• 제목/요약/키워드: and Uniaxial Stress Condition

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1축 및 2축 압축을 받는 고강도콘크리트 및 강섬유보강 고강도콘크리트의 거동 (Behavior of Plain and Steel Fiber Reinforced High Strengh Concrete Under Uniaxial and Biaxial Compression)

  • 임동환;박성환
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 추계 학술발표회 제17권2호
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    • pp.5-8
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    • 2005
  • The purpose of this study is to investigate the mechanical characteristics of plain and steel fiber high strength concrete under uniaxial and biaxial loading condition. A number of plain and steel fiber high strength concrete cubes having 28 days compressive strength of 82.7Mpa (12,000psi) were made and tested. Four principal compression stress ratios, and four fiber concentrations were selected as major test variables. From test results, it is shown that confinement stress in minor stress direction has pronounced effect on the strength and deformational behavior. Both of the stiffness and ultimate strength of the plain and fiber high strength concrete increased. The maximum increase of ultimate strength occurred at biaxial stress ratio of 0.5 in the plain high strength concrete and the value were recorded 30 percent over than the strength under uniaxial condition. The failure modes of plain high strength concrete under uniaxial compression were shown as splitting type of failure but steel fiber concrete specimens under biaxial condition showed shear type failure.

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Al-Cu-Zr 합금 초소성 성형품의 기계적 성질 (mechanical properties of Al-Cu-Zr alloy parts by superplastic forming)

  • 이영선
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 1999년도 춘계학술대회논문집
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    • pp.163-170
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    • 1999
  • Although the bulge forming technique is currently employed in commercial superplastic forming processes, the uniaxial tensile test is still the most commonly used method for the evaluation of the superplasticity of materials due to its simplicity in testing. However, the results obtained from the uniaxial tensile test can not be applied in analyzing the characteristics of the real parts formed in multi-axial stress state. In this paper, using the tensile test specimen obtained from the square cup manufactured by superplastic forming, tensile strength and elongation have been investigated according to the strain and cavity volume fraction. From the result of experiment, tensile strength and elongation are decreased according to the strain and cavity in Al-6%Cu-0.4%Zr alloy. On condition of uniaxial stress, cavity volume fraction is increased on linear according to the increasement of thickness strain. However, on condition of biaxial stress there are critical point( E t=1.5-1.6) that the slope, the ratio of cavity volume fraction and strain, have been changed. Therefore, cavity volume fraction is different with respect to stress condition, although the same strain.

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AZ31 합금의 온간 부풀림 성형시 결정립 변화에 관한 연구 (Grain Evolution during Bulge Blow forming of AZ31 Alloy)

  • 백성규;이영선;이정환;권용남
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2008년도 추계학술대회 논문집
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    • pp.452-455
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    • 2008
  • In the present study, blow forming characteristics of commercially roiled AZ31 alloy sheets were investigated. Two different kinds of AZ31 sheets were originally fabricated by using direct casting and strip casting methods respectively. Both sheets have similar grain sizes of about $7{\mu}m$ with a relatively equiaxed structure after rolling. A series of tensile tests were carried out to get flow behavior in terms of temperature and strain rate. Also, grain size effect was investigated by annealing as-received sheet at elevated temperatures. Elongation increased with temperature increment as well expected. However, the differences in tensile test condition did not give much difference in elongation even at the temperature range where a large elongation would be expected with such as fine grain of $7{\mu}m$. Blow forming experiments showed that forming condition did not result in higher difference in dome height. However, the interesting feature from this study was that formability of this AZ31 alloy got different with stress condition. Firstly, biaxial stress condition might result in lower temperature and strain rate dependencies compared to uniaxial tension results for both DC and SC sheets. Secondly, DC showed slower grain growth in uniaxial tension than in biaxial stress state while SC has much higher grain growth rage in uniaxial tension than in bulging.

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취성재료의 손상후 잔류강도 평가 (Evaluation of Residual Strength in Damaged Brittle Materials)

  • 신형섭;오상엽;서창민
    • 대한기계학회논문집A
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    • 제26권5호
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    • pp.932-938
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    • 2002
  • In structural applications, brittle materials such as soda-lime glasses and ceramics are usually subjected to multiaxial stress state. Brittle materials with cracks or damage by foreign object impacts are apt to fracture abruptly from cracks, because of their properities of very high strength and low fracture toughness. But in most cases, the residual strength of structural members with damage has been tested under uniaxial stress condition such as the 4-point bend test. Depending upon the crack pattern developed, the strength under multiaxial stress state might be different from the one under uniaxial. A comparative study was carried out to investigate the influence of stress state on the residual strength evaluation. In comparable tests, the residual strength under biaxial stress state by the ball-on-ring test was greater than that under the uniaxial one by the 4-point bend test, when a small size indendation crack was introduced. In the case that crack having an angle of 90deg. to the applied stress direction, the ratio of biaxial to uniaxial flexure strength was about 1.12. The residual strength was different from crack angles to loading direction when it was evaluated by the 4-point bend test. The ratio of residual strength of 45deg. crack to 90deg. one was about 1.20. In the case of specimen cracked by a spherical impact, it was shown that an overall decrease in flexure strength with increasing impact velocity, and the critical impact velocity for formation of a radial and/or cone crack was about 30m/s. In those cases that relatively large cracks were developed as compared with the case of indented cracks, the ratio of residual strength under biaxial stress state to one uniaxial became small.

High-Temperature Rupture of 5083-Al Alloy under Multiaxial Stress States

  • Kim Ho-Kyung;Chun Duk-Kyu;Kim Sung- Hoon
    • Journal of Mechanical Science and Technology
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    • 제19권7호
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    • pp.1432-1440
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    • 2005
  • High-temperature rupture behavior of 5083-Al alloy was tested for failure at 548K under multiaxial stress conditions: uniaxial tension using smooth bar specimens, biaxial shearing using double shear bar specimens, and triaxial tension using notched bar specimens. Rupture times were compared for uniaxial, biaxial, and triaxial stress conditions with respect to the maximum principal stress, the von Mises effective stress, and the principal facet stress. The results indicate that the von Mises effective and principal facet stresses give good correlation for the material investigated, and these parameters can predict creep life data under the multiaxial stress states with the rupture data obtained from specimens under the uniaxial stress. The results suggest that the creep rupture of this alloy under the testing condition is controlled by cavitation coupled with highly localized deformation process, such as grain boundary sliding. It is also conceivable that strain softening controls the highly localized deformation modes which result in cavitation damage in controlling rupture time of this alloy.

The uniaxial strain test - a simple method for the characterization of porous materials

  • Fiedler, T.;Ochsner, A.;Gracio, J.
    • Structural Engineering and Mechanics
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    • 제22권1호
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    • pp.17-32
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    • 2006
  • The application of cellular materials in load-carrying and security-relevant structures requires the exact prediction of their mechanical behavior, which necessitates the development of robust simulation models and techniques based on appropriate experimental procedures. The determination of the yield surface requires experiments under multi-axial stress states because the yield behavior is sensitive to the hydrostatic stress and simple uniaxial tests aim only to determine one single point of the yield surface. Therefore, an experimental technique based on a uniaxial strain test for the description of the influence of the hydrostatic stress on the yield condition in the elastic-plastic transition zone at small strains is proposed and numerically investigated. Furthermore, this experimental technique enables the determination of a second elastic constant, e.g., Poisson's ratio.

일축압축 한계변형률에 의한 암반터널 변위기준 적용성 평가 (Evaluation for Applications of Displacement Criterion by the Critical Strain of Uniaxial Compression in Rock Mass Tunnel)

  • 김영수;김대만
    • 대한토목학회논문집
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    • 제29권6C호
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    • pp.321-329
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    • 2009
  • 국내 암석의 일축응력상태와 삼축응력상태의 한계변형률 특성을 연구하고자 국내에 분포하는 6종류의 암석을 대상으로 실내 일축 및 삼축압축시험을 실시하였다. 일축압축실험에 의한 일축압축강도는 대부분 1~100MPa의 범위이었고, 한계변형률도 0.1~1.0%에 위치하여 전반적으로 Sakurai(1982)가 제시한 상 하부 경계선 내에 분포하였다. 그리고 암석의 파괴/한계변형률의 비(${\varepsilon}_f/{\varepsilon}_0$)는 일축강도에 따라 1.0~1.8의 범위로 모두 1.0 이상 나타났다. 삼축압축실험에 의한 한계변형률은 모든 암석에서 0.8%이하로 일축압축실험에서의 최대 한계변형률 1.0% 보다 작은 값을 보였으며, 일축 및 삼축압축실험로부터 산정된 값은 거의 대부분의 암석시료에서 1.0~8.0정도의 범위였다. 본 연구를 통하여 삼축응력상태인 암반의 파괴변형률(${\varepsilon}_{f3}$)은 일축응력상태의 파괴변형률(${\varepsilon}_{f1}$)에 비하여 1.0~8.0배 정도 크고, ${\varepsilon}_{f1}$은 일축응력상태의 한계변형률(${\varepsilon}_{01}$)보다 1.0~1.8배정도 크게 나타나 암반터널 변위계측에 의한 안정성 기준치를 일축강도에 따른 한계변형률(${\varepsilon}_{01}$)로 규정하는 것은 안정측 관리기준이 되는 것으로 판단된다.

Study of cracks in compressed concrete specimens with a notch and two neighboring holes

  • Vahab, Sarfarazi;Kaveh, Asgari;Shirin, Jahanmiri;Mohammad Fatehi, Marji;Alireza Mohammadi, Khachakini
    • Advances in concrete construction
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    • 제14권5호
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    • pp.317-330
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    • 2022
  • This paper investigated computationally and experimentally the interaction here between a notch as well as a micropore under uniaxial compression. Brazilian tensile strength, uniaxial tensile strength, as well as biaxial tensile strength are used to calibrate PFC2d at first. Then, uniaxial compression test was conducted which they included internal notch and micro pore. Experimental and numerical building of 9 models including notch and micro pore were conducted. Model dimensions of models are 10 cm × 10 cm × 5 cm. Joint length was 2 cm. Joints angles were 30°, 45° and 60°. The position of micro pore for all joint angles was 2cm upper than top of the joint, 2 cm upper than middle of joint and 2 cm upper than the joint lower tip, discreetly. The numerical model's dimensions were 5.4 cm × 10.8 cm. The fractures were 2 cm in length and had angularities of 30, 45, and 60 degrees. The pore had a diameter of 1 cm and was located at the top of the notch, 2 cm above the top, 2 cm above the middle, and 2 cm above the bottom tip of the joint. The uniaxial compression strength of the model material was 10 MPa. The local damping ratio was 0.7. At 0.016 mm per second, it loaded. The results show that failure pattern affects uniaxial compressive strength whereas notch orientation and pore condition impact failure pattern. From the notch tips, a two-wing fracture spreads almost parallel to the usual load until it unites with the sample edge. Additionally, two wing fractures start at the hole. Both of these cracks join the sample edge and one of them joins the notch. The number of wing cracks increased as the joint angle rose. There aren't many AE effects in the early phases of loading, but they quickly build up until the applied stress reaches its maximum. Each stress decrease was also followed by several AE effects. By raising the joint angularities from 30° to 60°, uniaxial strength was reduced. The failure strengths in both the numerical simulation and the actual test are quite similar.

Temperature Dependence of Electron Mobility in Uniaxial Strained nMOSFETs

  • Sun, Wookyung;Shin, Hyungsoon
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제14권2호
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    • pp.146-152
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    • 2014
  • The temperature dependence of strain-enhanced electron mobility in nMOSFETs is investigated by using a self-consistent Schr$\ddot{o}$dinger-Poisson solver. The calculated results suggest that vertical compressive stress is more efficient to maintain the strain-enhanced electron mobility than longitudinal tensile stress in high temperature condition.

2축 압축을 받는 고강도 콘크리트 및 강섬유보강 고강도 콘크리트의 역학적 거동 특성 (Mechanical Behavior of Plain and Steel Fiber Reinforced High Strengh Concrete Under Biaxial Compression)

  • 임동환
    • 콘크리트학회논문집
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    • 제17권5호
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    • pp.803-809
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    • 2005
  • 본 연구는 1축 및 2축 압축응력을 받는 고강도 콘크리트 및 섬유보강 고강도 콘크리트의 역학적 거동 및 재료 특성을 규명함에 목적이 있다. 이를 위하여, 본 연구에서는 82.7MPa(12,000psi) 뽀일 압축강도를 발현하는 고강도 콘크리트 및 섬유보강 고강도 콘크리트 큐브 시편을 제작하여 2축 압축 응력비($\sigma_2/\sigma_1$=0.00, 0.50 , 0.75, 1.00) 및 섬유혼입률($V_f$=0.0, 0.5, 1.0, 1.5%)을 주된 실험 변수로 하는 실험을 수행하였다. 위 실험 연구를 통하여, 부응력 방향으로 도입된 구속응력은 주응력 방향으로의 강도 및 변형 거동에 좋은 개선 효과를 보이며, 고강도 콘크리트 및 강섬유 보강 고강도 콘크리트의 강성 및 극한강도가 현저히 증대되었음을 알 수 있었다. 또한 주응력 방향 및 부응력 방향 압축응력비($\sigma_2/\sigma_1$)가 0.5일 때 극한강도의 효과가 가장 크게 나타났으며, 최대 증진 효과는 1축의 그것과 비교할 때 약 $30\%$의 효과가 있는 것으로 나타났다. 1축 압축을 받는 고강도 보통 콘크리트 및 강섬유보강 콘크리트는 재하 방향과 평행한 쪼갬인장응력으로 인한 균열이 발생하는 것으로 나타났으나, 2축 압축을 받는 섬유보강 고강도 콘크리트는 전단 형태의 파괴가 일어났다. 본 실험 결과로부터 도출된 2축 압축 상태에서의 탄성계수 값은 ACI, CEB식에서 도출된 탄성계수보다 높게 나타났으며, 따라서 현재 사용되는 ACI 및 CEB 탄성계수 식은 2축 압축을 받는 고강도 콘크리트에도 적용이 가능한 것으로 사료된다.