallurgist 3-4/2016

20.07.2016

Effect of Bainite Crystallographic Texture on Failure of Pipe Steel Sheets Made by Controlled Thermomechanical Treatment

verfasst von: I. Yu. Pyshmintsev, A. O. Struin, A. M. Gervasyev, M. L. Lobanov, G. M. Rusakov, S. V. Danilov, A. B. Arabey

Erschienen in: Metallurgist | Ausgabe 3-4/2016

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Abstract

The method of orientation microscopy (EBSD) is used to study the texture of low-carbon, low-alloy pipe steel sheets with a bainitic structure made by controlled thermomechanical processing. The specimens analyzed are inclined or not inclined towards forming separations (secondary cracks) in a fracture during mechanical testing. Formation of separations during failure of steel with a bainitic structure is connected with the presence in the material of regions with uniform orientation (001)<110> extended in the cold rolling direction. Formation of the regions is a consequence of features of γ→α shear transformation that commences at special boundaries between deformed austenite grains.

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Literatur
1.
Zurück zum Zitat K. Khulka, P. Peters, and F. Heisterkamp, “Trends in development of steel for large diameter pipes,” Stal, No. 10, 62–67 (1997). K. Khulka, P. Peters, and F. Heisterkamp, “Trends in development of steel for large diameter pipes,” Stal, No. 10, 62–67 (1997).
2.
Zurück zum Zitat A. B. Arabaei, “Development of engineering requirements for main gas pipeline metal,” Izv. Vyssh. Uchebn. Zaved., Chern. Met.., No. 7, 3–10 (2010). A. B. Arabaei, “Development of engineering requirements for main gas pipeline metal,” Izv. Vyssh. Uchebn. Zaved., Chern. Met.., No. 7, 3–10 (2010).
3.
Zurück zum Zitat M. A. Smirnov, I. Yu. Pyshmintsev, and A. N. Boryakova, “Classification of low-carbon pipe steel microstructure,” Metallurg, No. 7, 41–51 (2010). M. A. Smirnov, I. Yu. Pyshmintsev, and A. N. Boryakova, “Classification of low-carbon pipe steel microstructure,” Metallurg, No. 7, 41–51 (2010).
4.
Zurück zum Zitat G. Mannucci and G. Demofonti, “Control of ductile fracture propagation in X80 gas linepipe,” Thesis Proc. Int. Pipeline Technology Conf., Beijing, China (2010). G. Mannucci and G. Demofonti, “Control of ductile fracture propagation in X80 gas linepipe,” Thesis Proc. Int. Pipeline Technology Conf., Beijing, China (2010).
5.
Zurück zum Zitat I. Yu. Pyshmintsev, A. M. Mal’tseva, A. M. Deras’ev, et al., “Structure and properties of low-carbon steels subjected to pneumatic tests,” Stal, No. 2, 75–81 (2011). I. Yu. Pyshmintsev, A. M. Mal’tseva, A. M. Deras’ev, et al., “Structure and properties of low-carbon steels subjected to pneumatic tests,” Stal, No. 2, 75–81 (2011).
6.
Zurück zum Zitat T. Hara, Y. Shinohara, H. Asahi, and Y. Terada, “Effects of microstructure and texture on DWTT properties for high strength line pipe steels,” Proc. 6th IPC2006, Calgary, Alberta, Canada (2006). T. Hara, Y. Shinohara, H. Asahi, and Y. Terada, “Effects of microstructure and texture on DWTT properties for high strength line pipe steels,” Proc. 6th IPC2006, Calgary, Alberta, Canada (2006).
7.
Zurück zum Zitat R. Ray and J. J. Jonas, “Transformation textures in steels,” Int. Materials Rev., 35, 1–36 (1990).CrossRef R. Ray and J. J. Jonas, “Transformation textures in steels,” Int. Materials Rev., 35, 1–36 (1990).CrossRef
8.
Zurück zum Zitat B. Hutchinson, L. Ryde, E. Lindh, and K. Tagashira, “Texture in hot rolled austenite and resulting transformation products,” Mater. Sci. Eng. A. Struct. Mater. Prop. Microstr. Proces., 257, No. 1, 9–17 (1998).CrossRef B. Hutchinson, L. Ryde, E. Lindh, and K. Tagashira, “Texture in hot rolled austenite and resulting transformation products,” Mater. Sci. Eng. A. Struct. Mater. Prop. Microstr. Proces., 257, No. 1, 9–17 (1998).CrossRef
9.
Zurück zum Zitat X. Yang, Y. Xu, X. Tan, and D. Wu, “Influences of crystallography and delamination on anisotropy of Charpy impact toughness in API X100 pipeline steel,” Mater. Sci. Eng. A., 607, No. 23, 53–62 (2014).CrossRef X. Yang, Y. Xu, X. Tan, and D. Wu, “Influences of crystallography and delamination on anisotropy of Charpy impact toughness in API X100 pipeline steel,” Mater. Sci. Eng. A., 607, No. 23, 53–62 (2014).CrossRef
10.
Zurück zum Zitat E. El-Danaf, M. Baig, A. Almajid, et al., “Mechanical, microstructure and texture characterization of API X65 steel,” Mater. Design., 47, 529–538 (2013).CrossRef E. El-Danaf, M. Baig, A. Almajid, et al., “Mechanical, microstructure and texture characterization of API X65 steel,” Mater. Design., 47, 529–538 (2013).CrossRef
11.
Zurück zum Zitat A. V. Andreeva, Base of Composite Physical Chemistry and Technology, IPRZhR, Moscow (2001). A. V. Andreeva, Base of Composite Physical Chemistry and Technology, IPRZhR, Moscow (2001).
12.
Zurück zum Zitat I. Pyshmintsev, A. Gervasyev, R. H. Petrov, et al., “Crystallographic texture as a factor enabling ductile fracture arrest in high strength pipeline steel,” Mater. Sci. Forum, 702–703, 770–773 (2012). I. Pyshmintsev, A. Gervasyev, R. H. Petrov, et al., “Crystallographic texture as a factor enabling ductile fracture arrest in high strength pipeline steel,” Mater. Sci. Forum, 702–703, 770–773 (2012).
13.
Zurück zum Zitat M. Hölscher, D. Raabe, and K. Lücke, “Relationship between rolling textures and shear textures in F.C.C. and B.C.C. metals,” Acta Metall. Mater., 42, No. 3, 879–886 (1994).CrossRef M. Hölscher, D. Raabe, and K. Lücke, “Relationship between rolling textures and shear textures in F.C.C. and B.C.C. metals,” Acta Metall. Mater., 42, No. 3, 879–886 (1994).CrossRef
14.
Zurück zum Zitat M. A. Strenel’, Yu. G. Andreev, and D. A. Kozlov, “Structure and strength of packet martensite,” MiTOM, No. 4, 10–15 (1999). M. A. Strenel’, Yu. G. Andreev, and D. A. Kozlov, “Structure and strength of packet martensite,” MiTOM, No. 4, 10–15 (1999).
15.
Zurück zum Zitat V. M. Schastlivtsev, “Features of structure and crystallography of structural steel lath martensite,” Metally, No. 5, 32–41 (2001). V. M. Schastlivtsev, “Features of structure and crystallography of structural steel lath martensite,” Metally, No. 5, 32–41 (2001).
16.
Zurück zum Zitat M. L. Lobanov, G. M. Rusakov, A. A. Redikul’tsev, et al., “Study of special misorientations in lath martensite of low-carbon steel by orientation microscopy,” FMM, 117, No. 3, 278–283 (2016). M. L. Lobanov, G. M. Rusakov, A. A. Redikul’tsev, et al., “Study of special misorientations in lath martensite of low-carbon steel by orientation microscopy,” FMM, 117, No. 3, 278–283 (2016).
17.
Zurück zum Zitat R. Rementeria, L. Morales-Rivas, M. Kuntz, et al., “On the role of microstructure in governing the fatigue behavior of nanostructured bainitic steels,” Mater. Sci. Eng. A., 630, 71–77 (2015).CrossRef R. Rementeria, L. Morales-Rivas, M. Kuntz, et al., “On the role of microstructure in governing the fatigue behavior of nanostructured bainitic steels,” Mater. Sci. Eng. A., 630, 71–77 (2015).CrossRef
18.
Zurück zum Zitat E. V. Pereloma, F. Al-Harbi, and A. A. Gazder, “The crystallography of carbide-free bainite in thermo-mechanically processed low Si transformation-induced plasticity steels,” J. Alloys and Comp., 615, 96–110 (2014).CrossRef E. V. Pereloma, F. Al-Harbi, and A. A. Gazder, “The crystallography of carbide-free bainite in thermo-mechanically processed low Si transformation-induced plasticity steels,” J. Alloys and Comp., 615, 96–110 (2014).CrossRef
19.
Zurück zum Zitat W. Gong, Y. Tomota, Y. Adachi, et al., “Effects of ausforming temperature on bainite transformation, microstructure and variant selection in nanobainite steel,” Acta Mater., 61, 4142–4154 (2013).CrossRef W. Gong, Y. Tomota, Y. Adachi, et al., “Effects of ausforming temperature on bainite transformation, microstructure and variant selection in nanobainite steel,” Acta Mater., 61, 4142–4154 (2013).CrossRef
20.
Zurück zum Zitat M. L. Lobanov, A. A. Redikul’tsev, G. M. Rusakov, and S. V. Danilov, “Correlation of orientations for deformation and recrystallization during hot rolling of electrical engineering anisotropic steel,” MiTOM, No. 8, 44–49 (2015). M. L. Lobanov, A. A. Redikul’tsev, G. M. Rusakov, and S. V. Danilov, “Correlation of orientations for deformation and recrystallization during hot rolling of electrical engineering anisotropic steel,” MiTOM, No. 8, 44–49 (2015).
Metadaten
Titel
Effect of Bainite Crystallographic Texture on Failure of Pipe Steel Sheets Made by Controlled Thermomechanical Treatment
verfasst von
I. Yu. Pyshmintsev
A. O. Struin
A. M. Gervasyev
M. L. Lobanov
G. M. Rusakov
S. V. Danilov
A. B. Arabey
Publikationsdatum
20.07.2016
Verlag
Springer US
Erschienen in
Metallurgist / Ausgabe 3-4/2016
Print ISSN: 0026-0894
Elektronische ISSN: 1573-8892
DOI
https://doi.org/10.1007/s11015-016-0306-7

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