• 제목/요약/키워드: SPS(Strut as Permanent System)

검색결과 4건 처리시간 0.016초

구조물 겸용 흙막이 스트러트 공법의 개선 연구 (A Study on the Technological Improvement of Strut as a Permanent Structure)

  • 김선국;홍원기
    • 한국건설관리학회논문집
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    • 제9권5호
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    • pp.186-193
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    • 2008
  • 흙막이를 지지하는 버팀대를 가설재가 아닌 주(主)구조체로 이용하는 SPS(Strut as a Permanent System) 공법이 개발되어 최근 국내 공사현장에서 활발하게 활용되고 있다. 이 공법은 건축공사 현장에서 원가절감, 공기단축, 구조적 안정성 향상, 건설환경 개선 등 다양한 이점을 주는 반면 지하층고의 증가와 철골부위 내화피복을 추가로 수행하여야 하는 문제점이 있다. 지하층고의 증가는 흙막이 깊이 및 지하 최저부위 굴착량 증가의 문제점을 유발하고, 내화피복 공사는 공사환경을 열악하게 함은 물론 공사비 증대의 요인이 된다. 따라서 본 연구는 SPS 공법의 문제점을 개선한 모듈화된 철골철근 복합 구조시스템(modularized hybrid structure system)을 제안하는 것을 목적으로 한다. 제안된 공법은 구성원리와 함께 실험을 통하여 구조적 성능을 검증되고 다양한 공사조건을 만족시키는 시공성능이 분석된다.

구조물 겸용 흙막이 스트러트 공법 (Development of Struts for Soil Shuttering as a Permanent System)

  • 홍원기;김선국;김희철
    • 한국건설관리학회논문집
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    • 제5권3호
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    • pp.71-78
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    • 2004
  • In conventional method of supporting soil shuttering wall during excavation a system of struts and wales to provide cross-lot bracing is common in trench excavations and other excavations of limited width. This method, however, becomes difficult and costly to be adopted for large excavations since heavily braced structural systems are required. Another expensive and unsafe situations are expected when temporary struts must be removed for the construction of underground structures. This paper introduces innovative strut systems which can be used as permanent underground structures after its role as brace system to resist earth pressure during excavation phase. Underground structural system suggested from architect is checked against the soil lated pressures before the analysis of stresses developed from gravity loads. In this technology, named SPS(Struts as Permanent System), retaining wall is installed first and excavation proceeds until the first level of bracing is reached. Braces used as struts during excavation will serve as permanent girders when buildings are in operation. Simultaneous construction of underground and superstructure can proceeds when excavation ends with the last level of braces being installed. In this paper, construction sequence and the calculation concept are explained in detail with some photo illustrations. SPS technology was applied to three selected buildings. One of them was completed and two others are being constructed Many sensors were installed to monitor the behavior of retaining wall, braces as column in terms of stress change and displacement. Adjacent ground movement was also obtained. These projects demonstrate that SPS technology contributes to the speed as well as the economy involved in construction.

지하굴착공사에 적용되는 버팀 시스템의 변화와 적용 사례연구 (A Case Study on the Application and History of Stuts System using the Underground Excavation Construction)

  • 이중재;정경식;노배영;김홍택
    • 기술발표회
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    • 통권2006호
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    • pp.54-65
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    • 2006
  • Since timbering of a cut in association with underground excavtion work is introduced to domestic, in spite of limitation of special quality in this method, time change, variety of construction, Strut Method is still considered with general methods. Experts have developed methods which is improved in limitation of special quality by continuous studies of normal strut method in basic, and it has been applied to construction site Consequently, this study introduced improved Strut Method to help experts when they select resonable methods with regard to construction site, conditions

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현장 조건에 따른 Top-Down 공법 사례분석에 관한 연구 (Analysis of Cases Using Top-Down Construction Method Under Various Site Condition)

  • 신현정;신규철
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2011년도 춘계 학술논문 발표대회 1부
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    • pp.197-199
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    • 2011
  • To utilize the Top-Down construction method, it is required to analyse building area, floors, and soil conditions to choose the three basic elements of retaining wall, base column, and floor structure. The purpose of this research is to compare the methods of Top-Down with other construction methods. The research method is to analyse the project conditions of Top-Down project cases. The aim is to develop a method of selecting alternatives, considering construction characteristics, work schedule, supporting methods, foundation types.

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