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To investigate the effect of Fe content on the correlation between the microstructure and mechanical properties in near-b titanium alloys, the Ti-5Al-5Mo-5V-1Cr-xFe alloy system has been characterized in this study. As the Fe content increased, the number of nucleation sites and the volume fraction of the α phase decreased. We observed a significant difference in the shape and size of the α phase in the matrix before and after Fe addition. In addition, these morphological deformations were accompanied by a change in the shape of the α phase, which became increasingly discontinuous, and changed into globular-type α phase in the matrix. These phenomena affected the microstructure and mechanical properties of Ti alloys. Specimen #2 exhibited a high ultimate tensile strength (1071 MPa), which decreased with further addition of Fe.
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Rocznik
Tom
Strony
1105--1108
Opis fizyczny
Bibliogr. 16 poz., rys., tab.
Twórcy
autor
- Department of Materials Science and Engineering, Pusan National University, 2, Busandaehak-Ro 63BEON-GIL, Geumjeong-Gu, Busan 46241, Korea (Republic of)
autor
- Material Analysis Laboratory, DAE-IL Corporation, Ulsan, Korea (Republic of)
autor
- Department of Materials Science and Engineering, Pusan National University, 2, Busandaehak-Ro 63BEON-GIL, Geumjeong-Gu, Busan 46241, Korea (Republic of)
autor
- Department of Materials Science and Engineering, Pusan National University, 2, Busandaehak-Ro 63BEON-GIL, Geumjeong-Gu, Busan 46241, Korea (Republic of)
- Social Enterprise, Pusan National University, Busan, Korea (Republic of)
Bibliografia
- [1] J.N. Hwang, M.J. LEE, H.J. Kim, I.H. Oh, K.A. Lee, Journal of Korean Powder Metallurgy Institute 19, 5, 348 (2012).
- [2] Y.M. Kim, Y.B. Song, S.H. Lee, Y.S. Kwon, Journal of Korean Powder Metallurgy Institute 21, 4, 277 (2014).
- [3] C. Leyens, M. Peters, Titanium and titanium allloys, Wiley Online Library (2005).
- [4] J.C. Williams, E.A. Starke Kr, Acta Materialia 51, 5775 (2001).
- [5] F. Froes, D. Eylon, International Materials Reviews 35, 162 (1990).
- [6] R. Boyer, Materials Science and Engineering A 213, 103 (1996).
- [7] R. Boyer, R. Briggs, Journal of Materials Engineering and Performance 14, 681 (2005).
- [8] M. Jackson, N. Jones, D. Dye, R. Dashwood, Materials Science and Engineering A 501, 248 (2009).
- [9] P.J. Arrazola, A. Garay, L.M. Iriarte, M. Armendia, S. Marya, F. Le Maitre, Journal of Material processing technology 209, 2223 (2009).
- [10] F. Warchomicka, C. Poletti, M. Stockinger, Materials Science and Engineering A 528, 207 (2011).
- [11] N. Richards, J. Barnby, Materials Science and Engineering A 26, 221 (1976).
- [12] V.N. Moiseev, Metal Science and Heat Treatment 40, 11 (1998.
- [13] V.N. Moiseev, Metal Science and Heat Treatment 42, 81 (2000).
- [14] M. Ahmed, D.G. Savvakin, O.M. Ivasishin, E.V. Pereloma, Materials Science and Engineering A 576, 167 (2013).
- [15] J.K. Fan, H.C. Kou, M.J. Lai, B. Tang, H. Chang, J.S. Li, Mater. Sci. Eng. A 584, 121 (2013).
- [16] S. Shekhar, R. Sarkar, Materials & Design. 66, 596 (2015).
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-25f1c000-8947-4541-8459-1b79b75ae9ae