콘크리트 구조의 인장 보강재로 주로 사용되는 철근은 높은 인장강도와 연성이 우수한 변형 특성에 도 불구하고 부식이 발생할 수 있다는 단점을 갖고 있다. 이러한 문제점을 개선하기 위하여 부식이 발 생하지 않는 다양한 재료 중 FRP(Fiber Reinforced Polymer)를 철근과 유사한 형태의 Rod로 제작하 여 철근을 대체하는 보강재로 사용하기 위한 연구가 진행되고 있다. 그중에서도 인장강도가 우수한 탄 소 및 유리섬유를 일방향으로 성형하고 Rod 표면을 굴곡 처리한 CFRP 및 GFRP 보강근을 중심으로 콘크리트 구조에 적용하기 위한 연구가 활발하게 진행되고 있다. 이 연구에서는 FRP Rod를 보강근으 로 하는 콘크리트 부재의 부착특성과 균열폭, 처짐과 같은 사용성 평가에 중요한 역할을 하는 인장강 화효과를 포함한 균열거동 특성을 파악하기 위하여 단변의 피복두께와 FRP 보강근 지름의 비를 1.0에 서 3.5 까지 0.5배씩 증가하는 직사각형 단면을 갖는 길이 1,000mm의 인장부재를 제작하여 만능재료 시험기(Universal Testing Machine)를 이용한 직접인장실험을 수행한 후, 피복두께와 FRP 보강근의 지름 비에 따른 균열거동(Cracking Behavior) 및 인장강화효과(Tension Stiffening Effect)를 분석하고 현행 설계기준의 규정과 비교하였다. 작용하중에 따라 발생하는 균열에 대해서 횡방향균열(Transverse Crack)과 쪼갬균열(Splitting Crack)로 각각 구분하고, DAQ(Data Acquisition) 시스템을 이용하여 콘 크리트 인장부재에 매입된 CFRP 및 GFRP 보강근의 변형량 및 작용하중을 측정하였으며, 그 결과로 부터 하중-변형률 관계로 대표되는 인장강화효과를 분석하였다. 균열거동 및 인장강화효과를 분석한 결과, CFRP 또는 GFRP Rod를 보강근으로 하는 콘크리트 인장부재는 FRP 보강근과 콘크리트의 부 착강도를 감소시키는 쪼갬균열이 발생하지 않도록 피복두께를 보강근 지름의 2.5배 이상 확보하였을 때, 각 보강근별로 극한강도 fu의 60-70%에 해당하는 하중이 작용하는 단계에서 인장강화효과는 우 수한 것으로 나타났으며, 철근을 보강근으로 하는 현행 설계기준의 규정으로 예측한 결과보다 우수한 인장강화효과를 얻을 수 있음을 확인하였다.
The purpose of this study is to review the available literature on the effectiveness of fibers in preventing early-age shrinkage cracking on cementitious concrete. The overview describes the widely used ASTM C1579 (Standard Test Method for Evaluating Plastic Shrinkage Cracking of Restrained Fiber Reinforced Concrete (Using a Steel Form Insert) for plastic shrinkage cracking. The past literature used crack length, width, or area to describe and quantify cracks on concrete specimens. To keep things simple, this review expresses the length, width or area as a percentage of the control specimen. Finally, the study establishes a relationship between fiber volume and aspect ratio on plastic shrinkage and compressive strength of concrete. It was concluded that fiber is sufficient enough to mitigate plastic shrinkage cracking. An increase in fiber volume and aspect ratio reduces the early-age cracking of concrete but harm its compressive strength.
The presence of technological voids in deep geological repositories for high-level radioactive nuclear waste can have negative effects on the hydro-mechanical properties of the engineered barrier system when groundwater infiltrates from the surrounding rock. This study conducted hydration tests along with image acquisition and X-ray CT analysis on compacted Korean bentonite samples, which simulated technological voids filling to investigate the behavior of fracturing (piping erosion) and cracking deterioration. We utilized a dual syringe pump to inject water into a cell consisting of a bentonite block and technological voids at a consistent flow rate. The results showed that water inflow to fill technological voids led to partial hydration and self-sealing, followed by the formation of an erosional piping channel along the wetting front. After the piping channel generated, the cyclic filling-piping stage is characterized by the repetitive accumulation and drop of water pressure, accompanied by the opening and closing of piping channels. The stoppage of water inflow leads to the formation of macro- and micro cracks in bentonite due to moisture migration caused by high suction pressure. These cracks create preferential flow paths that promote longterm groundwater infiltration. The experimental test and analysis are currently ongoing. Further experiments will be conducted to investigate the effects of different dry density in bentonite, flow rate, and chemical composition of injected water.
Cavitation can occur in pipes when liquid is moving at high velocity, especially at pittings where the smooth bore of the pipe is interrupted. The effect is usually to produce pitting on the downstream side of the turbulence. However, stress corrosion cracking behavior under cavitation erosion-corrosion was neatly unknown. In this study, therefore, some were investigated of stress corrosion cracking behavior, others were stress corrosion cracking behavior under cavitation erosion-corrosion of water injection. And datas obtained as the results of experiment were compared between the two. Mainresult obtained are as follows: 1) Stress corrosion cracking growth rate of heat affected zone under cavitation erosion-corrosion becomes most rapid, and stress intensity factor K1becomes most high. 2) Stress corrosion cracking growth mechanism by cavitation erosion-corrosion is judgement on the strength of the film rupture model and the tunnel model. 3) The range of potential as passivation of heat affected zone is less noble than that of base metal, and that value is smaller. 4) Corrosion potential under cavitation erosion-corrosion in loaded stress is less noble than that of stress corrosion, and corrosion current density is higher.
The effect of fluid flow on corrosion and erosion-corrosion of metal is a well-recognized phenomenon in pipelines and machinery equipment, and so on. Not only are fluid hydrodynamics important, but also the corrosiveness of the process or production stream affects the corrosion system. Recent research demonstrates that it is possible to erosion-corrosion(E/C) phenomena in terms of hydrodynamics, electrochemical corrosion kinetics and film growth/removal phenomena. Stress corrosion cracking behavior under cavitation erosion-corrosion of mild steel(SS41) was investigated of base metal and weldment under loaded stress. Main result obtained are as follows : 1) The cavitation erosion sensitivity of base metal affected weight loss is more susceptive than heat affected zone, 2) The corrosion sensitivity affected weight loss of welding heat cycle is less susceptive on stress corrosion under cavitation erosion-corrosion than stress corrosion.
A notch beam test has been carried out for SFRC-SCC for precast slab tracks in accordance with BS-EN-14651. The steel fiber used is a product of Beckert, which is further processed with a general steel fiber and a steel fiber end(named as 3D, 5D). Overall, the crack behavior of the specimen using 5D fiber was superior to that of using 3D fiber
In case of high performance fiber reinforced cementitious composite(HPFRCC) specimens with steel fiber of 30mm they exhibited poorer flexural strength than the straight fibers at a higher than 1.5% compared to steel fiber of 13mm and 19.5mm. In this study, Therefore we evaluated the flexural strength and cracking behavior of HPFRCC with steel fiber type such as fiber length, volume fraction.
Recently, there are increasing cases utilizing the composite slab with a deck-plate for the simplicity of construction process and shortening of the construction period by eliminating the formwork and reinforcement placing works. General method of an existing deck-plate slab places welded wire fabric(w.w.f) for the crack control by drying shrinkage, however it was pointed out as its potential possibility for a number of cracks. In this study, long-term cracking behavior of deck-plate slab with the steel fiber was evaluated on the continuous two-span slab specimens that was designed on the general building loading condition.
이 연구의 목적은 개착식 전력구 콘크리트에 발생하는 부등건조수축에 의한 균열특성을 파악하고, 그 제어방법을 제시하는데 있 다. 건조수축균열은 콘크리트 내부의 수분확산계수의 영향을 크게 받으며, 수분확산계수는 콘크리트 내부에서의 수분이동속도를 결정하는 주요인자이다. 수분확산계수와 더불어 콘크리트 표면의 표면계수와 외부의 상대습도는 콘크리트 내부에서 외부로의 수분이동에 영향을 미친 다. 따라서 이 연구에서는 전력구 박스형 콘크리트 구조물의 부등건조수축에 의한 균열특성을 파악하기 위하여 세 가지 주요영향인자를 고려 한 수치해석을 수행하였다. 수치해석 결과, 수분확산계수와 표면계수가 증가할수록 상부슬래브의 부등건조수축에 의한 균열발생시점이 빨라 지며, 세 가지 요인 중에 콘크리트의 부등건조수축에 의한 균열발생 특성에 가장 큰 영향을 미치는 것은 외기습도인 것으로 나타났다. 이 연구 결과를 분석한 결과, 개착식 전력구 시공시에 콘크리트 타설 후 표면보습이나 살수양생과 같이 외기습도를 증가시키는 것이 부등건조수축에 의한 균열제어에 가장 효과적인 것으로 판단되며, 콘크리트 재료적 측면의 균열저감방법으로 수분확산계수와 표면계수를 결정하는 콘크리트 의 배합이나 재료특성을 적절히 선정함으로써 균열의 진전속도나 발생시점을 제어할 수 있을 것으로 판단된다.