• 제목/요약/키워드: 이속압연

검색결과 11건 처리시간 0.023초

생체재료용 Ti-Nb-Ge합금의 초탄성 특성 및 기계적 성질에 미치는 집합조직의 영향

  • 김한솔;김원용
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2009년도 춘계학술발표대회
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    • pp.48.1-48.1
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    • 2009
  • Ti합금은 생체적합성이 우수하여 생체재료로 널리 사용되어 왔으며, 특히 Nitinol로 알려진 Ti-Ni합금은 형상기억특성 및 초탄성특성을 지녀 치열교정용 와이어나 혈관확장용 스텐트 등으로 사용되어 왔다. 최근 Ni과 같은 세포독성 합금원소의 용출가능성이 문제가 되어 Ni을 함유하지 않는 Ti합금이 주목받고 있다. 본 연구에서는 Ti-Nb-Ge 합금의 집합조직과 초탄성 및 기계적 특성의 관계를 고찰함으로써, 사용목적이나 요구특성에 부합되는 가공열처리방법을 도출하고자 하였다. 비소모전극식 진공아크용해장치를 이용하여 Ti-Nb-Ge 합금 버튼을 만들고, 이를 $1000^{\circ}C$에서 30분간 유지 후 얼음물에 급랭처리하였다. 이후 집합조직 제어를 위해 등속압연 및 이속압연의 두가지 방법으로 냉간압연한 후, $850^{\circ}C$에서 30분~2시간까지 열처리하였다. 광학현미경과 투과전자현미경을 이용하여 미세조직을 관찰하고, X-선 회절분석법을 이용하여 집합조직을 분석하였다. 또한 순환식 인장시험을 통해 시편의 초탄성 특성 및 기계적 성질을 평가하였다. 등속압연재는 {001}<110>에서 {111}<110>에 이르는 $\alpha$-fiber가 발달하는 한편, 이속압연재는 {001} 및 {111}가 발달하는 것으로 나타났다. 또한 압연방향으로 <110>이 평행한 집합조직이 발달할수록 초탄성 특성이 높게 나타났다. 이는 응력유기 마르텐사이트 변태 시 $\beta$의 <110>방향이 $\alpha$" <010>방향으로 변할 때 길이가 증가하므로, 시편에 인장방향으로 <110>이 평행한 집합조직이 발달할수록 응력유기 마르텐사이트 변태가 용이해지기 때문인 것으로 사료된다.

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베타형 Ti-Nb-Ge 합금의 초탄성 거동에 미치는 집합조직의 영향

  • 김한솔;이해진;송국현;김원용
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2012년도 춘계학술발표대회
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    • pp.102.1-102.1
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    • 2012
  • Ti 및 Ti 합금은 치과 및 정형외과 등의 분야에서 생체재료로써 다양한 용도로 적용되고 있으며, 보다 안전하고 우수한 특성의 Ti 합금 개발에 대한 관심이 높아지고 있다. 본 연구에서는 Ti-Nb-Ge 합금의 초탄성 특성에 미치는 집합조직의 영향에 대해 조사하였다. 집합조직 제어를 위해 등속 및 이주속 압연을 적용한 후 $850^{\circ}C$에서 30분~2시간까지 어닐링하였다. 광학현미경과 SEM-EBSD를 이용하여 미세조직 및 집합조직을 분석하고, 순환식 인장시험을 통해 시편의 초탄성 특성을 평가하였다. 등속압연 후 어닐링한 시료의 경우 alpha-fiber 집합조직이 발달하는 한편, 이속압연 후 어닐링한 시료는 {113}// 및 {331}의 집합조직이 발달하는 것으로 나타났다. 마르텐사이트 변태에 의한 변형회복능과 집합조직 성분별 강도의 관계를 비교한 결과, alpha-fiber 집합조직이 발달할수록 변형회복능이 증가하는 것으로 나타났다.

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동속압연과 이속압연이 동합금판재의 조직 및 기계적 성질에 미치는 영향 (Effects of Conventional Rolling and Differential Speed Rolling on Microstructure and Mechanical Properties of a Copper Alloy Sheet)

  • 이성희;임정윤;윤대진;어광준;한승전
    • 한국재료학회지
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    • 제21권1호
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    • pp.15-20
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    • 2011
  • The effects of conventional rolling (CR) and differential speed rolling (DSR) on the microstructure and mechanical properties of a copper alloy sheet were investigated in detail. A copper alloy with thickness of 3 mm was rolled to a 50% reduction at ambient temperature without lubrication with a differential speed ratio of 2:1; sample was then annealed for 0.5h at various temperatures from 100 to $800^{\circ}C$. Conventional rolling, in which the rolling speed of the upper and lower rolls is identical, was performed under the same rolling conditions. The shear strain introduced by the CR showed positive values at positions on the upper roll side and negative values at positions on the lower roll side. However, the shear strain showed a zero or positive value at all positions for the samples rolled by the DSR. The microstrucure and mechanical properties of the as-rolled copper alloy did not show very significant differences between the CR and DSR for the microstructure and mechanical properties. However, those properties showed very significant differences in the case of the annealed samples. The effects of rolling method on the microstructure and mechanical properties of the as-rolled and subsequently annealed materials are discussed in terms of the shear strain.

이속압연에 의해 가공된 Cu-Ni-Si 합금의 미세 조직 및 기계적 성질 (Microstructure and Mechanical Properties of Cu-Ni-Si Alloy Deformed by Differential Speed Rolling)

  • 이성희;한승전
    • 한국재료학회지
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    • 제26권1호
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    • pp.8-12
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    • 2016
  • Effects of conventional rolling(CR) and differential speed rolling(DSR) on the microstructure and mechanical properties of Cu-Ni-Si alloy were investigated in detail. The copper alloy with thickness of 3 mm was rolled to 50 % reduction at ambient temperature without lubricant with a differential speed ratio of 2:1. The conventional rolling in which the rolling speed of upper and lower rolls is identical was performed under identical rolling conditions. The shear strain introduced by the CR showed positive values at positions of upper roll side and negative values at positions of lower roll side. However, it showed zero or positive values at all positions for the samples rolled by the DSR. The microstrucure and texture development of the as-rolled copper alloy did not show any significant difference between CR and DSR. The tensile strength of the DSR processed specimen was larger than that of the CR processed specimen. The effects of rolling methods on the microstructure and mechanical properties of the as-rolled copper alloy are discussed in terms of the shear strain.

이속압연에 의해 가공된 동합금 판재의 조직 및 기계적 특성 (Microstructure and Mechanical Properties of a Copper Alloy Sheet Processed by a Differential Speed Rolling)

  • 이성희
    • 한국재료학회지
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    • 제22권11호
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    • pp.581-586
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    • 2012
  • The microstructure and mechanical properties of a copper alloy sheet processed by differential speed rolling (DSR) were investigated in detail. A copper alloy with thickness of 3 mm was rolled to a 50% reduction at ambient temperature without lubrication and with a differential speed ratio of 2.0:1. For comparison, conventional rolling (CR), in which the rolling speeds of the upper and lower rolls is 2.0 m/min, was also performed under the same rolling conditions. The shear strain of the sample processed by CR showed positive values at the positions of the upper roll side and negative values at the positions of the lower roll side. On the other hand, the sample processed by the DSR showed zero or positive shear strain values at all positions. However, the microstructure and mechanical properties of the as-rolled copper alloys did not show such significant differences between the CR and the DSR. The samples rolled by the CR and the DSR exhibited a typical deformation structure. In addition, the DSR processed samples showed a typical rolling texture in which {112}<111>, {011}<211> and {123}<634> components were developed at all positions. Therefore, it is concluded that the DSR was very effective for the introduction of a uniform microstructure throughout the thickness of the copper alloy.

이속압연에 의해 제조된 AA1100 판재의 소성변형비 예측 (Prediction of the Macroscopic Plastic Strain Ratio in AA1100 Sheets Manufactured by Differential Speed Rolling)

  • 최재권;조재형;김형욱;강석봉;최시훈
    • 대한금속재료학회지
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    • 제48권7호
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    • pp.605-614
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    • 2010
  • Conventional rolling (symmetric) and differential speed rolling (DSR) were both applied to AA1050 sheets at various velocity ratios, from 1 to 2 between the top and bottom rolls. An electron backscatter diffraction (EBSD) technique was used to measure texture inhomogeneity through the thickness direction. After the annealing process, the annealing texture of the DSR processed sheets was different from that of conventionally rolled sheets. The velocity ratio between the top and bottom rolls affected the texture inhomogeneity and macroscopic plastic strain ratio of the AA1050 sheets. A prediction for the macroscopic plastic strain ratio of AA1050 sheets was carried out using a visco-plastic self-consistent (VPSC) polycrystal model. The strain ratio directionality that was predicted using the VPSC polycrystal model was in good agreement with experimental results.

쌍롤 박판주조법 및 이속압연으로 제조한 고성형성 6xxx계 Al 합금 판재 (6xxx Series Al Alloy Sheets with High Formability Produced by Twin-roll Strip Casting and Asymmetric Rolling)

  • 김홍규;조재형;김형욱;이재철
    • 대한금속재료학회지
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    • 제50권7호
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    • pp.503-509
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    • 2012
  • We report on the feasibility of producing 6xxx series Al alloy sheets using a combination of twin-roll strip casting and asymmetric rolling. The Al alloy sheets produced in this study exhibited an excellent formability ($\bar{r}=1.2$, ${\Delta}r=0.17$) and mechanical properties (${\sigma}_{TS}{\sim}260MPa$, ${\varepsilon}>30%$), which cannot be feasibly obtained via the conventional technique based on ingot casting and conventional rolling. The enhanced formability as evaluated in terms of $\bar{r}$ and ${\Delta}r$ was clarified by examining the evolution of textures associated with strip casting and subsequent thermo-mechanical treatments. The evaluation of the formability leads us to conclude that the combined technique based on strip casting and asymmetric rolling is a feasible process for enhancing the formability of Al alloy sheets to a level beyond which the conventional technique can reach.

박판주조한 Al-5.5Mg-0.3Cu 합금 판재의 이속압연 : 기계적 특성 및 성형성 평가 (Asymmetric Rolling of Twin-roll Cast Al-5.5Mg-0.3Cu Alloy Sheet : Mechanical Properties and Formability)

  • 천부현;한준현;김형욱;이재철
    • 대한금속재료학회지
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    • 제49권3호
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    • pp.243-249
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    • 2011
  • This study describes the feasibility of producing high-strength Al alloy sheet with a high solute content using a combined technique of twin-roll strip casting and asymmetric rolling. The Al sheet produced in this study exhibited excellent formability ($\overline{r}$ =1.0, $\Delta$r=0.16) and mechanical properties ($\sigma_{TS}$~305 MPa, $\epsilon$~33%), that, cannot be feasibly obtained via the conventional technique based on ingot casting and rolling. The structural origin of the observed properties, especially enhanced formability, was clarified by examining the evolution of textures associated with strip casting and subsequent thermo-mechanical treatments. Our evaluation of the mechanical properties and formability leads us to conclude that the combination of strip casting and asymmetric rolling is a feasible process for enhancing the formability of Al alloy sheets to the level beyond what the conventional techniques can reach.

이속압연된 Cu-3.0Ni-0.7Si 합금의 어닐링에 따른 두께방향으로의 미세조직 및 기계적 특성 변화 (Change in Microstructure and Mechanical Properties through Thickness with Annealing of a Cu-3.0Ni-0.7Si Alloy Deformed by Differential Speed Rolling)

  • 이성희
    • 한국재료학회지
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    • 제28권5호
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    • pp.295-300
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    • 2018
  • Effects of annealing temperature on the microstructure and mechanical properties through thickness of a Cu-3.0Ni-0.7Si alloy processed by differential speed rolling are investigated in detail. The copper alloy with a thickness of 3 mm is rolled to a 50 % reduction at ambient temperature without lubricant and subsequently annealed for 0.5 h at $200-900^{\circ}C$. The microstructure of the copper alloy after annealing is different in the thickness direction depending on the amount of the shear and compressive strain introduced by the rolling; the recrystallization occurs first in the upper roll side and center regions which are largely shear-deformed. The complete recrystallization occurs at an annealing temperature of $800^{\circ}C$. The grain size after the complete recrystallization is finer than that of the conventional rolling. The hardness distribution of the specimens annealed at $500-700^{\circ}C$ is not uniform in the thickness direction due to partial recrystallization. This ununiformity of hardness corresponds well to the amount of shear strain in the thickness direction. The average hardness and ultimate tensile strength has the maximum values of 250 Hv and 450 Mpa, respectively, in the specimen annealed at $400^{\circ}C$. It is considered that the complex mode of strain introduced by rolling directly affects the microstructure and the mechanical properties of the annealed specimens.

이속 압연된 마그네슘 합금의 미세조직 및 기계적 물성에 미치는 가공 변수의 영향 (Effects of Processing Conditions on Microstructure and Mechanical Properties of Mg Alloy Deformed by Differential Speed Rolling)

  • 양해웅;고영건
    • 소성∙가공
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    • 제27권1호
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    • pp.12-17
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    • 2018
  • This paper outlines the research findings on the microstructure and mechanical properties of AZ31 Mg alloy fabricated by differential speed rolling (DSR) with respect to processing variables such as temperature, roll speed ratio (RSR), and deformation route. The resultant microstructure of the sample, deformed by 2-pass DSRs at 473 K, comprised finer grains with more uniform distribution than those at 573 and 623 K. This was due to active recrystallization, which was expected to appear during DSR at temperatures higher than 573 K. When the sample was deformed via DSR with RSR of 1:4 for the upper and lower rolls at 453 K, the values of yield and ultimate tensile strength were observed to be higher than their counterpart with RSR of 1:1. The application of sample rotation around the longitudinal axis would give rise to an excellent combination of tension strength (~330 MPa) and ductility (~20 %) at ambient temperatures. This is discussed based on its uniform fine grained structure and the softening of basal texture.