EFFECT OF ALLOYING ELEMENTS ON MECHANICAL-PROPERTIES OF TITANIUM-ALLOYS FOR MEDICAL IMPLANTS

被引:86
作者
OKAZAKI, Y [1 ]
ITO, Y [1 ]
ITO, A [1 ]
TATEISHI, T [1 ]
机构
[1] KOBE STEEL LTD,TECH DEV GRP,KOBE 651,JAPAN
来源
MATERIALS TRANSACTIONS JIM | 1993年 / 34卷 / 12期
关键词
TITANIUM ALLOY; MEDICAL IMPLANT; MICROSTRUCTURE; ROOM-TEMPERATURE TENSILE STRENGTH; ELONGATION; EFFECT OF ALLOYING ELEMENT;
D O I
10.2320/matertrans1989.34.1217
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Titanium alloys for medical implants were cast using 5 similar to 20 mass%Zr, 10 similar to 20%Sn, 4 similar to 8%Nb, 2 similar to 4%Ta and 0 similar to 0.2%Pd as alloying elements instead of using harmful Al and V. The alloys were forged in their alpha and alpha+beta regions and then annealed at 973 K for 7.2 ks. The annealed microstructures of the alloys consisted mainly of the acicular structure containing 10 to 30 volume% elongated P grains. While the room temperature tensile strength of the Ti-(5 similar to 15%)Zr-4%Nb-2%Ta-0.2%Pd alloys increased slightly with increasing Zr content, the strength of the Ti-(10 similar to 20%)Sn-4%Nb-2%Ta-0,2%Pd alloys increased markedly with increasing Sn content. The Ti-15%Sn-4%Nb-2%Ta-0.2%Pd alloy surpassed the Ti-6%Al-4%V extra low interstitial (ELI) alloy for medical implants (ASTM F136-84 Standard) in tensile strength as well as in elongation and reduction of area. The tensile strength was further improved by the additions of nitrogen and oxygen.
引用
收藏
页码:1217 / 1222
页数:6
相关论文
共 50 条
[31]   Effect of alloying elements on microstructure and properties of multiprincipal elements high-entropy alloys [J].
Li, C. ;
Li, J. C. ;
Zhao, M. ;
Jiang, Q. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2009, 475 (1-2) :752-757
[32]   Effect of alloying elements on thermoelastic properties of Pt-based alloys [J].
Yu, Wei ;
Chong, Xiao-yu ;
Gan, Meng-di ;
Wei, Yan ;
Zhang, Ai-min ;
Hu, Chang-yi ;
Feng, Jing .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2023, 33 (06) :1851-1861
[33]   The effect of interfaces on mechanical and superplastic properties of titanium alloys [J].
Naydenkin, E. V. ;
Ratochka, I. V. ;
Mishin, I. P. ;
Lykova, O. N. ;
Varlamova, N. V. .
JOURNAL OF MATERIALS SCIENCE, 2017, 52 (08) :4164-4171
[34]   Influence of Alloying Elements Partitioning Behaviors on the Microstructure and Mechanical Properties in α plus β Titanium Alloy [J].
Huang Sensen ;
Ma Yingjie ;
Zhang Shilin ;
Qi Min ;
Lei Jiafeng ;
Zong Yaping ;
Yang Rui .
ACTA METALLURGICA SINICA, 2019, 55 (06) :741-750
[35]   The effect of interfaces on mechanical and superplastic properties of titanium alloys [J].
E. V. Naydenkin ;
I. V. Ratochka ;
I. P. Mishin ;
O. N. Lykova ;
N. V. Varlamova .
Journal of Materials Science, 2017, 52 :4164-4171
[36]   Microstructures of titanium alloys for medical implants after nitrogen ion implantation [J].
Fukumoto, S ;
Nakamura, K ;
Tsubakino, H ;
Terasawa, M ;
Mitamura, T ;
Okazaki, Y .
PRICM 4: FORTH PACIFIC RIM INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS AND PROCESSING, VOLS I AND II, 2001, :241-244
[37]   The Mechanical Properties and Corrosion Resistance of Magnesium Alloys with Different Alloying Elements for Bone Repair [J].
Lin, Guangyi ;
Chen, Minfang ;
Zhao, Yun ;
Sasikumar, Yesudass ;
Tie, Di .
CRYSTALS, 2018, 8 (07)
[38]   Effects of Mo and Pd on corrosion resistance of V-free titanium alloys for medical implants [J].
Okazaki, Y ;
Kyo, K ;
Ito, Y ;
Tateishi, T .
MATERIALS TRANSACTIONS JIM, 1997, 38 (04) :344-352
[39]   Mechanical Properties of Centrifugal Casting Titanium Alloys [J].
Sui Yanwei ;
Li Bangsheng ;
Liu Aihui ;
Guo Jingjie ;
Fu Hengzhi .
RARE METAL MATERIALS AND ENGINEERING, 2009, 38 (02) :251-254
[40]   Production of titanium alloys for medical implants by powder metallurgy [J].
Henriques, VAR ;
da Silva, CRM .
ADVANCED POWDER TECHNOLOGY II, 2001, 189-1 :443-448