• 제목/요약/키워드: Longitudinal Reinforcement

검색결과 448건 처리시간 0.023초

프리캐스트 콘크리트 세그먼트의 구속효과를 고려한 비선형 해석 (Nonlinear Analysis considered Confinement Effect of Precast Concrete Segment)

  • 이헌민;김태훈;박재근;김영진;신현목
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.305-308
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    • 2008
  • 이 연구에서는 최근 연구가 활발히 진행되고 있는 조립식 프리캐스트 세그먼트 콘크리트 교각공법에서 사용되어지는 기성 콘크리트 세그먼트의 횡 방향 구속철근에 의한 구속효과에 대한 연구를 수행하였다. 일반적으로 횡방향 구속철근에 의한 콘크리트의 구속효과는 구속효과계수에 의하여 결정되며 구속효과계수는 유효 구속 콘크리트 단면적과 구속 콘크리트 단면적의 비로서 결정된다. 유효 구속 콘크리트 단면적은 횡 방향 구속철근간의 간격에서 발생하는 Arching action에 의하여 결정되어지며 구속 콘크리트 단면적은 교각의 주철근비에 의하여 결정되어진다. 그러나 프리캐스트 콘크리트 세그먼트의 경우 세그먼트 상, 하부에 존재하는 피복을 고려하여야 한다. 즉 최상단 및 최하단에 배근되는 횡방향 구속철근에서 상, 하부 콘크리트 표면의 피복까지의 구속효과를 고려하여야 한다. 이 연구에서는 이에 대한 고려 방법을 제안하였다. 제안한 프리케스트 구속효과를 고려한 콘크리트 재료 모델을 RCAHEST에 적용하여 그 타당성을 검증하였다.

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용접철망을 사용한 반두께 P.C.슬래브의 휨 및 연성거동 (The Flexural Behavior including Ductility of Half Precast Concrete Slab with Welded Deformed Wire Fabric)

  • 이광수;최종수;조민형;신성우
    • 콘크리트학회지
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    • 제6권4호
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    • pp.153-160
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    • 1994
  • 본 연구는 용접철망을 사용한 반두께 프리캐스트 콘크리트 슬래브의 휨내력 평가 및 연성능력 검토를 위하여 총 10개의 일방향 반두께 프리캐스트 콘크리트 슬래브를 제작하여 2점 단순 재하를 하였다. 주요변수로서는 상부콘크리트 압축강도, 반두께 슬래브의 표면거칠기, 그리고 인장철근비로 구성되었으며, 실험결과는 다음과 같다. 반두께 프리캐스트 콘크리트 슬래브의 휨설계는 국내 극한강도 설계법에 의한 슬래브 설계방식의 사용이 가능한 것으로 나타났다. 슬래브에 $4000kg/cm^2$이상의 용접철망을 사용할 경우 기존의 규준에 따라 항복응력도를 변형율 0.0035에 해당하는 응력도를 사용하는 것이 안정적인 것으로 나타났다. 용접철망을 사용한 슬래브의 경우 철근 콘크리트 연성평가에 따라 분석한 결과 연성부담능력이 저하되어 용접철망을 경우에는 연성증진을 위한 일반철근을 혼용하는 것이 바람직한 것으로 판단된다.

Microstructural changes of polyacrylonitrile-based carbon fibers (T300 and T700) due to isothermal oxidation (1): focusing on morphological changes using scanning electron microscopy

  • Oh, Seong-Moon;Lee, Sang-Min;Kang, Dong-Su;Roh, Jae-Seung
    • Carbon letters
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    • 제18권
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    • pp.18-23
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    • 2016
  • Polyacrylonitrile (PAN)-based carbon fibers have high specific strength, elastic modulus, thermal resistance, and thermal conductivity. Due to these properties, they have been increasingly widely used in various spheres including leisure, aviation, aerospace, military, and energy applications. However, if exposed to air at high temperatures, they are oxidized, thus weakening the properties of carbon fibers and carbon composite materials. As such, it is important to understand the oxidation reactions of carbon fibers, which are often used as a reinforcement for composite materials. PAN-based carbon fibers T300 and T700 were isothermally oxidized in air, and microstructural changes caused by oxidation reactions were examined. The results showed a decrease in the rate of oxidation with increasing burn-off for both T300 and T700 fibers. The rate of oxidation of T300 fibers was two times faster than that of T700 fibers. The diameter of T700 fibers decreased linearly with increasing burn-off. The diameter of T300 also decreased with increasing burn-off but at slower rates over time. Cross-sectional observations after oxidation reactions revealed hollow cores in the longitudinal direction for both T300 and T700 fibers. The formation of hollow cores after oxidation can be traced to differences in the fabrication process such as the starting material and final heat treatment temperature.

철근콘크리트 교각의 연성도 평가를 위한 비선형해석 (Nonlinear Analysis of RC Bridge Columns for Ductility Evaluation)

  • 손혁수;이재훈
    • 한국지진공학회논문집
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    • 제7권4호
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    • pp.39-49
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    • 2003
  • 본 연구는 철근콘크리트 교각에 대한 새로운 내진설계법을 개발하기 위한 연구의 일환으로서, 축력과 함께 반복 횡하중을 받는 철근콘크리트 교각의 모멘트-곡률 포락곡선 및 하중-변위 포락곡선을 얻기 위한 비선형 해석방법을 제시한다. 철근콘크리트 교각의 내진성능에 영향을 미치는 주요변수들에 대한 기존의 해석모델을 적용하였으며, 국내ㆍ외에서 수행된 나선철근 및 원형띠철근 기둥의 준정적 실험결과와의 비교 분석을 통하여 실험결과와 유사한 해석결과를 제공할 수 있도록 기존의 해석모델을 일부 수정 제안하였다. 해석에는 횡방향 구속효과를 고려한 콘크리트 모델, 반복하중을 받는 철근의 포락선 모델, 축방향철근의 부착슬립 모델, 전단변형 모델 등을 적용하였다. 제안된 해석방법은 실험결과를 비교적 잘 예측할 수 있는 것으로 평가되며, 특히 변형능력 및 연성도에 대하여는 실험결과에 비하여 안전측의 결과를 제공한다.

Investigations of different steel layouts on the seismic behavior of transition steel-concrete composite connections

  • Qi, Liangjie;Xue, Jianyang;Zhai, Lei
    • Advances in concrete construction
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    • 제8권3호
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    • pp.173-185
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    • 2019
  • This article presents a comparative study of the effect of steel layouts on the seismic behavior of transition steel-concrete composite connections, both experimental and analytical investigations of concrete filled steel tube-reinforced concrete (CFST-RC) and steel reinforecd concrete-reinforced concrete (SRC-RC) structures were conducted. The steel-concrete composite connections were subjected to combined constant axial load and lateral cyclic displacements. Tests were carried out on four full-scale connections extracted from a real project engineering with different levels of axial force. The effect of steel layouts on the mechanical behavior of the transition connections was evaluated by failure modes, hysteretic behavior, backbone curves, displacement ductility, energy dissipation capacity and stiffness degradation. Test results showed that different steel layouts led to significantly different failure modes. For CFST-RC transition specimens, the circular cracks of the concrete at the RC column base was followed by steel yielding at the bottom of the CFST column. While uncoordinated deformation could be observed between SRC and RC columns in SRC-RC transition specimens, the crushing and peeling damage of unconfined concrete at the SRC column base was more serious. The existences of I-shape steel and steel tube avoided the pinching phenomenon on the hysteresis curve, which was different from the hysteresis curve of the general reinforced concrete column. The hysteresis loops were spindle-shaped, indicating excellent seismic performance for these transition composite connections. The average values of equivalent viscous damping coefficients of the four specimens are 0.123, 0.186 and 0.304 corresponding to the yielding point, peak point and ultimate point, respectively. Those values demonstrate that the transition steel-concrete composite connections have great energy dissipating capacity. Based on the experimental research, a high-fidelity ABAQUS model was established to further study the influence of concrete strength, steel grade and longitudinal reinforcement ratio on the mechanical behavior of transition composite connections.

HP-CRTM 성형공법을 적용하기 위한 NCF 복합재 적층구조에 따른 인장특성 분석 (Tensile Property Analysis of NCF Composite Laminated Structure for HP-CRTM Forming Process)

  • 변기석;신유정;정한규;박시우;노춘수;제진수;권기철
    • 한국기계가공학회지
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    • 제18권1호
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    • pp.59-64
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    • 2019
  • In recent years, the HP-CRTM method, which has the ability to produce carbon fiber-reinforce plastic composites at high speeds, has come into the spotlight in the automotive parts industry, which demands high productivity. Multi-axial carbon fabric, an intermediate material used in this HP-CRTM molding process, consists of layered fibers without crimp, which makes it better in terms of tensile and shear strength than the original woven fabrics. The NCF (non-crimp fabric) can form the layers of the carbon fiber, which have different longitudinal and lateral directions, and ${\pm}{\theta}$ degrees, depending on the product's properties. In this research, preforms were made with carbon fibers of ${\pm}45^{\circ}$ and $0/90^{\circ}$, which were lamination structures under seven different conditions, in order to create the optimal laminated structure for automobile reinforcement center floor tunnels. Carbon fiber composites were created using each of the seven differently laminated preforms, and polyurethane was used as the base material. The specimens were manufactured in accordance with the ASTM D3039 standards, and the effect of the NCF lamination structure on the mechanical properties was confirmed by a tensile test.

강섬유 혼입률에 따른 철근콘크리트 외부 보-기둥 접합부의 내진성능에 대한 실험적 연구 (An Experimental Study on the Seismic Performance of Reinforced Concrete Exterior Beam-Column Joint with Steel Fiber Volume Fractions)

  • 이장재;배백일;최창식
    • 대한건축학회논문집:구조계
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    • 제34권4호
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    • pp.15-23
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    • 2018
  • The purpose of this study is to evaluate the anchorage capacity of longitudinal bars for reinforced concrete exterior beam - column joints with steel fiber volume fractions. For this purpose, the steel fiber volume fraction was set to 0, 1, 2%, and the performance was compared with that of each other specimens. According to the test results, the maximum strength of EX-HK-NJR-0 decreased by 13% compared with the control specimen and EX-HK-NJR-1 decreased by 3% compared to the control specimen. However, when 2% of steel fiber was mixed, the maximum strength increased about 56% compared to the control specimen. The energy dissipation capacity of EX-HK-NJR-0 (when no transverse steel bars are placed) decreased by 61% compared to the control specimen. In addition, the energy dissipation capacity of the specimens with a steel fiber content of 1% decreased by 5% and 2% increased by 94% compared to control specimen. EX-HK-NJR-1,2 and the control specimen EX-HK-JR-0 experienced yielding of the reinforcing bars at the column interface before maximum strength development. However, when the EX-HK-NJR-0, the reinforcing bars at the column interface experienced yielding after maximum strength development. Therefore, reinforcement of steel fiber is considered to reduce the required development length for yielding of steel bars.

An analytical model for PVC-FRP confined reinforced concrete columns under low cyclic loading

  • Fang, Yuan;Yu, Feng;Chen, Anchun;Wang, Shilong;Xu, Guoshi
    • Structural Engineering and Mechanics
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    • 제77권2호
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    • pp.179-196
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    • 2021
  • Experimental investigations on the seismic behaviors of the PVC-FRP Confined Reinforced Concrete (PFCRC) columns under low cyclic loading are carried out and two variable parameters including CFRP strips spacing and axial compression ratio are considered. The PFCRC column finally fails by bending and is characterized by the crushing of concrete and yielding of the longitudinal reinforcement, and the column with a high axial compression ratio is also accompanied by the cracking of the PVC tube and the fracture of CFRP strips. The hysteretic curves and skeleton curves of the columns are obtained from the experimental data. With the increase of axial compression ratio, the stiffness degradation rate accelerates and the ductility decreases. With the decrease of CFRP strips spacing, the unloading sections of the skeleton curves become steep and the ductility reduces significantly. On the basis of fiber model method, a numerical analysis approach for predicting the skeleton curves of the PFCRC columns is developed. Additionally, a simplified skeleton curve including the elastic stage, strengthening stage and unloading stage is suggested depending on the geometric drawing method. Moreover, the loading and unloading rules of the PFCRC columns are revealed by analyzing the features of the skeleton curves. The quantitative expressions that are used to predict the unloading stiffness of the specimens in each stage are proposed. Eventually, an analytical model for the PFCRC columns under low cyclic loading is established and it agrees well with test data.

Bond-slip behaviour of H-shaped steel embedded in UHPFRC

  • Huang, Zhenyu;Huang, Xinxiong;Li, Weiwen;Chen, Chufa;Li, Yongjie;Lin, Zhiwei;Liao, Wen-I
    • Steel and Composite Structures
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    • 제38권5호
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    • pp.563-582
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    • 2021
  • The present study experimentally and analytically investigated the push-out behaviour of H-shaped steel section embedded in ultrahigh-performance fibre-reinforced concrete (UHPFRC). The effect of significant parameters such as the concrete types, fibre content, embedded steel length, transverse reinforcement ratio and concrete cover on the bond stress, development of bond stress along the embedded length and failure mechanism has been reported. The test results show that the bond slip behaviour of steel-UHPFRC is different from the bond slip behaviour of steel-normal concrete and steel-high strength concrete. The bond-slip curves of steel-normal concrete and steel-high strength concrete exhibit brittle behaviour, and the bond strength decreases rapidly after reaching the peak load, with a residual bond strength of approximately one-half of the peak bond strength. The bond-slip curves of steel-UHPFRC show an obvious ductility, which exhibits a unique displacement pseudoplastic effect. The residual bond strength can still reach from 80% to 90% of the peak bond strength. Compared to steel-normal concrete, the transverse confinement of stirrups has a limited effect on the bond strength in the steel-UHPFRC substrate, but a higher stirrup ratio can improve cracking resistance. The experimental campaign quantifies the local bond stress development and finds that the strain distribution in steel follows an exponential rule along the steel embedded length. Based on the theory of mean bond and local bond stress, the present study proposes empirical approaches to predict the ultimate and residual bond resistance with satisfactory precision. The research findings serve to explain the interface bond mechanism between UHPFRC and steel, which is significant for the design of steel-UHPFRC composite structures and verify the feasibility of eliminating longitudinal rebars and stirrups by using UHPFRC in composite columns.

Experimental investigation on UHPC beams reinforced with GFRP and steel rebars and comparison with prediction equations

  • Parvin, Yousef Abbasi;Shaghaghi, Taleb Moradi;Pourbaba, Masoud;Mirrezaei, Seyyed Saeed;Zandi, Yousef
    • Advances in concrete construction
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    • 제14권1호
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    • pp.45-55
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    • 2022
  • In this article, the flexural and shear capacity of ultra-high-performance fiber-reinforced concrete beams (UHPFRC) using two kinds of rebars, including GFRP and steel rebars, are experimentally investigated. For this purpose, six UHPFRC beams (250 × 300 × 1650 mm) with three reinforcement ratios (ρ) of 0.64, 1.05, and 1.45 were constructed using 2% steel fibers by volume. Half of the specimens were made of UHPFRC reinforced with GFRP rebars, while the other half were reinforced with conventional steel rebars. All specimens were tested to failure in four-point bending. Both the load-deformation at mid-span and the failure pattern were studied. The results showed that utilizing GFRP bars increases the flexural strength of UHPFRC beams in comparison to those made of steel bars, but at the same time, it reduces the post-cracking strain hardening. Furthermore, by increasing the percentage of longitudinal bars, both the post-cracking strain hardening and load-bearing capacity increase. Comparing the experiment results with some of the available equations and provisions cited in the valid design codes reveals that some of the equations to predict the flexural strength of UHPFRC beams reinforced with conventional steel and GFRP bars are reasonably conservative, while Khalil and Tayfur model is un-conservative. This issue makes it essential to modify the presented equations in this research for predicting the flexural strength of UHPFRC beams using GFRP bars.