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Development of high biocompatible titanium alloys for medical and welfare applications

Research Project

Project/Area Number 10555231
Research Category

Grant-in-Aid for Scientific Research (B).

Allocation TypeSingle-year Grants
Section展開研究
Research Field Structural/Functional materials
Research InstitutionToyohashi University of Technology

Principal Investigator

NIINOMI Mitsuo  Toyohashi University of Technology, 工学部, 教授 (50126942)

Co-Investigator(Kenkyū-buntansha) OKABE Michio  Toyohashi University of Technology, 技術開発研究所・特殊鋼研究部・高合金研究チーム, チーム長
KAWAKAMI Noriaki  Toyohashi University of Technology, 整形外科, 医長(研究職)
FUKUI Hisao  Toyohashi University of Technology, 歯学部, 助教授 (50090147)
岡部 道夫  大同特殊鋼, 技術研究所, チーム長
Project Period (FY) 1998 – 2000
Project Status Completed (Fiscal Year 2000)
Budget Amount *help
¥12,400,000 (Direct Cost: ¥12,400,000)
Fiscal Year 2000: ¥800,000 (Direct Cost: ¥800,000)
Fiscal Year 1999: ¥1,900,000 (Direct Cost: ¥1,900,000)
Fiscal Year 1998: ¥9,700,000 (Direct Cost: ¥9,700,000)
KeywordsBiomedical titanium alloy / Ti-29Nb-13Ta-4.6Zr alloy / Low Young's modulus / Biocompatibility / Cyto-toxicity / Mechanical properties / Fatigue characteristics / Friction wear characteristics / 高生体適合性 / 生体用材料 / β型チタン合金 / 医療・福祉 / 加工熱処理 / ミクロ組織 / 力学的生体融合性 / ベータ型チタン合金 / 合金設計 / 擬似生体内環境 / 腐食磨耗特性
Research Abstract

According to the data on cytotoxicity of pure metals and representative metallic biomaterials, non-toxic elements Nb, Ta, Zr, Mo and Sn were selected as alloying elements for designing new β type titanium alloys for biomedical applications with low Young's modulus, high strength and high workability. Ti-29Nb-13Ta, Ti-29Nb-13Ta-4.6Zr, Ti-16Nb-13Ta-4Mo, Ti-29Nb-13Ta-4Mo, Ti-29Nb-13Ta-2Sn, Ti-29Nb-13Ta-4.6Sn and Ti-29Nb-12Ta-6Sn were designed using d-electron alloy design method. Small ingots of designed alloys with a weight of 45g were fabricated followed by thermomechanical treatments in the laboratory, and plastic workability and basic mechanical properties of the alloys were then evaluated. Every alloy could be expected to full fill the target performance for biomedical applications, but Ti-29Nb- 13Ta-4.6Zr was found to easily satisfy the balance of strength, elongation and Young's modulus. Furthermore, judging from the data on the cytotoxicity of alloying elements, Ti-29Nb-13Ta-4.6Zr … More was expected to be excellent in biocompatibility. Then, the cytotoxicity of Ti-29Nb-13Ta-4.6Zr was evaluated using L 929 cells. Cytotoxicity of this alloy was similar to that of pure titanium.
Therefore, the further evaluation for practical use was determined to be carried out on Ti-29Nb-13Ta-4.6Zr. For the first step, practical level ingot was fabricated. The homogeneous practical level ingot was successfully fabricated by induction melting method or levitation melting method. Thermomechanical treatments were carried on the practical level ingot, and then mechanical properties of the thermomechanical treated ingot were evaluated. Solution treatment followed by aging, or direct aging after cold rolling gave Ti-29Nb-13Ta-4.6Zr qeuivalent balance of strength and ductility to that of Ti-6Al-4V ELI with keeping low modulus. Then, wear characteristics of Ti-29Nb-13Ta-4.6Zr were evaluated in simulated body environment. The wear resistance of Ti-29Nb-13Ta-4.6Zr was greater than that of Ti-6Al-4V ELI or SUS 316 L stainless steel when zirconia was used as a mating material, but opposite trend was observed when alumina was used as a mating material. Therefore, it was concluded that the surface treatment was necessary to improve the wear resistance of Ti-29Nb-13Ta-4.6Zr. Oxidation treatment was found to be effective to improve the wear resistance of Ti-29Nb-13Ta-4.6Zr. The fatigue strength of Ti-29Nb-13ta-4.6Zr was improved very much by conducting solutionizing and aging, and was equal to that of Ti-6Al-4V ELI.The fatigue ratio of Ti-29Nb-13Ta-4.6Zr was greater than that of conventional β type titanium alloy, and was equivalent to that of conventional α+ β type biomedical titanium alloys. Fretting fatigue strength of Ti-29Nb-13Ta-4.6Zr was significantly smaller than that of plain fatigue strength, but *quivalent to that of conventional biomedical titanium alloys. The decrease in fatigue strength due to fretting was relatively smaller in Ti-29Nb-13Ta-4.6Zr.
Phosphate calcium crystallized glass could be easily formed on Ti-29Nb-13Ta-4.6Zr in air comparing with the case of pure titanium or Ti-6Al-4V.Biocompatibility of Ti-29Nb-13Ta-4.6Zr was significantly improved by this surface coating of phosphate calcium, crystallized glass.
Ti-29Nb-13Ta-4.6Zr, Ti-6Al-4V and SUS 316L stainless steel were implanted in the muscle near the spine of the rabbit, and then the muscle tissue change was examined. Each muscle tissue was nearly the same. Therefore, the biocompatibility of Ti-29Nb-13Ta-4.6Zr was found to be excellent.
From the results mentioned above, Ti-29Nb-13Ta-4.6Zr is strongly expected to be put into practical use. In order to put Ti-29Nb-13Ta-4.6Zr into practical use, further development in mechanical properties by microstructural control, establishment of surface treatment to improve the wear resistance, further evaluation of fatigue strength and fretting fatigue strength in simulated body environment, verifying the effectiveness of low modulus using living body, and biocompatibility test using bigger animals are needed. Furthermore clinical tests of the alloy is needed. Ti-29Nb-132Ta-4.6Zr is also expected to be applied for dental products. Therefore, the practical use of Ti-29Nb-13Ta-4.6Zr is highly expected in dental field. Less

Report

(4 results)
  • 2000 Annual Research Report   Final Research Report Summary
  • 1999 Annual Research Report
  • 1998 Annual Research Report
  • Research Products

    (50 results)

All Other

All Publications (50 results)

  • [Publications] M.Niinomi: "Mechanical Properties of Biomedical Titanium Alloys"Materials Science and Engineering A. A243. 231-236 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] D.Kuroda: "Design and Mechanical Properties of New β Type Titanium Alloys for Implant Materials"Materials Science and Engineering. A243. 244-249 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] D.Kuroda: "Development of New β Type Titanium Alloys for Medical Implants"Proc.ISAEM'97,. 499-504 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "New β Type Titanium Alloys with High Biocompatibility"Proc.Non-Aerospace Application of Titanium and It's Alloy. 217-223 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Development of β Type Titanium Alloys for Hard Tissue Replacing Materials"Proc.SSAM-4. 365-368 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] 新家光雄: "生体用β型チタン合金の開発"まてりあ. 37巻10号. 843-846 (1998)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Corrosion Wear Fracture of New β^β Type Biomedical Titanium Alloys"Materials Science and Engineering A. A263. 193-199 (1999)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] 林静男: "浮揚溶解法(CCLM)によるチタンとタンタルの合金化"工業加熱. 36巻. 16-22 (1999)

    • Description
      「研究成果報告書概要(和文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Mechanical Properties of Biomedical Titanium Alloys."Materials Science and Engineering A. A213. 231-236 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] D.Kuroda: "Design and Mechanical Properties of New Beta Type Titanium Alloys for Implant Materials."Materials Science and Engineering A. A243. 244-249 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] D.Kuroda: "Development of New β Type Titanium Alloys for Medical Implants."Proc.ISAEM'97, October 29-31,1997, Toyohashi, Japan. 499-504 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "New β Type Titanium Alloys with High Biocompatibility."Non-Aerospace Application of Titanium and Its Alloys, ed.F.H.Froes, P.G.Allen and M.Niinomi, TMS. 217-223 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Development of β Type Titanium Alloys for Hard Tissue Replacing Materials."Pros.of SSAM-4,12-15 May, 1998, Nagoya, Japan. 365-368 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Development of β Type Titanium Alloys for Implant Materials"Materia Japan. 37. 843-846 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Corrosion Wear Fracture of New β Type Biomedical Titanium Alloys."Proc.Xi'an Titanium Int.Conf., Sept.15- 18,1998, Xi'an, China. Vol.1. 262-270 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
    • Related Report
      2000 Final Research Report Summary
  • [Publications] M.Niinomi: "Mechanical Properties of Biomedical Titanium Alloys"Materials Science and Engineering A. A243. 231-236 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] D.Kuroda: "Design and Mechanical Properties of New β Type Titanium Alloys for Implant Materials"Materials Science and Engineering. A243. 244-249 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] D.Kuroda: "Development of New β Type Titanium Alloys for Medical Implants"Proc.ISAEM'97,. 499-504 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "New β Type Titanium Alloys with High Biocompatibility"Proc.Non-Aerospace Application of Titanium and It's Alloy. 217-223 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "Development of β Type Titanium Alloys for Hard Tissue Replacing Materials"Proc.SSAM-4. 365-368 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] 新家光雄: "生体用β型チタン合金の開発"まてりあ. 37巻10号. 843-846 (1998)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "Corrosion Wear Fracture of New β Type Biomedical Titanium Alloys"Materials Science and Engineering A. A263. 193-199 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] 林静男: "浮揚溶解法(CCLM)によるチタンとタンタルの合金化"工業加熱. 36巻. 16-22 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] 細井祥全: "プラズマ容射によるβ型チタン合金へのリン酸カルシウム結晶化ガラスコーティング"プラズマ応用科学. 7巻. 91-94 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] D.Kuroda: "Mechanical Properties and Biocompatibility of Newly Developed β Type Titanium for Hard Tissue Replaceing Materials"Proc.6th Japan Int.SAMPE Symp.. 1229-1232 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "Recent Research and Development of Titanium for Biomedical Applications in Japan"JOM. 51巻6号. 32-34 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] 福井壽男: "高融点生体用Ti-Ta系合金の融解方法の研究"歯科材料・器械. 19巻. 49-55 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] 新家光雄: "高生体融合機能性チタン合金素材の開発"機能材料. 20巻. 1-8 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] 黒田大介: "新しい生体用β型チタン合金の設計とその機械的性質および細胞毒性"鉄と鋼. 86巻. 31-39 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] 黒田大介: "生体用β型Ti-29Nb-13Ta-4.6Zr合金の熱処理プロセスと力学的性質"鉄と鋼. 86巻. 40-46 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "Development of Titanium Alloys Composed of Non-toxic Elements with Low Modulus and High Strength for Biomedical Applications"Transaction of the Sixth World Biomaterials Congress. 1359 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] T.Kasuga: "Preparation of Calcium Phosphate Glass-Ceramics and Their Coating on Titanium Alloy"Key Engineering Materials. 223-226 (2000)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "Mechanical Performance of Newly Developed β Type Titanium Alloys for Biomedical Use"Titanium'99. 86巻. 1195-1201 (1999)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Ikeda: "Isothermal Aging Behavior of Ti-29Nb-13Ta-4.6Zr New Beta Type Alloy for Medical Implant"Structural Biomaterials for the 21st Century. 15-24 (2001)

    • Related Report
      2000 Annual Research Report
  • [Publications] D.Kuroda: "Mechanical Performance of Newly Developed β-Type Titanium Alloy,Ti-29Nb-13Ta-4.6Zr,for Biomedical Applications"Structural Biomaterials for the 21st Century. 99-106 (2001)

    • Related Report
      2000 Annual Research Report
  • [Publications] T.Kasuga: "Calcium Phosphate Glass-Ceramic Coating on a New Beta-Type Titanium Alloy"Structural Biomaterials for the 21st Century,. 265-272 (2001)

    • Related Report
      2000 Annual Research Report
  • [Publications] M.Niinomi: "New β Type Tianium Alloys with High Biocompatibility"Proc.Non-Aerospace Application of Titanium and It's Alloy. 213-223 (1998)

    • Related Report
      1999 Annual Research Report
  • [Publications] M.Niinomi: "Development of β Type Titanium Alloys for Hard Tissue Replacing Materials"Proc.SSAM-4. 365-368 (1998)

    • Related Report
      1999 Annual Research Report
  • [Publications] D.Kuroda: "Design and Mechanical Properties of New βType Titanium Alloys for Implant Materials"Materials Science and Engineering. A243. 244-249 (1998)

    • Related Report
      1999 Annual Research Report
  • [Publications] M.Niinomi: "Corrosion Wear Fracture of New βType Biomedical Titanium Alloys"Materials Science and Engineering. A263. 193-199 (1999)

    • Related Report
      1999 Annual Research Report
  • [Publications] 新家光雄: "生体用β型チタン合金の開発"まてりあ. 37巻10号. 843-846 (1998)

    • Related Report
      1999 Annual Research Report
  • [Publications] M.Niinomi: "Recent Research and Development of Tianium for Biomedical Applications in Japan"JOM. 51巻6号. 32-34 (1999)

    • Related Report
      1999 Annual Research Report
  • [Publications] D.Kuroda: "Mechanical Properties and Biocompatibility of Newly Developed βType Titanium for Hard Tissue Replaceing Materials"Proc.6th Japan Int.SAMPE Symp.. 1229-1232 (1999)

    • Related Report
      1999 Annual Research Report
  • [Publications] D.Kuroda et al.: "Design and Mechanical Properties of New β Type Titanium Alloys for Implant Materials" Materials Science and Engineering. A243. 244-249 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] M.Niinomi: "Mechanical Properties of Biomedical Titanium Alloys" Materials Science and Engineering. A243. 231-236 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] T.Akahori et al.: "Fracture Characteristics of Fatigued Ti-6Al-4V ELI as an Implant Material" Materials Science and Engineering. A243. 237-243 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] M.Niinomi et al.: "Development of β Type Titanium Alloys for Hard Tissue Replacing Materials" Proc.SSAM-4. 365-368 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] 赤堀俊和ら: "Ti-6Al-7Nb合金の微小疲労き裂の発生および進展特性に及ぼすミクロ組織の影響" 日本金属学会誌. 62巻10号. 952-960 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] 新家光雄: "生体用β型チタン合金の開発" まてりあ. 37巻10号. 843-846 (1998)

    • Related Report
      1998 Annual Research Report
  • [Publications] F.H.Fores.P.G.Allen and M.Niinomi: "Non-Aerospace Applications of Titanium" TMS, 362 (1998)

    • Related Report
      1998 Annual Research Report

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Published: 1998-04-01   Modified: 2016-04-21  

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