1 |
General approach to phase stability and elastic properties of β-type Ti-alloys using electronic parameters  |
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2 |
Corrosion of Ti-6Al-4V in simulated body fluids and bovine plasma  |
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3 |
Bannon BP, Mild EE (1983). Titanium alloys in surgical implants. ed. Luckey HA, Kubli F. American Society For Testing and Materials. ASTM STP; pp. 796-797. |
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Engineering Honor Roll  |
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Cabrera N, Mott NF (1984). Theory of the Oxidation of Metals. Progress Physics 12:163-184. |
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7 |
Correlations between aging heat treatment, ω phase precipitation and mechanical properties of a cast Ti–Nb alloy  |
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8 |
Electrochemical corrosion behavior of a Ti–35Nb alloy for medical prostheses  |
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9 |
High temperature deformation behavior of α+β-type biomedical titanium alloy Ti–6Al–7Nb  |
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Geetha M, Singh AK, Asokamani R, Gogia AK (2009). Ti based biomaterials, the ultimate choice for orthopaedic i mplants. A review Progress in Materials Science 54:397-425. |
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11 |
Effect of Zr and Sn on Young's modulus and superelasticity of Ti–Nb-based alloys  |
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12 |
Structure and properties of cast binary Ti–Mo alloys  |
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13 |
Clinical application of pure titanium crowns.  |
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14 |
Mechanical properties and microstructures of cast Ti–Cu alloys  |
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15 |
Grindability of Dental Cast Ti-Ag and Ti-Cu Alloys  |
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16 |
Kikuchi M, Takahashi M, Sato H, Okuno O, Nunn ME, Okabe T (2005). Grindability of cast Ti-Hf alloys. J Biomed Mater Res B: Appl Biomater 77:34-38. |
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Koike M, Itoh M, Okuno O, Kimura K, Takeda O, Okabe TH, Okabe T (2005). Evaluation of Ti-Cr-Cu Alloys for Dental Applications. J Mater Eng Perform 14:778-783. |
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Kobayashi E, Wang TJ, Doi H, Yoneyama T and Hamanaka H (1998). Mechanical properties and corrosion resistance of Ti–6Al–7Nb alloy dental castings. Mater Sci: Mater Med 9:567–574. |
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Titanium and titanium alloys as dental materials.  |
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20 |
Formation and growth of calcium phosphate on the surface of oxidized Ti–29Nb–13Ta–4.6Zr alloy  |
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21 |
Lin FS, Starke EA Jr, Gysler A (1984). The effect of microstructure on the d ef ormation modes and mechanical properties of Ti-6Al-2Nb-1Ta-0.8Mo: Part I. Widmanstätten structures. Metall Trans A 15:1229-1246. |
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Massalski TB, Murray JL, Bennett LH, Baker H(Ed.) (1986). American Society for Metals. Binary alloy phase diagrams. ASM Metals Park. |
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Matthew JD (2000). Titanium: A Technical Guide, 2nd Edition. Ohio: ASM Materials Park. |
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Niinomi M (2002). Recent research and development in titanium alloys for biomedical applications and healthcare goods. Metall Mater Trans 33A:477-486. |
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25 |
Mechanical properties of biomedical titanium alloys  |
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26 |
Electrochemical behavior of centrifuged cast and heat treated TiCu alloys for medical applications  |
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27 |
Mechanical properties of cast Ti–Hf alloys  |
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28 |
Effect of a niobium-containing titanium alloy on osteoblast behavior in culture.  |
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29 |
Spanberg L (1973). Kinetic and quantitative evaluation of material cytotoxicity in vitro. Oral Surg 35:389-401. |
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30 |
Sridhar G, Sarma DS (1988). Structure and properties of a near-α titanium alloy after β solution treatment and aging at 625℃. Metall Trans A 19A:3025-3033. |
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31 |
Characteristics of the surface oxides on turned and electrochemically oxidized pure titanium implants up to dielectric breakdown:  |
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32 |
Tag X, Ahmed T and Rack HJ (2000). Phase transformations in Ti–Nb–Ta and Ti–Nb–Ta–Zr alloys. J Mater Sci 35:1805–1811. |
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33 |
Production of new titanium alloy for orthopedic implants  |
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34 |
Mechanical Properties and Grindability of Experimental Ti-Au Alloys  |
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35 |
Mechanical Properties and Grindability of Dental Cast Ti-Nb Alloys  |
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36 |
Microstructure and dry wear properties of Ti-Nb alloys for dental prostheses  |
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