• Title/Summary/Keyword: Ti-6Al-4V합금

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Investigation of Forming Stabilities Criteria in Hot Backward Extrusion of Ti-6Al-4V (Ti-6Al-4V합금의 열간 후방압출에 대한 성형 안정성 평가모델의 고찰)

  • Yeom Jong-Taek;Park Nho-Kwang;Lee You-Hwan;Shin Tae-Jin;Hwang Sang-Mu;Hong Sung-Suk;Shim In-Ok;Lee Chong-Soo
    • Journal of the Korea Institute of Military Science and Technology
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    • v.7 no.3 s.18
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    • pp.84-92
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    • 2004
  • The metal forming behavior of Ti-6Al-4V tube during hot backward extrusion was investigated with various forming stabilities or instabilities criteria. that is, Ziegler's instability criterion, dynamic materials model(DMM) stability criteria and Rao's instability criterion. These approaches also were coupled to the internal variables generated from FE simulation. In order to validate the reliabilities of three criteria, hot backward extrusions for Ti-6Al-4V tube making were carried out with different backward extrusion designs. The useful model for predicting the forming defects was suggested through the comparison between experimental observations and simulation results.

The Fretting Fatigue Behavior of Ti-6Al-4V Alloy on Change of Microstructure (Ti-6Al-4V 합금의 조직 변화에 따른 프레팅 피로거동)

  • Bae Yong Tak;Choi Sung long;Kwon Jae Bo
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.29 no.4 s.235
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    • pp.584-590
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    • 2005
  • The effect of microstructure on mechanical behavior for Ti-6Al-4V alloy was studied. Two different kinds of specimens are prepared using heat treatments (rolled plate, $1050^{\circ}C)$ in order to Produce different microstructures. Various kinds of mechanical tests such as hardness, tensile, fatigue and fretting fatigue tests are performed for evaluation of mechanical properties with the changes of microstructures. Through these tests, the following conclusions are observed: 1) Microstructures are observed as equiaxed and $widmanst{\ddot{a}}ten$ microstructures respectively. 2) Impact absorbed energy is superior for the equiaxed microstructure, and the hardness and tensile strength are superior for the $widmanst{\ddot{a}}ten$ microstructure. 3) The fatigue endurance of $widmanst{\ddot{a}}ten$ microstritcture shows higher value than that of the equiaxed microstructure. 4) The fatigue endurance in fretting condition was reduced about $50{\%}$ from that of the non-fretting condition.

Comparative Study on the Electromagnetic-Heat Transfer Co-simulation Analysis and High Frequency Induction Heating of Ti-6Al-4V Alloy (전자기-열전달 연동 해석과 Ti-6Al-4V 합금 고주파 유도가열 실험에 대한 비교 분석에 관한 연구)

  • Bae, Jinki;Choi, Jinkyu;Cho, Mingoo;Lee, Seoksoon
    • Journal of Aerospace System Engineering
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    • v.15 no.5
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    • pp.1-7
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    • 2021
  • Demand for Ti-6Al-4V alloy is increasing in various industries because of its superior strength to weight and high-temperature strength properties. However, due to its low formability at room temperature, it is formed at high temperature, where its productivity and efficiency are low. The current high-temperature forming method has many limitations because it involves heating the specimen by heating the lower mold. It is expected that a process using high frequency induction heating, which can locally heat the product, can improve its productivity. In addition, time and cost can be saved if the process is simulated in advance with a reliable analysis. In this paper, we verified the reliability of the analysis by comparing the result of heating the specimen to 850 ℃ by high frequency induction heating and the temperature obtained through the co-simulation analysis.

Evaluation of Pess Formability for Ti-6Al-4V Sheet at Elevated Temperature (Ti-합금판재(Ti-6Al-4V)의 고온 성형성 평가)

  • Park, J.G.;Park, N.K.;Kim, Y.S.
    • Transactions of Materials Processing
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    • v.19 no.4
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    • pp.230-235
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    • 2010
  • Titanium alloy sheets have excellent specific strength and corrosion resistance as well as good performance at high temperature. Recently, titanium alloys are widely employed not only for aerospace parts but also for bio prothesis and motorcycle. However, the database is insufficient in the titanium alloy for press forming process. In this study, the effect of temperature on the forming limit diagram was investigated for Ti-6Al-4V titanium alloy sheet through the Hecker‘s punch stretching test at elevated temperature. Experimental results obtained in this study can provide a database for the development of press forming process at elevated temperature of Ti-6Al-4V titanium alloy sheet. From the experimental studies it can be concluded that the formability of Ti-6Al-4V titanium alloy sheet is governed by the ductile failure for the testing temperature. The formability of Ti-6Al-4V titanium alloy sheet at $700^{\circ}C$ increases about 7 times compared with that at room temperature.

Biocompatibility of Ti-8Ta-3Nb alloy with fetal rat calvarial cells (백서 태자 두개관세포에서 Ti-8Ta-3Nb 합금의 생체적합성)

  • Cho, In-Goo;Cui, De-Zhe;Kim, Young-Joon;Lee, Kyung-Ku;Lee, Doh-Jae
    • Journal of Periodontal and Implant Science
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    • v.36 no.4
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    • pp.849-861
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    • 2006
  • 타이타늄은 기계적 특성이 우수하고 생체적합성이 뛰어나 의료용 장비의 주 재료로 사용되고 있으며 타이타늄 보다 기계적 특성이 더 우수한 타이타늄 합금들(주로 Ti-6Al-4V와 Ti-6Al-7Nb 합금)도 개발되어 치과와 의료용 임플란트로 사용되고 있다. 그러나 타이타늄 합금 성분들 중 알루미늄 (aluminum)과 바나디움(vanadium)은 인체에 노출되면 세포손상과 신경계에 문제를 일으킬 수 있다. 따라서 인체에 독성이 없으면서 기계적 성질과 생체적합성이 우수한 타이타늄 합금의 개발이 필요하다. 최근 인체에 독성이 없는 성분들이 함유된 새로운 ${\beta}$ - 형태의 타이타늄 합금들이 개발되고 있는데, ${\beta}$ - 타이타늄 합금은 그 기계적 성질이 기존의 ${\alpha}+{\beta}$ 타이타늄 합금에 비해 우수하다고 알려져 있다. 최근 새로운 ${\beta}$ - 타이타늄 합금이 전남대학교 부설 타이타늄 연구소에서 개발되었다. 이 연구는 새로 개발된 ${\beta}$ - 타이타늄 합금의 생채 적합성을 세포 증식도, 알카리 인산 분해 효소 활성과 유전자 증폭을 통해 알아보고자 하였다. 그 결과는 다음과 같다; 1. Titanium-6aluminum-4vanadium (Ti-6Al-4V) 합금 표면애서의 세포 증식율은 Titanium-Titanium8Tantalum-3Niobium (Ti-8Ta-3Nb) 합금과 순수 타이타늄 표면에 비해 유의하게 낮았다(p<0.00l). Ti-8Ta-3Nb 합금 표면에서의 증식도는 순수 타이타늄 표면과 유사하였다. 2. Ti-8Ta-3Nb 합금과 순수 타이타늄에서 배양된 세포이 알카리 인산 분해 효소의 활성도는 Ti-6Al-4V 합금에서의 것보다 유의하게 높았다 (p<0.001). 3. 유전자 증폭 분석 결과, Ti-8Ta-3Nb 합금과 순수 타이타늄에서 collagen type I과 bone sialoprotein mRNA 가 유사한 수준으로 발현되었다. 이상의 결과는 생체 적합성 측면에서 Ti-8Ta-3Nb 합금과 순수 타이타늄의 차이가 없음을 보여주며 따라서 Ti-8Ta-3Nb 합금이 의학 및 치의학 영역에서 새로운 임프란트 재료로 사용될 수 있음을 의미한다.