• 제목/요약/키워드: Bottom flange

검색결과 98건 처리시간 0.023초

장경간 Spliced PSC 거더교량의 개발 (Development of Long Span Spliced PSC Girder Bridges)

  • 심종성;한만엽;오흥섭;김정구;김민수
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1998년도 가을 학술발표대회 논문집(III)
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    • pp.680-685
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    • 1998
  • Prestressed concrete I-girders were used in the bridge applications in the early 1950s. During the last four decades, the most widely used girder length of bridges have been below 30meters. The main objective of this study is to develope the alternative section for long span bridge which exceed 40 meters. The developed Bulb-Tee girder has a wide bottom flange to enhance the compressive strength and to allow placement of a large number of strands in the bottom flange. New bulb-tee shaped PSC girder sections are proposed in this paper. Splicing the technique for long span bridge girder to reduce the self weight is also proposed.

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Composite Hollow Bushing의 접합기술에 관한 연구 (A Study on Bonded Joints of Composite Hollow Bushing)

  • 조한구;강형경;유대훈
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 하계학술대회 논문집 Vol.9
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    • pp.493-494
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    • 2008
  • During the last years hollow core insulators started their success story in the field of high voltage engineering for electrical apparatus, substituting porcelain insulators. The termination, also named top and bottom fittings are used for the connection to the rest of the electrical apparatus. The top and bottom flange are attached to the composite to transmit mechanical load and also ensure the gas tightness. They are bonded by epoxy glue with a glass transition temperature of about $130^{\circ}C$-$150^{\circ}C$ the glass reinforced epoxy tube of filament winding. This paper describes the results of a study on the bonded joints of fiber reinforced epoxy tube and cast aluminum. This suggests that surface roughness and glue types play an important role in evaluating of gas sealing capability on the flange and fiber reinforced epoxy tube in the composite hollow bushing.

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A case study of protecting bridges against overheight vehicles

  • Aly, Aly Mousaad;Hoffmann, Marc A.
    • Steel and Composite Structures
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    • 제43권2호
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    • pp.165-183
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    • 2022
  • Most transportation departments have recognized and developed procedures to address the ever-increasing weights of trucks traveling on bridges in a service today. Transportation agencies also recognize the issues with overheight vehicles' collisions with bridges, but few stakeholders have definitive countermeasures. Bridges are becoming more vulnerable to collisions from overheight vehicles. The exact response under lateral impact force is difficult to predict. In this paper, nonlinear impact analysis shows that the degree of deformation recorded through the modeling of the unprotected vehicle-girder model provides realistic results compared to the observation from the US-61 bridge overheight vehicle impact. The predicted displacements are 0.229 m, 0.161 m, and 0.271 m in the girder bottom flange (lateral), bottom flange (vertical), and web (lateral) deformations, respectively, due to a truck traveling at 112.65 km/h. With such large deformations, the integrity of an impacted bridge becomes jeopardized, which in most cases requires closing the bridge for safety reasons and a need for rehabilitation. We proposed different sacrificial cushion systems to dissipate the energy of an overheight vehicle impact. The goal was to design and tune a suitable energy absorbing system that can protect the bridge and possibly reduce stresses in the overheight vehicle, minimizing the consequences of an impact. A material representing a Sorbothane high impact rubber was chosen and modeled in ANSYS. Out of three sacrificial schemes, a sandwich system is the best in protecting both the bridge and the overheight vehicle. The mitigation system reduced the lateral deflection in the bottom flange by 89%. The system decreased the stresses in the bridge girder and the top portion of the vehicle by 82% and 25%, respectively. The results reveal the capability of the proposed sacrificial system as an effective mitigation system.

Web-shear strength of steel-concrete composite beams with prestressed wide flange and hollowed steel webs: Experimental and practical approach

  • Han, Sun-Jin;Kim, Jae Hyun;Choi, Seung-Ho;Heo, Inwook;Kim, Kang Su
    • Structural Engineering and Mechanics
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    • 제84권3호
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    • pp.311-321
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    • 2022
  • In the buildings with long spans and high floors, such as logistics warehouses and semiconductor factories, it is difficult to install supporting posts under beams during construction. Therefore, the size of structural members becomes larger inevitably, resulting in a significant increase in construction costs. Accordingly, a prestressed hybrid wide flange (PHWF) beam with hollowed steel webs was developed, which can reduce construction costs by making multiple openings in the web of the steel member embedded in concrete. However, since multiple openings exist and prestress is introduced only into the bottom flange concrete, it is necessary to identify the shear resistance mechanism of the PHWF beam. This study presents experimental shear tests of PHWF beams with hollowed steel webs. Four PHWF beams with cast-in-place (CIP) concrete were fabricated, with key variables being the width and spacing of the steel webs embedded in the concrete and the presence of shear reinforcing bars, and web-shear tests were conducted. The shear behavior of the PHWF beam, including crack patterns, strain behavior of steel webs, and composite action between the prestressed bottom flange and CIP concrete, were measured and analyzed comprehensively. The test results showed that the steel web resists external shear forces through shear deformation when its width is sufficiently large, but as its width decreased, it exerted its shear contribution through normal deformation in a manner similar to that of shear reinforcing bars. In addition, it was found that stirrups placed on the cross section where the steel web does not exist contribute to improving the shear strength and deformation capacity of the member. Based on the shear behavior of the specimens, a straightforward calculation method was proposed to estimate the web-shear strength of PHWF beams with CIP concrete, and it provided a good estimation of the shear strength of PHWF beams, more accurate than the existing code equations.

시공단계를 고려한 콘크리트-콘크리트 합성형 PSC 박스거더 교량의 해석 (A Study on the Analysis of PSC Box Girder Bridge Considering Construction Stage in Box Section)

  • 김영진;김병석;강재윤
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1998년도 가을 학술발표대회 논문집(III)
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    • pp.694-700
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    • 1998
  • PSC box bridge by MSS construction method may not be set at cross section at one step. Web and bottom flange(U member) would be set at first, top flange will be set later with a time lag. In this case, U member and top flange concrete have different strain history. As two different aged section behaves as the composite section, there would happen the redistribution of stress. This is come from time-dependent strain characteristics of concrete itself. In this study, two models are considered, one with considering the set time of cross section and the other without. By performing longitudinal analysis of two models on considering construction stage, the stress differences of two are compared. As the analysis results show a considerable differences in the stresses of cross section between two models, the set time of cross section is needed for rational design f PSC box girder bridge.

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고속전철 PSC 박스거더 교량의 합성거동에 관한 연구 (A Study on the Behavior of Composite PSC Box Girder High-speed Railway Bridges)

  • 김영진;김병석;강재윤
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 1998년도 추계학술대회 논문집
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    • pp.54-60
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    • 1998
  • PSC box bridges by MSS construction method in high-speed railway may not be cast in place at one step. Web and bottom flange(U member) in the cross section are cast in place at first, then top flange will be cast in place later with some time lag. In this section, stress distributions of U member and top flange are different with those in generally complete cast in place cross section. In the composite section composed of two different aged members, the redistribution of stresses takes place. This results from time-dependent strain characteristics of concrete and the effects of forces applied at the various stages. For comparison in the present paper, two models, one with the composite cross section and the other with generally complete cast in place cross section, are analyzed. The longitudinal stress differences of two models on considering construction stages are compared. As the analysis results show the considerable differences in the stresses of cross section between two models, the composition of cross section is considered for rational design of PSC box girder bridge.

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매립형 역T형 합성보의 휨내력에 관한 실험적 연구 (An Experimental Study on Flexural Strength of Inverted T-shaped Composite Beams encased with concrete)

  • 장희성;정재훈;김진무;주경재
    • 한국구조물진단유지관리공학회 논문집
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    • 제4권3호
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    • pp.145-152
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    • 2000
  • In simply supported composite beams, the neutral axis of the composite cross section is usually located near the top flange of the steel H-shape, so that the top flange does not impart much strength to the member. This suggests that omitting the top flange entirely could be a means to lower the cost of the beam without greatly reducing the strength. However, It is not easy for inverted T-shaped composite beam to construct and to apply continuous beam which has negative bending moment. As a result, it would get more workability and decrease capability of lateral buckling and local buckling, if the bottom flange of inverted T-shaped steel used as a form. Therefore. the objectives of this study are to investigate strength and behaviors of inverted T-shaped composite beam which web is encased by concrete and to grasp bending capacity and efficiency of composite by comparing and analyzing in test piece.

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Cyclic behavior of jumbo reduced beam section connections with heavy sections: Numerical investigation

  • Qi, Liangjie;Liu, Mengda;Shen, Zhangpeng;Liu, Hang
    • Earthquakes and Structures
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    • 제23권2호
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    • pp.183-196
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    • 2022
  • Reduced beam section (RBS) moment connections used in special moment resisting frames are currently limited to beam sections that are not larger than nominal depths of 920 mm, weight of 447 kg/m and flange thickness of 44 mm. Due to the higher demand for structural components with jumbo sections, which can potentially be applied in the transfer girders in long-span building structures, the newly available steel heavy members are promising. To address this issue, advanced numerical models are developed to fully evaluate the distribution of stresses and concentrations of plastic strains for such jumbo RBS connections. This paper first presents a brief overview of an experimental study on four specimens with large beam and column sections. Then, a numerical model that includes initial imperfections, residual stresses, geometric nonlinearity, and explicitly modeled welds is presented. The model is used to further explore the behavior of the test specimens, including distribution of stresses, distribution of plastic strains, stress triaxiality and potential for fracture. The results reveal that the stresses are highly non-uniform across the beam flange and, similarly, the plastic strains concentrate at the extreme fiber of the bottom flange. However, neither of these phenomena, which are primarily a function of beam flange thickness, is reflected in current design procedures.

구속 건조수축을 고려한 PSC BOX 거더교 상부플랜지 균열폭 산정 (Calculation of Crack Width of the Top Flange of PSC Box Girder Bridge Considering Restraint Drying Shrinkage)

  • 구영호;한상묵
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권3호
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    • pp.30-37
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    • 2023
  • PSCB 거더교는 상하부 플랜지와 복부가 일체화된 폐합된 단면으로 일반적으로 거더와 바닥판이 분리된 교량과 구조적 특성이 상이하여 PSCB 거더교의 특성을 반영한 유지관리 방안이 필요하다. 고속도로 PSCB 거더교의 정밀안전진단 보고서를 수집하여 손상 유형을 분석한 결과, 공용 중 발생되는 열화·손상은 대부분 상부플랜지에 집중되어 있다. 특히 상부플랜지 하면의 교축방향 균열은 분석대상 PSCB 거더교의 약 70 %에서 발생되었고, 이는 외부하중에 의한 구조적 균열 보다 수화열, 건조수축 등 간접하중에 의한 균열로 판단된다. 공용중인 PSCB 거더교의 내구성 향상 및 유지관리 비용 절감 등을 위해서는 설계단계부터 구속 건조수축 균열의 제어가 필요하다. 따라서 본 논문에서는 PSCB 거더교 상부플랜지 하면 균열의 주요 원인인 구속 상태에서의 건조수축으로 인하여 발생되는 균열에 대하여 Gilbert Model을 이용하여 직접 계산하고, 철근량, 철근직경 및 간격 등 영향인자를 분석하였다. 분석결과, 간접하중으로 인하여 발생되는 균열폭은 H16 철근 기준 철근비 0.01 이하, 철근비 0.01 기준 H19보다 직경이 큰 철근의 경우 허용 균열폭 0.2 mm를 초과하는 것으로 나타났으며, 최종적으로 균열폭 검토 결과를 바탕으로 PSCB 거더교 상부플랜지의 균열폭 제어 방안을 제안하였다.

바닥슬래브를 고려한 용접철골모멘트접합부의 내진보강 (Seismic Retrofit of Welded Steel Moment Connections Considering the Presence of Composite Floor Slabs)

  • 이철호;김성용
    • 한국강구조학회 논문집
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    • 제29권1호
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    • pp.25-36
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    • 2017
  • 1994년 노스리지 지진 당시 발생한 용접모멘트 접합부의 취성파괴는 주로 보 하부 플랜지에서 발생하였다. 특히 국내 기존 용접철골모멘트 접합부의 경우 과다한 전단스터드 배치에 따른 의도치 않은 합성작용로 인해 지진 내습 시 보 하부 플랜지의 취성파단이 더욱 우려되는 실정이다. 본 논문에서는 합성효과로 인한 접합부 성능저하를 개선하기 위한 목적으로 중량전단탭/수평헌치/삼각헌치로 보강된 접합부 및 RBS가 도입된 접합부에 대한 실험을 실시하였다. 통상 기존 접합부 상부 플랜지의 수정이 불가하다는 점을 고려하여, 본 연구에서는 보 하부 플랜지에만 수평/삼각헌치를 보강하거나 RBS를 도입하여 이 때의 내진성능을 평가하였다. 실물대 실험 결과 수평/삼각헌치 혹은 중량전단탭으로 보강한 실험체는 모두 합성작용으로 인한 부작용을 극복하고 특수모멘트접합부가 요구하는 수준 이상의 소성회전각 5%이상을 발현함을 확인하였다. 또한 SRC 기둥에 RBS를 도입할 경우 접합부에 소요되는 변형의 대부분을 RBS측에서 일어나도록 유도함으로써 SRC기둥에 발생하는 손상을 방지하는 효과가 있음을 규명하였다. 이 중 중량전단탭 보강에 따른 접합부의 거동을 분석하기 위하여 추가의 수치해석 연구를 실시하였으며, 제시한 각각의 보강안에 대한 권장상세를 제시하였다.