钛合金具有较低的弹性模量、优异的耐腐蚀性能和生物相容性,是理想的生物医用材料.综述了医用钛合金的发展过程及新型医用β钛合金的研究现状,以及开发的新合金系列.目前开发的医用钛合金中,Ti-35Nb-7Zr-5Ta和Ti-29Nb-13Ta-7.1Zr合金的弹性模量为55 GPa,与致密骨的弹性模量很接近,与人体骨有较好的力学相容性.
参考文献
[1] | Wang G S;Xu G D.[A].北京:万国学术出版社,1999:1093. |
[2] | 周宇,杨贤金,崔振铎.新型医用β-钛合金的研究现状及发展趋势[J].金属热处理,2005(01):47-50. |
[3] | Long M;Rack HJ .Titanium alloys in total joint replacement--a materials science perspective.[J].Biomaterials,1998(18):1621-1639. |
[4] | 莫畏.钛[M].北京:冶金工业出版社,2008:6-9. |
[5] | Borong K H;Kraner K H.Titanium Science and Technology[M].,1984:1381-1383. |
[6] | 汶建宏,杨冠军,葛鹏,毛小南,赵映辉.β钛合金的研究进展[J].钛工业进展,2008(01):33-39. |
[7] | Gotoh E .Comparison of metal release from various metallic biomaterials in vitro.[J].Biomaterials,2005(1):11-21. |
[8] | Ti based biomaterials, the ultimate choice for orthopaedic implants - A review[J].Progress in materials science,2009(3):397. |
[9] | Schiff L J;Graham J A .Cytotoxic effect of vanadium and oilfired fly ash on hamster tracheal epithelium[J].Environmental Research,1984,34:390-402. |
[10] | Steineman.S G .Titanium alloys as metallic biomaterials[J].Titanium Science and Technology,1984,2:1327-1334. |
[11] | Zwicker R;Buehler K.Mechanical properties and tissue reactions of a titanium alloy for implant materials,Titanium 1980,Science and Technology[A].Kyoto,Japan,The Met Soc AIME,1980:505-514. |
[12] | M.Semlitsch;F.Staub;H.Webber .Titanium-aluminium-ni-obium alloy,development for biocompatible,high-strength surgical implants[J].Biomedizinische Technik,1985,30:334-339. |
[13] | Borowy K-H;Kramer K-H.On the properties of a new titanium alloy (TiAl5Fe2.5) as implant material[A].Munich,Deutsche Gesellschaft Für Metallkunde EV,1995:1381-1386. |
[14] | Semlitsch MF;Weber H;Streicher RM;Sch?n R .Joint replacement components made of hot-forged and surface-treated Ti-6Al-7Nb alloy[J].Biomaterials,1992,13(11):781-788. |
[15] | Mishra AK;Davidson JA;Kovacs P;Poggie RA.Ti-13Nb-13Zr:a new low modulus,high strength,corrosion resistant near-beta alloy for orthopaedic implants[A].Warrendale:The Minerals,Metals & Materials Society,1993:61-72. |
[16] | Wang K;Gustavson L;Dumbleton J.The characterization of Ti-12Mo-6Zr-2Fe.A new biocompatible titanium alloy developed for surgical implants[A].Warrendale:The Minerals,Metals & Materials Society,1993:49-60. |
[17] | Ahmed T;Long M;Silvestri J;Ruiz C,Rack H J.A new low modulus,biocompatible titanium alloy[A].Birmingham,UK,1995 |
[18] | Mitsuo Niinomi .Recent research and development in titanium alloys for biomedical applications and healthcare goods[J].Science and technology of advanced materials,2003(5):445-454. |
[19] | Tatiani A.G. Donato;Luciano H. de Almeida;Renata A. Nogueira;Terlize C. Niemeyer;Carlos R. Grandini;Rubens Caram;Sandra G. Schneider;Sandra G. Schneider;Sandra G. Schneider Jr. .Cytotoxicity study of some Ti alloys used as biomaterial[J].Materials science & engineering. C, Biomimetic materials, sensors and systems,2009(4):1365-1369. |
[20] | Rack HJ;Qazi JI .Titanium alloys for biomedical applications[J].Materials science & engineering, C. Biomimetic and supramolecular systems,2006(8):1269-1277. |
[21] | Niinomi M. .Mechanical properties of biomedical titanium alloys[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,1998(1/2):231-236. |
[22] | Wang Kathy .The use of titanium for medical application in USA[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,1996,213:134-137. |
[23] | Sakaguchi N;Mituo N .Effect of alloying element on elastic modulus of TiNbTaZr system alloy for biomedical application[J].Materials Science Forum,2004,449(02):1269-1272. |
[24] | Cheal E J;Spector M;Hayes WC .Role of loads and prosthesis material properties on the mechanics of the proximal femur after total hip arthroplasty[J].Journal of Orthopaedic Research,1992,274:375-376. |
[25] | Teoh S.H.;, .Fatigue of biomaterials; a review[J].International Journal of Fatigue,2000(10):825-837. |
[26] | Sumner D R;Galante J O .Determinants of Stress Shielding:Design Versus Materials Versus Interface[J].Clin Orthop Rlat Res,1992,274:202-212. |
[27] | Rack HJ;Qazi JI .Titanium alloys for biomedical applications[J].Materials science & engineering, C. Biomimetic and supramolecular systems,2006(8):1269-1277. |
[28] | Okazaki Yoshimitau;Ito Yoshimasa .Corrosion resistance and corrosion fatigue strength of new titanium alloys for medical implants without V and Al[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,1996,213:138-147. |
[29] | Kuroda D;Niinomi M;Akahori T;Fukui H,Suzuki A,Hasegawa T.Structural biomaterials for the 21st century[A].,2001 |
[30] | Niinomi M;Kuroda D;Fukunaga K.[A].陕西西安,1998:262. |
上一张
下一张
上一张
下一张
计量
- 下载量()
- 访问量()
文章评分
- 您的评分:
-
10%
-
20%
-
30%
-
40%
-
50%