Hostname: page-component-78c5997874-m6dg7 Total loading time: 0 Render date: 2024-11-02T23:01:36.552Z Has data issue: false hasContentIssue false

Plastic Deformation Behavior of Ti5Si3 Single Crystals

Published online by Cambridge University Press:  21 September 2018

Kyosuke Kishida
Affiliation:
Department of Materials Science and Engineering, Kyoto University Sakyo-ku, Kyoto 606-8501, JAPAN
Masakazu Fujiwara
Affiliation:
Department of Materials Science and Engineering, Kyoto University Sakyo-ku, Kyoto 606-8501, JAPAN
Norihiko L. Okamoto
Affiliation:
Department of Materials Science and Engineering, Kyoto University Sakyo-ku, Kyoto 606-8501, JAPAN
Katsushi Tanaka
Affiliation:
Department of Materials Science and Engineering, Kyoto University Sakyo-ku, Kyoto 606-8501, JAPAN
Haruyuki Inui
Affiliation:
Department of Materials Science and Engineering, Kyoto University Sakyo-ku, Kyoto 606-8501, JAPAN
Get access

Abstract

Deformation behavior of binary stoichiometric Ti5Si3 single crystals was examined as a function of the loading axis orientation and temperature. Two different types of deformation modes, namely {1100}[0001] prism slip, {2112}1/3<2113> pyramidal slip were newly identified to be activated above 1300 °C depending on the loading axis orientation. Critical resolved shear stresses (CRSS) for the {1100}[0001] prism slip and {2112}1/3<2113> pyramidal slip were estimated to be about 130 MPa and 330 MPa at 1400 °C, respectively. The values of the CRSS for these two slip systems decrease monotonously with increasing the temperature.

Type
Articles
Copyright
Copyright © Materials Research Society 2009

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1. Frommeyer, G., Rosenkranz, R. and Lüdecke, C., Z. Metallk., 81, 307 (1990).Google Scholar
2. Umakoshi, Y. and Nakashima, T., Scripta Metall. Mater, 30, 1431 (1994).Google Scholar
3. Zhang, L. and Wu, J., Acta Mater., 46, 3535 (1998).Google Scholar
4. Wu, J.S., P.A. Beaven and Wagner, R., Scripta Metall. Mater, 24, 207 (1990).Google Scholar
5. Vojtech, D., Novak, M., Novak, P., Lejcek, P. and Kopecek, J., Mater. Sci. Engng., A489, 1 (2008).Google Scholar
6. Sun, F.S., Cao, C.X., Kim, S.E., Lee, Y.T. and Yan, M.G., Metall. Mater. Trans. 32A, 1233 (2001).Google Scholar
7. F.S. Sun and Froes, F.H., Mater. Sci. Engng., A345, 262 (2003).Google Scholar
8. Suehiro, Y. and Ameyama, K., J. Mater. Proc. Tech., 111, 118 (2001).Google Scholar
9. Inui, H., Moriwaki, M., Ito, K. and Yamaguchi, M., Philos. Mag. A, 77, 375 (1998).Google Scholar
10. Inui, H., Moriwaki, M., Okamoto, N. and Yamaguchi, M., Acta Mater., 51, 1409 (2003).Google Scholar
11. Alexander, H. and Haasen, P., Solid State Phys., 22, 28 (1968).Google Scholar