• 제목/요약/키워드: tensile cracks

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후크형 강섬유와 폴리비닐알코올 섬유의 혼합 비율과 변형속도에 따른 하이브리드 섬유보강 시멘트복합체의 인장거동 (Tensile Behavior of Hybrid Fiber Reinforced Cement Composite According to the Hooked Steel Fiber and Polyvinyl Alcohol Fiber Blending Ratio and Strain Rate)

  • 손민재;김규용;이상규;김홍섭;남정수
    • 한국구조물진단유지관리공학회 논문집
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    • 제21권6호
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    • pp.98-105
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    • 2017
  • 본 연구에서는 후크형 강섬유와 PVA 섬유의 혼합비에 따른 하이브리드 섬유보강 시멘트 복합체의 인장거동에 미치는 변형속도의 효과에 대하여 평가하기 위하여, 후크형 강섬유와 PVA 섬유를 각각 1.5+0.5, 1.0+1.0, 0.5+1.0vol.%의 혼합비로 보강한 하이브리드 섬유보강 시멘트 복합체를 제작하였다. 그 결과, 후크형 강섬유보강 시멘트 복합체는 변형속도가 증가함에 따라 섬유와 매트릭스의 부착력이 향상되어 인장강도, 변형능력 및 파괴인성이 크게 향상되었으며, 후크형 강섬유 주변의 매트릭스에 발생하는 마이크로 균열에 의해 직선형으로 인발되는 섬유의 수가 감소하고, 인장강도 점 이후의 응력 저하가 급격하게 발생하였다. 한편, PVA 섬유는 변형속도 $10^{-6}/s$에서는 끊어지는 파괴거동이 나타났으나, 변형속도 $10^1/s$에서는 변형속도가 증가함에 따라 섬유가 인발되는 파괴거동에 의해 다중균열 개수 및 변형능력이 감소하였다. 후크형 강섬유 1.5vol.%, PVA 섬유 0.5vol.%를 혼입한 시험체(HSF1.5PVA0.5)는 PVA가 후크형 강섬유의 주변 매트릭스에 발생하는 마이크로 균열을 억제하여 후크형 강섬유의 인발저항성능을 향상시키기 때문에 가장 높은 인장강도를 나타내었으며, 변형능력 및 파괴인성의 DIF가 크게 향상되었다. 또한, 변형속도 $10^1/s$에서는 후크형 강섬유의 인발저항성능의 증가로 인하여 직선형으로 인발되는 섬유의 수가 증가하기 때문에 인장강도 점 이후의 응력 저하가 감소하여 파괴인성의 시너지는 양의 값을 나타내었다.

철근부식에 의한 콘크리트의 표면변형률과 내부팽창압에 대한 실험 및 해석연구 (Experimental and Analytical Study on the Surface Strain and Internal Pressure Due to Corrosion of Reinforcement)

  • 오병환;김기현;강의영;장승엽;김지상;서정문
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2001년도 가을 학술발표회 논문집
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    • pp.777-780
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    • 2001
  • Corrosion products of reinforcement in the concrete exerts pressure to the adjacent concrete that the concrete is subject to tensile stress. If the tensile strength exceeds the tensile strength, cracks are initiated around steel and propagates through concrete cover. Cracking of the cover means that the lifetime of the structure is ended. So the amount of corrosion which introduces crack in the concrete cover is a crucial factor in the reinforcement corrosion problem. In this study, relation between internal pressure and amount of corrosion are pursued by way of corrosion experiment and finite element analysis.

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변상진전기법을 이용한 토목구조물 피해평가 (Disaster Assessment for the Civil Infrastructure through a Technique of Crack Propagation)

  • 박시현
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2010년도 춘계 학술발표회
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    • pp.907-910
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    • 2010
  • This study has developed a numerical analysis technique newly which can evaluate the damage propagation characteristics of civil infrastructures. To do this, numerical techniques are incorporated for the concrete members up to the compressive damage due to the bending compressive forces after the tensile crack based on the deformation mechanism. Especially, for the compressive damage stage after the tensile crack, the crack propagation process will be analyzed numerically using the concept of an equivalent plastic hinged length. Using this concept, we investigate the reasonability of the developed module by comparing commercial program for the tunnel structure. It can be established from this study that section forces, such as axial forces and the moment cracks takes place, can be related to the width of the crack making it possible to analyze the crack extension.

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Influence of Carbide Formation on Tensile and Fatigue Properties of Carburized Steels

  • Yu, Eunji;Jung, Heejong;Kim, Kun-Su;Kim, Eui-Jun;Kim, Jongryoul
    • Applied Microscopy
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    • 제43권2호
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    • pp.81-87
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    • 2013
  • The influence of carbide formation on mechanical properties has been investigated in carburized steels. Through controlled diffusion and precipitation processes, the morphologies of carbides could be changed and then fine, networked, and spherical shapes at carburized layers were obtained. These morphological changes affected tensile and bending fatigue properties of the steel. The fine and the spherical carbides acted as resistance sites against crack propagation, which improved the mechanical properties. However, the networked carbides deteriorated the properties because the cracks propagated along the boundaries of them. These results indicate that the morphological control of carbides is one of important keys to improve the mechanical properties.

Effects of tensile softening on the cracking resistance of FRP reinforced concrete under thermal loads

  • Panedpojaman, Pattamad;Pothisiri, Thanyawat
    • Structural Engineering and Mechanics
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    • 제36권4호
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    • pp.447-461
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    • 2010
  • Fiber reinforced polymer (FRP) bars have been widely used as reinforcement for concrete structures. However, under elevated temperatures, the difference between the transverse coefficients of thermal expansion of FRP rebars and concrete may cause the splitting cracks of the concrete cover. As a result, the bonding of FRP-reinforced concrete may not sustain its function to transfer load between the FRP rebar and the surrounding concrete. The current study investigates the cracking resistance of FRP reinforced concrete against the thermal expansion based on a mechanical model that accounts for the tensile softening behavior of concrete. To evaluate the efficacy of the proposed model, the critical temperature increments at which the splitting failure of the concrete cover occurs and the internal crack radii estimated are compared with the results obtained from the previous studies. Simplified equations for estimating the critical temperature increments and the minimum concrete cover required to prevent concrete splitting failure for a designated temperature increment are also derived for design purpose.

고인성 섬유보강 시멘트 복합체의 인장강성 (Tension Stiffening of High Performance Fiber-Reinforced Cementitious Composites)

  • 윤현도;양일승;한병찬;복산양;전에스더;김선우
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 추계 학술발표회 제16권2호
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    • pp.441-444
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    • 2004
  • This paper presnets the tensile behavior of 8 high performance fiber-reinforced cementitious composites (HPFRCCs) members, each reinforced with one deformed bar 16mm in diameter. The variables included HPFRCC(Ductal, steel cord and polyethylene hybrid fiber, PE fiber) versus normal concrete. Fibers used in HPFRCC significantly increased tensile strength, ductility, and tension stiffening of cementitious materials. For HPFRCC, after first cracking, tensile load continue to rise without fracture localization. Sequentially developed parallel cracks contributed to the inelastic strain at increasing stress level. After yielding of the reinforcing bars, HPFRCC showed increases in loads with increasing strains.

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Alloy 617 확산용접재의 고온 인장강도 (High-Temperature Tensile Strengths of Alloy 617 Diffusion Weldment)

  • 사인진;황종배;김응선
    • 한국압력기기공학회 논문집
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    • 제14권1호
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    • pp.15-23
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    • 2018
  • A compact heat exchanger is one of critical components in a very high temperature gas-cooled reactor (VHTR). Alloy 617 (Ni-Cr-Co-Mo) is considered as one of leading candidates for this application due to its excellent thermal stability and strengths in anticipated operating conditions. On the basis of current ASME code requirements, sixty sheets of this alloy are prepared for diffusion welding, which is the key technology to have a reliable compact heat exchanger. Optical microscopic analysis show that there are no cracks, incomplete bond, and porosity at/near the interface of diffusion weldment, but Cr-rich carbides and Al-rich oxides are identified through high resolution electron microscopic analysis. In high-temperature tensile testing, superior yield strengths of the diffusion weldment compared to the code requirement are obtained up to 1223 K ($950^{\circ}C$). However, both tensile strength and ductility drop rapidly at higher temperature due to the insufficient grain boundary migration across the interface of diffusion weldment. Best fit curves for minimum yield strength and average tensile strength are drawn from the experimental tensile results of this study.

Experimental study of Kaiser effect under cyclic compression and tension tests

  • Chen, Yulong;Irfan, Muhammad
    • Geomechanics and Engineering
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    • 제14권2호
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    • pp.203-209
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    • 2018
  • Reliable estimation of compressive as well as tensile in-situ stresses is critical in the design and analysis of underground structures and openings in rocks. Kaiser effect technique, which uses acoustic emission from rock specimens under cyclic load, is well established for the estimation of in-situ compressive stresses. This paper investigates the Kaiser effect on marble specimens under cyclic uniaxial compressive as well as cyclic uniaxial tensile conditions. The tensile behavior was studied by means of Brazilian tests. Each specimen was tested by applying the load in four loading cycles having magnitudes of 40%, 60%, 80% and 100% of the peak stress. The experimental results confirm the presence of Kaiser effect in marble specimens under both compressive and tensile loading conditions. Kaiser effect was found to be more dominant in the first two loading cycles and started disappearing as the applied stress approached the peak stress, where felicity effect became dominant instead. This behavior was observed to be consistent under both compressive and tensile loading conditions and can be applied for the estimation of in-situ rock stresses as a function of peak rock stress. At a micromechanical level, Kaiser effect is evident when the pre-existing stress is smaller than the crack damage stress and ambiguous when pre-existing stress exceeds the crack damage stress. Upon reaching the crack damage stress, the cracks begin to propagate and coalesce in an unstable manner. Hence acoustic emission observations through Kaiser effect analysis can help to estimate the crack damage stresses reliably thereby improving the efficiency of design parameters.

The numerical investigation of tensile strength of coal model on the performance of coal plow using Particle Flow Code

  • Fu, Jinwei;Haeri, Hadi;Sarfarazi, Vahab;Marji, Mohammad Fatehi;Li, Tong
    • Structural Engineering and Mechanics
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    • 제82권6호
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    • pp.713-724
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    • 2022
  • Effects of coal tensile strength and plow configuration on the coal fragmentation process was modeled by two-dimensional particles flow code (PFC2D). Three tensile strength values, 0.5, 1,5 and 3.5 MPa were considered in this numerical study. The cutters of plow penetrated in the coal for 4 mm at a rate of 0.016 m/s. According to the PFC manual, the local damping factor was 0.7. Three failure mechanism of coal during the fragmentation process by plow were modelled. The coal material beneath the cutters showed the elastic, plastic and fracturing behaviors in this analysis. In all the models, the plastic zone was fractured and some micro-cracks were induced but the elastic zone remained undamaged. It was observed that the tensile strength affected the failure mechanism of coal significantly and as it increased the extent of the fractured zone underneath the plow cutter decreased during the fragmentation process.

철근 콘크리트 기둥 발파시 수직하중에 따른 파쇄형태 및 파쇄체적 (Fracture formation and fracture Volume on Vertical Load by Blasting Demolition of Model Reinforced Concrete Pillars)

  • 박훈;송정언;김승곤
    • 화약ㆍ발파
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    • 제23권2호
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    • pp.45-56
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    • 2005
  • 본 연구에서는 철근 콘크리트 기둥 발파시 수직하중과 철근의 영향에 따른 파쇄형태 및 파쇄체적에 대해 축소모형실험을 수행하였다. 수직하중이 증가할수록 수직하중에 의한 수직방향의 인장균열 및 철근에 의한 수직방향의 균열이 발생하였으며, 2.0톤에서는 수직방향의 인장균열이 철근에 의한 수직방향의 균열보다 우세하게 나타났다. 또한 수직하중이 증가할수록 수직방향의 인장균열이 우세하여 철근의 휨정도는 감소하였다. 발파공수가 증가하여도 수직하중에 따른 평균 파쇄체적은 크게 증가하지 않았으며, 이는 철근이 파쇄체적에 영향을 미치는 것으로 판단된다. 따라서 콘크리트 기둥 발파시 수직하중은 콘크리트의 파쇄형태와 철근의 휨정도에 중요한 영향을 미치며 철근은 파쇄체적에 영향을 미친다. 그러므로 철근 콘크리트 기둥 발파해체시 수직하중과 철근의 영향에 따라 천공패턴 및 발파패턴을 조절해야 한다.