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Design and Full Size Flexural Test of Spliced I-type Prestressed Concrete Bridge Girders Having Holes in the Web

분절형 복부 중공 프리스트레스트 콘크리트 교량 거더의 설계 및 실물크기 휨 실험 분석

  • 한만엽 (아주대학교 환경건설교통공학부) ;
  • 최석환 (국민대학교 건설시스템공학부) ;
  • 전용식 (아주대학교 환경건설교통공학부)
  • Received : 2010.12.27
  • Accepted : 2011.04.01
  • Published : 2011.06.30

Abstract

A new form of I-type PSC bridge girder, which has hole in the web, is proposed in this paper. Three different concepts were combined and implemented in the design. First of all, a girder was precast at a manufacturing plant as divided pieces and assembled at the construction site using post-tensioning method, and the construction period at the site will be reduced dramatically. In this way, the quality of concrete can be assured at the manufacturing factory and concrete curing can be well controlled, and the spliced girder segments can be moved to the construction site without a transportation problem. Secondly, a numerous number of holes was made in the web of the girder. This reduces the self-weight of the girder. But more important thing related to the holes is that about half of the total anchorages can be moved from the girder ends into individual holes. The magnitude of negative moment developed at girder ends will be reduced. Also, since the longitudinal compressive stresses are reduced at ends, thick end diaphragm is not necessary. Thirdly, Prestressing force was introduced into the member through multiple stages. This concept of multi-stage prestressing method overcomes the prestressing force limit restrained by the allowable stresses at each loading stage, and maximizes the magnitude of applicable prestressing force. It makes the girder longer and shallower. Two 50 meter long full scale girders were fabricated and tested. One of them was non-spliced, or monolithic girder, made as one piece from the beginning, and the other one was assembled using post-tensioning method from five pieces of segments. It was found from the result that monolithic and spliced girder show similar load-deflection relationships and crack patterns. Girders satisfied specific girder design specification in flexural strength, deflection, and live load deflection control limit. Both spliced and monolithic holed web post-tensioned girders can be used to achieve span lengths of more than 50m with the girder height of 2 m.

I형 PSC 거더에 새로운 설계 개념을 도입하여 낮은 형고의 장경간 거더를 설계하고, 실험을 통해서 적용성을 점검하였다. 본 연구에서 제안하는 거더는 복부에 개구부를 도입한 분절형 중공 프리캐스트 프리스트레스트 콘크리트 거더(HWPC거더, Holed Web Prestressed Concrete girders)이다. 이 거더의 설계에는 세 가지 설계 개념이 종합적으로 적용되었다. 먼저 장경간의 거더를 공장에서 프리캐스트로 타설하여 양생을 마친 후에 현장으로 운반하는 방법을 채택하여 현장에서 거더를 제작하는 경우보다 콘크리트의 품질 관리가 용이하게 하여 고강도 및 고성능 콘크리트를 적용하는 것이 가능하게 하였다. 또한 거더를 분절화하여 제작하여 국내의 도로 여건에서도 장경간 거더를 공장에서 현장으로 이동시킬 수 있게 하였다. 이로써 현장에서의 작업 기간도 단축시킬 수 있다. 두 번째로 거더의 복부에 원형의 개구부를 도입하여, 단부 정착장치의 반을 이 개구부 내에 이동하여 분산 배치하여, 분절 거더의 조립에 사용하였다. 개구부에 정착부를 분산 배치하면 단부에 설치되는 정착장치가 줄어들게 되므로 단부에 작용하는 응력이 줄어들게 된다. 아울러 자연스레 단부에 도입되는 휨모멘트는 줄어들고, 중앙부에 큰 휨모멘트가 도입되므로 외력으로 인한 휨모멘트 분포에 더 가까운 형상의 부모멘트를 거더에 도입할 수 있다. 거더에 개구부를 도입하면 거더 자중도 줄어든다. 그리고, 세째로 단부에 설치되는 정착구의 수가 줄기 때문에 단부에서는 다이아프램을 제거하고도 정착이 가능하다. 이렇게 거더의 전 단면에 걸쳐서 같은 폭의 복부폭을 사용하면 거더 제작을 자동화 하는데도 도움이 될 것이다. HWPC거더의 설계 기법을 검증하고, 다단계 긴장의 효과 및 실제교량에 적용할 때 발생할 수 있는 문제점을 고찰하기 위하여 실물 실험을 수행하였다. 길이 50 m, 높이 2 m인 거더 실험체를 분절형과 일체형으로 각각 1개씩 제작하여 휨실험을 수행하고, 결과를 비교하여 분석하였다. 분절형 거더와 일체형 거더는 처짐 및 균열생성 형상에서 근본적으로 유사하였다. 휨 강도, 처짐, 활하중 처짐제한 규정 등이 특정 설계기준을 만족하도록 설계하는 것이 가능하였다.

Keywords

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