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2018 | OriginalPaper | Chapter

Microstructure, Mechanical Properties and Deformation Behavior of Mg–Gd–Zn Alloy

Authors : K. Li, V. S. Y. Injeti, P. Trivedi, R. D. K. Misra

Published in: Magnesium Technology 2018

Publisher: Springer International Publishing

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Abstract

We describe here the microstructure, mechanical properties and deformation behavior of an ultrafine-grained (UFG) Gd and Zn-containing magnesium alloy that was characterized by high strength-high ductility combination. The deformation behavior was studied by nanoindentation and post-mortem electron microscopy analysis of the deformed region. The behavior is compared with low strength-low ductility coarse-grained (CG) counterpart. Extensive dislocation slip was an active deformation mechanism in the UFG alloy, while in contrast, mechanical twinning occurred in the CG alloy. We attribute these observed differences in the deformation mechanism to the grain size effect.

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Literature
2.
go back to reference D. Qiu, M.X. Zhang, J.A. Taylor, P.M. Kelly, Acta Mater. 57 (2009) 3052–3060. D. Qiu, M.X. Zhang, J.A. Taylor, P.M. Kelly, Acta Mater. 57 (2009) 3052–3060.
3.
go back to reference M. Yamasakia, K. Hashimoto, K. Hagihara, Y. Kawamura, Acta Mater. 59 (2011) 3646–3656. M. Yamasakia, K. Hashimoto, K. Hagihara, Y. Kawamura, Acta Mater. 59 (2011) 3646–3656.
4.
go back to reference P. Trivedi, K.C. Nune, R.D.K. Misra, S. Goel, R. Jayganthan, A. Srinivasan, Mater. Sci. Eng. A, 668 (2016) 59–64. P. Trivedi, K.C. Nune, R.D.K. Misra, S. Goel, R. Jayganthan, A. Srinivasan, Mater. Sci. Eng. A, 668 (2016) 59–64.
5.
go back to reference R.D.K. Misra, V.S.A. Challa, P.K.C. Venkatsurya, Y.F. Shen, M.C. Somani, L.P. Karjalainen, Acta Mater. 84 (2015) 339–345. R.D.K. Misra, V.S.A. Challa, P.K.C. Venkatsurya, Y.F. Shen, M.C. Somani, L.P. Karjalainen, Acta Mater. 84 (2015) 339–345.
6.
go back to reference S. Sandlöbes, S. Zaefferer, I. Schestakow, S. Yi, R. Gonzalez-Martinez, Acta Mater. 59 (2011) 429–436. S. Sandlöbes, S. Zaefferer, I. Schestakow, S. Yi, R. Gonzalez-Martinez, Acta Mater. 59 (2011) 429–436.
7.
go back to reference S. Sandlöbes, M. Friák, J. Neugebauer, D. Raabe, Mater. Sci. Eng. A 576 (2013) 61–65. S. Sandlöbes, M. Friák, J. Neugebauer, D. Raabe, Mater. Sci. Eng. A 576 (2013) 61–65.
8.
go back to reference M.S. Tsai and C.P. Chang, Mater. Sci. Technol., 29 (2013) 759–763. M.S. Tsai and C.P. Chang, Mater. Sci. Technol., 29 (2013) 759–763.
9.
go back to reference M.A. Kumar, I.J. Beyerlein, R.J. McCabe and C.N. Tone, Nature Communications, 7:13826 (2016) 1–8. M.A. Kumar, I.J. Beyerlein, R.J. McCabe and C.N. Tone, Nature Communications, 7:13826 (2016) 1–8.
10.
go back to reference M.A. Kumar, I.J. Beyerlein, and C.N. Tone, J. Appl. Phys., 120 (2016) 155105–155111. M.A. Kumar, I.J. Beyerlein, and C.N. Tone, J. Appl. Phys., 120 (2016) 155105–155111.
11.
go back to reference S. Ando, M, Tanaka, H. Tonda, Mater. Sci. Forum 419–422 (2003) 87–93. S. Ando, M, Tanaka, H. Tonda, Mater. Sci. Forum 419–422 (2003) 87–93.
12.
go back to reference H. Yan, R. Chen, N. Zheng, J. Luo, S. Kamado, E. Han, J. Magnesium Alloys 1 (2013) 23–29. H. Yan, R. Chen, N. Zheng, J. Luo, S. Kamado, E. Han, J. Magnesium Alloys 1 (2013) 23–29.
13.
go back to reference W.Y. Wang, S.L. Shang, Y. Wang, Mater. Res. Lett. 2(2014) 29–36. W.Y. Wang, S.L. Shang, Y. Wang, Mater. Res. Lett. 2(2014) 29–36.
14.
go back to reference S. Sandlöbes, M. Friák, S. Zaefferer, Acta Mater. 60 (2012) 3011–3021. S. Sandlöbes, M. Friák, S. Zaefferer, Acta Mater. 60 (2012) 3011–3021.
15.
go back to reference J.H. Dun and C.S. Choi, Mater. Sci. Eng. A, 257 (1998) 353–356. J.H. Dun and C.S. Choi, Mater. Sci. Eng. A, 257 (1998) 353–356.
16.
go back to reference H. Pan, G. Qin, Y. Huang, Q. Yang, J. Alloy Compd. 688 (2016) 149–156. H. Pan, G. Qin, Y. Huang, Q. Yang, J. Alloy Compd. 688 (2016) 149–156.
17.
go back to reference H. Somekawa, C.A. Schuh, Scripta Mater. 68 (2013) 416–419. H. Somekawa, C.A. Schuh, Scripta Mater. 68 (2013) 416–419.
18.
go back to reference M.R. Barnett, Z. Keshavarz, A.G. Beer, Acta Mater. 52 (2004) 5093–5099. M.R. Barnett, Z. Keshavarz, A.G. Beer, Acta Mater. 52 (2004) 5093–5099.
19.
go back to reference H.J. Frost, M.F. Ashby: Deformation Mechanism Map, Pergamon press, Oxford, 1982. H.J. Frost, M.F. Ashby: Deformation Mechanism Map, Pergamon press, Oxford, 1982.
20.
go back to reference S.X. Song, J.A. Horton, N.J. Kim, T.G. Nieh, Scripta Mater. 56 (2007) 393–396. S.X. Song, J.A. Horton, N.J. Kim, T.G. Nieh, Scripta Mater. 56 (2007) 393–396.
21.
go back to reference H. Somekawa, C.A. Schuh, J. Mater. Research, 27 (2012) 1295–1302. H. Somekawa, C.A. Schuh, J. Mater. Research, 27 (2012) 1295–1302.
Metadata
Title
Microstructure, Mechanical Properties and Deformation Behavior of Mg–Gd–Zn Alloy
Authors
K. Li
V. S. Y. Injeti
P. Trivedi
R. D. K. Misra
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-319-72332-7_29

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