Microstructure characterization and biocompatibility behaviour of TiNbZr alloy fabricated by powder metallurgy

被引:14
作者
Kaya, Mehmet [1 ,2 ]
Yakuphanoglu, Fahrettin [3 ]
Elibol, Ebru [4 ]
Kom, Mustafa [5 ]
机构
[1] Bandirma Onyedi Eylul Univ, Maritime Fac, Dept Shipbldg & Ship Machinery Engn, TR-10200 Bandirma Balikesir, Turkey
[2] Tekirdag Namik Kemal Univ, Corlu Vacat Sch, TR-59850 Corlu Tekirdag, Turkey
[3] Firat Univ, Sci Fac, Phys Dept, TR-23100 Elazig, Turkey
[4] Adiyaman Univ, Fac Med, Dept Histol, TR-02100 Adiyaman, Turkey
[5] Firat Univ, Fac Vet Med, Dept Surg, TR-23100 Elazig, Turkey
关键词
biocompatibility; TiNbZr; powder metallurgy; microstructure; TI-NB-ZR; MECHANICAL-PROPERTIES; MARTENSITIC-TRANSFORMATION; PROCESSING PARAMETERS; PHASE-TRANSFORMATION; TITANIUM-ALLOYS; BONE INGROWTH; IMPLANTS; SURFACE; CORROSION;
D O I
10.1088/2053-1591/ab58a5
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The purpose of this study is to produce Ti-10Nb-10Zr orthopaedic implant material by adding non-toxic niobium (Nb) and zirconium (Zr) elemental powders into titanium (Ti) powder. In addition, to compare the microstructure, corrosion and biocompatibility properties of the orthopaedic implant produced with those of porous pure Ti produced similarly. Ti-at%10Nb-at%10Zr and pure Ti materials were produced with traditional sintering by using raw metal powders. The microstructures of the materials were investigated with SEM and XRD studies, corrosion properties using electrochemical corrosion test and biocompatibility behaviours in vivo using rats were examined. Commercially pure titanium (cpTi) has ? phase at room temperature and causes stress shielding, which results in bone loss when used as an orthopaedic implant. ? phase structure in the microstructure of the alloy is formed by the addition of Nb into Ti, and it is hoped that this structure will better adapt to the bone structure. Because the ? structure is more flexible than pure titanium with ? phase. In addition, the increase of the corrosion resistance of the alloy formed with addition of Nb and Zr indicates that the alloy will remain long lasting biocompatible within the body.
引用
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页数:12
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共 57 条
[1]   Zr-Ti-Nb porous alloys for biomedical application [J].
Aguilar Maya, A. E. ;
Grana, D. R. ;
Hazarabedian, A. ;
Kokubu, G. A. ;
Luppo, M. I. ;
Vigna, G. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2012, 32 (02) :321-329
[2]   Bulk and porous metastable beta Ti-Nb-Zr(Ta) alloys for biomedical applications [J].
Brailovski, V. ;
Prokoshkin, S. ;
Gauthier, M. ;
Inaekyan, K. ;
Dubinskiy, S. ;
Petrzhik, M. ;
Filonov, M. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2011, 31 (03) :643-657
[3]   Microstructural and mechanical properties, surface and electrochemical characterisation of a new Ti-Zr-Nb alloy for implant applications [J].
Calderon-Moreno, Jose Maria ;
Vasilescu, Cora ;
Drob, Silviu Iulian ;
Ivanescu, Steliana ;
Osiceanu, Petre ;
Drob, Paula ;
Popa, Monica ;
Preda, Silviu ;
Vasilescu, Ecaterina .
JOURNAL OF ALLOYS AND COMPOUNDS, 2014, 612 :398-410
[4]   Mesoporous surface topography promotes bone cell differentiation on low elastic modulus Ti-25Nb-25Zr alloys for bone implant applications [J].
Chang, Jean-Heng ;
Liu, Jeng-Fen ;
Sun, Ying-Sui ;
Wu, Chia-Ping ;
Huang, Her-Hsiung ;
Han, Yong .
JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 707 :220-226
[5]   Functionalization of an experimental Ti-Nb-Zr-Ta alloy with a biomimetic coating produced by plasma electrolytic oxidation [J].
Cordeiro, Jairo M. ;
Nagay, Bruna E. ;
Ribeiro, Ana Lucia R. ;
da Cruz, Nilson C. ;
Rangel, Elidiane C. ;
Fais, Laiza M. G. ;
Vaz, Luis G. ;
Barao, Valentim A. R. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 770 :1038-1048
[6]   Development of binary and ternary titanium alloys for dental implants [J].
Cordeiro, Jairo M. ;
Beline, Thamara ;
Ribeiroc, Ana Lucia R. ;
Rangel, Elidiane C. ;
da Cruz, Nilson C. ;
Landers, Richard ;
Faverani, Leonardo P. ;
Vaz, Luis Geraldo ;
Fais, Laiza M. G. ;
Vicente, Fabio B. ;
Grandini, Carlos R. ;
Mathew, Mathew T. ;
Sukotjo, Cortino ;
Barao, Valentim A. R. .
DENTAL MATERIALS, 2017, 33 (11) :1244-1257
[7]   Is there scientific evidence favoring the substitution of commercially pure titanium with titanium alloys for the manufacture of dental implants? [J].
Cordeiro, Jairo M. ;
Barao, Valentim A. R. .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2017, 71 :1201-1215
[8]   The effect of the solute on the structure, selected mechanical properties, and biocompatibility of Ti-Zr system alloys for dental applications [J].
Correa, D. R. N. ;
Vicente, F. B. ;
Donato, T. A. G. ;
Arana-Chavez, V. E. ;
Buzalaf, M. A. R. ;
Grandini, C. R. .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2014, 34 :354-359
[9]   Microstructure evolution, mechanical properties and enhanced bioactivity of Ti-Nb-Zr based biocomposite by bioactive calcium pyrophosphate [J].
He, Yuanhuai ;
Zhang, Yuqin ;
Meng, Zengdong ;
Jiang, Yehua ;
Zhou, Rong .
JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 720 :567-581
[10]   Mechanical and corrosion properties of Ti-35Nb-7Zr-xHA composites fabricated by spark plasma sintering [J].
He, Zheng-Yuan ;
Zhang, Lei ;
Shan, Wen-Rui ;
Zhang, Yu-Qin ;
Zhou, Rong ;
Jiang, Ye-Hua ;
Tan, Jun .
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2017, 27 (04) :848-856