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医用植入物β型钛合金的力学相容性 被引量:8

Biomechanical compatibility on β-Ti alloys for surgical implants applications
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摘要 β型钛合金具有强度高、低模量、无细胞毒性而备受关注。从医用植入物β型钛合金与人体骨骼的力学相容性角度,系统地阐述了β型钛合金的力学性能、合金化、热机械加工处理、组织和性能的关系,并结合当前国内外的研究现状,总结了医用植入物β型钛合金的发展方向。 β -Ti alloys have received more and more attention due to high strength and low modulus without tissue toxicity.In the view of the biomechanical compatibility of β-Ti alloys of surgical implants applications with human body skeleton the article aims at introduce systematically the characteristics of mechanical properties, alloying, thermomechanical processing and the relationship between, microstructure and mechanical propertiy.Finally, the development trend of biomedical β-Ti alloys is reviewed based on current research status at home and abroad.
出处 《金属热处理》 CAS CSCD 北大核心 2010年第12期24-28,共5页 Heat Treatment of Metals
基金 国家科技型中小企业技术创新基金(08C26116111559)
关键词 Β型钛合金 医用植入物 力学相容性 β-Ti alloys biomedical implants biomechanical compatibility
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参考文献24

  • 1尹东芳,黄一飞.医用钛合金的生物相容性研究[J].医学研究杂志,2008,37(10):96-97. 被引量:14
  • 2李佐臣,周廉,李军,王立新,王克光,蔡玉荣.外科植入物用第三代新型医用钛合金研究[J].钛工业进展,2003,20(4):46-48. 被引量:13
  • 3Eisenbarth E, Velten D, Mtiller M, et al. Biocompatibility of β-stabilizing elements of titanium alloys [J]. Biomaterials ,2004,25 : 5705-5713.
  • 4Geetha M, Singh A K, Asokamani R, et al. Ti based biomaterials, the ultimate choice for orthopaedic implants-A review [ J ]. Progress in Materials Science ,2009,54 ( 3 ) : 397 425.
  • 5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,2005,30(1):47-50. 被引量:40
  • 6刘福,吴树建,王立强.新型医用钛合金的特点及发展现状[J].热加工工艺,2008,37(12):100-103. 被引量:26
  • 7Song Y, Xu D S, Yang R, et al. Theoretical study of the effects of alloying elements on the strength and modulus of β -type bio-titanium alloys [ J ]. Materials Science Engineering A, 1999, 260 ( 1/2 ) : 269 -274.
  • 8Sakaguchi N, Niinomi M ,Akahori T, et al. Relationships between tensile deformation behavior and microstructure in Ti-Nb-Ta-Zr system alloys [J]. Materials Science Engineering C,2005,25 ( 3 ) : 363-369.
  • 9Kuroda M,Niinomi M ,Morinaga M ,et al. Design and mechanical properties of new β type titanium alloys for implant materials [J]. Materials Science Engineering A, 1998,243 (1-2) : 244-249.
  • 10Nag S, Banerjee R,Fraser H. Microstructural evolution and strengthening mechanisms in Ti-Nb-Zr-Ta, Ti-Mo-Zr-Fe and Ti-15Mo biocompatible alloys[J]. Materials Science and Engineering C ,2005,25(3) : 357-362.

二级参考文献40

  • 1郝玉琳,杨锐.纳米高强Ti-Nb-Zr-Sn合金[J].金属学报,2005,41(11):1183-1189. 被引量:21
  • 2鲍利索娃EA著 陈石卿译.钛合金相学[M].北京:国防工业出版社,1986..
  • 3粱英教.物理化学[M].北京:冶金工业出版社,1995.369.
  • 4[2]Sauli Kujala,Jorma Ryh.et al.Bone modeling controlled by a nickel titanium shape memory alloy intramedullary nail.Biomaterials,2002,2535-2543
  • 5[3]Van NoortR.Titanium:the implant of today.J Mater Sci,1987,22:3801-3811
  • 6[4]NinomiM,KurodaD,FukunagaK,et al.Corrosion wear fracture of new β type biomedieal titanium alloys.Mater Sci Eng,1999,A.263:193-199
  • 7[5]Fang Zhang,Xianghuai L iu,Yingjun M ao,et al.Artificial heart valves:improved hemocompatibility by titanium oxide coatings prepared by ion beam assisted depo sition.Surface and Coatings Techno logy,1998,103-104,146-150
  • 8[7]Puleo DA,Nanci A.Understanding and controlling the bone-implant interface.Biomaterials,1999,20:2311-2321
  • 9[8]Brash JL,Horbett TA.Proteins at interfaces:an overview,in:Horbett TA,Brash JL.(Eds),Proteins at interfaces Ⅱ:Fundamentals and Applications.ACS symposium Series,Vol,602,American Chemical Society,Washington,DC,1995:1-23
  • 10[9]Ratner BD.The blood compatibility catastrophe.J Biomed Mater Res,1993,27:283-287

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