• 제목/요약/키워드: Pretension force

검색결과 45건 처리시간 0.023초

프리텐션 쏘일네일링 시스템의 안정해석 및 설계 (Stability Analysis and Design of the Pretension Soil Nailing System)

  • 박시삼;김홍택;최영근
    • 한국지반공학회논문집
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    • 제20권7호
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    • pp.197-206
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    • 2004
  • 쏘일네일링 공법을 도심지 지하굴착 공사에 있어, 지중매설물이 인접하여 존재하거나 대지경계선 등의 준수 등 시공조건에 따라서 설치네일의 길이가 제한되는 경우 및 연약한 지반을 보강할 경우 등과 같은 벽체변위 및 지표침하 억제와 안정성 증대 등을 위하여, 지반앵커공법과 유사한 프리텐션 방식의 도입이 필요한 실정이다. 지반앵커공법과 유사한 프리텐션 방식의 쏘일네일링 공법을 도입하게 될 경우, 단계별 굴착시 발생하는 변위를 최소화할 수 있을 것으로 예상되며 국부적인 안정성도 증대할 것으로 사료된다. 따라서, 본 연구에서는 단계별 굴착시 유발되는 벽체변위 및 침하량 등을 억제하기 위한 노력의 일환으로, 프리텐션 쏘일네일링 시스템을 개발하였다. 또한 최대 프리텐션하중 및 프리텐션 시스템의 안정성을 평가하기 위해, 영향원 반경, 다이레이턴시 각, 정착길이 등을 반영한 설계기법을 제안하였으며, 펀칭전단파괴에 저항할 수 있는 숏크리트의 요구두께를 결정하는 신뢰도 평가기법을 제안하였다. 아울러 설계예제와 $FLAC^{2D}$ 프로그램 수치해석을 통해 프리텐션에 의한 변위 감소효과를 살펴봤으며, 전단강도감소기법을 도입한 안정해석이 $FLAC^{2D}$ 프로그램을 토대로 수행되었다.

새그 비를 고려한 케이블 네트 구조물의 역학적 거동 (Mechanical Behavior of Cable Net Structures Considering Sag Ratio)

  • 박강근;이동우
    • 한국공간구조학회논문집
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    • 제16권3호
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    • pp.47-58
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    • 2016
  • Cable network system is a flexible lightweight structure which curved cables can transmit only tensile forces. The weight of cable roof dramatically can reduce when the length becomes large. The cable network system is too flexible, most cable systems are stabilized by pretension forces. The tensile force of cable system is greatly influenced by the sag ratio and pretension forces. Determining initial sag ratio of cable roof system is essential in a design process of cable structures. Final sag ratio and pretension depends on initial installed sag and on proper handling during installation. The design shape of cable system has an affect on the sag and pretension, and must be determined using well-defined design philosophy. This paper is carried out the comparative data of the deflection and tensile forces on the geometric non-linear analysis of cable network systems according to sag ratio. The study of cable network system is provided to technical informations for the design of a large span cable roof, analytical results are compared with the results of other researchers. Structural nonlinear analysis of systems having cable elements is relatively complex than other rigid structural systems because displacements are large as a reason of flexibility, initial prestress is applied to cables in order to increase the rigidity, and then divergence of nonlinear analysis occurs rather frequently. Therefore, cable network systems do not exhibit a typical nonlinear behavior, iterative method that can handle geometric nonlinearities are necessary.

Performance evaluation of a rocking steel column base equipped with asymmetrical resistance friction damper

  • Chung, Yu-Lin;Du, Li-Jyun;Pan, Huang-Hsing
    • Earthquakes and Structures
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    • 제17권1호
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    • pp.49-61
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    • 2019
  • A novel asymmetrical resistance friction damper (ARFD) was proposed in this study to be applied on a rocking column base. The damper comprises multiple steel plates and was fastened using high-strength bolts. The sliding surfaces can be switched into one another and can cause strength to be higher in the loading direction than in the unloading direction. By combining the asymmetrical resistance with the restoring resistance that is generated due to an axial load on the column, the rocking column base can develop a self-centering behavior and achieve high connection strength. Cyclic tests on the ARFD proved that the damper performs a stable asymmetrical hysteretic loop. The desired hysteretic behavior was achieved by tuning the bolt pretension force and the diameter of the round bolt hole. In this study, full-scale, flexural tests were conducted to evaluate the performance of the column base and to verify the analytical model. The results indicated that the column base exhibits a stable self-centering behavior up to a drift angle of 4%. The decompression moment and maximum strength reached 42% and 88% of the full plastic moment of the section, respectively, under a column axial force ratio of approximately 0.2. The strengths and self-centering capacity can be obtained by determining the bolt pretension force. The analytical model results revealed good agreement with the experimental results.

초기인장력을 받은 그리드 구조물의 최적설계 (Optimum Design of Grid Structures with Pretension)

  • 김대환;이재홍
    • 한국공간구조학회논문집
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    • 제11권1호
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    • pp.77-85
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    • 2011
  • 본 논문은 마이크로 유전 알고리즘을 이용하여 그리드 구조물의 최적화를 수행하고 초기인장력이 최적화에 미치는 영향을 분석하였다. 최적화시 여러 제약조건을 설정하여 구조물의 물량이 최소화 되도록 부재의 단면을 찾는 최적 설계를 수행하였다. 알고리즘의 검증을 위해 10-bar 트러스트 예제로 설정하여 이전 연구 결과와의 비교를 하였다. 이를 바탕으로 초기인장력이 적용된 트러스트 구조물의 최적화가 가능한 다음과 같은 기법을 사용하여 그리드 형태인 72-bar 트러스의 최적화를 수행하였으며, 이전 연구결과와 비교하여 이를 입증하였다. 최적화시 초기인장력 크기를 달리하여 트러스 구조물의 최적화를 수행하였으며, 물량이 최소화되는 최적화된 초기 인장력 값도 찾았다.

2점지지계류를 활용한 심해 부유체의 다점지지계류 개념설계 (Conceptual Design of Deep-sea Multi-Point Mooring by using Two-Point Mooring)

  • 박인규;김경무
    • 대한조선학회논문집
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    • 제45권4호
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    • pp.462-467
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    • 2008
  • In this paper, we investigated the design method of mooring system in ultra deep sea and carried out the conceptual design for offshore West Africa oil field in ultra deep sea of 3000 meters. Recently, it was feasible to design and install the offshore floating structures in deep sea of up to 2000 meters. Due to the simplicity, two-point mooring design is fully utilized. Force-excursion curves are throughly examined to find out the feasibility of various combinations of mooring lines. Free length and pretension effects are discussed. It is found that composite materials including synthetic fiber rope may be good solution for ultra deep sea mooring design.

프리텐션 쏘일네일링 시스템의 현장인발시험 및 안정성 평가 (Field Pullout Tests and Stability Evaluation of the Pretension Soil Nailing System)

  • 김홍택;최영근;박시삼;김범석
    • 한국지반환경공학회 논문집
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    • 제4권3호
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    • pp.27-40
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    • 2003
  • 본 연구에서는 프리텐션을 적용한 쏘일네일링 공법을 제시하고, 프리텐션 쏘일네일링 시스템에 대한 변위제어방식 현장인발시험을 총 9회 실시하여 프리텐션 쏘일네일링 구조체의 관련 설계변수인 쉬스관 길이 및 고정콘 유 무 등에 대한 영향에 대해 분석하였으며, 아울러 프리텐션 하중의 평가도 다루어 졌다. 또한 응력제어방식 현장인발시험을 총 3회 실시하여, 일반 쏘일네일 및 프리텐션 쏘일네일의 장 단기적인 인발-변형 특성 등을 비교 분석하였다. 계속해서, 프리텐션 쏘일네일링 시스템의 안정성 평가를 위해, 예상파괴면 및 최소안전율을 결정하기 위해 사면안정해석 등에 주로 적용되고 있는 전단강도감소기법을 이용한 수치해석적 접근방법의 제시 및 분석 등이 이루어졌다.

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Effect of bolted splice within the plastic hinge zone on beam-to-column connection behavior

  • Vatansever, Cuneyt;Kutsal, Kutay
    • Steel and Composite Structures
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    • 제28권6호
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    • pp.767-778
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    • 2018
  • The purpose of this study is to investigate how a fully restrained bolted beam splice affects the connection behavior as a column-tree connection in steel special moment frames under cyclic loading when located within the plastic hinge zone. The impacts of this attachment in protected zone are observed by using nonlinear finite element analyses. This type of splice connection is designed as slip-critical connection and thereby, the possible effects of slippage of the bolts due to a possible loss of pretension in the bolts are also investigated. The 3D models with solid elements that have been developed includes three types of connections which are the connection having fully restrained beam splice located in the plastic hinge location, the connection having fully restrained beam splice located out of the plastic hinge and the connection without beam splice. All connection models satisfied the requirement for the special moment frame connections providing sufficient flexural resistance, determined at column face stated in AISC 341-16. In the connection model having fully restrained beam splice located in the plastic hinge, due to the pretension loss in the bolts, the friction force on the contact surfaces is exceeded, resulting in a relative slip. The reduction in the energy dissipation capacity of the connection is observed to be insignificant. The possibility of the crack occurrence around the bolt holes closest to the column face is found to be higher for the splice connection within the protected zone.

혁신적 프리스트레스트 가시설 구조시스템(IPS)을 적용한 굴착면의 해석 및 설계 (Design of Building Excavation Plane in Innovative Prestressed Scaffolding(IPS) System)

  • 김성보;한만엽;김문영;정경환
    • 대한토목학회논문집
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    • 제26권1A호
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    • pp.163-171
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    • 2006
  • 본 논문에서는 프리스트레스를 이용한 가시설 공법(IPS)에 적용되는 띠장을 이용한 굴착면의 해석 및 설계절차에 대한 연구를 수행하였다. 받침대의 갯수에 따라 설계토압을 받는 IPS 띠장의 초기 긴장력 계산식을 유도하였다. IPS 띠장으로 구성된 빌딩 굴착면의 전산해석을 위해 띠장은 뼈대요소, 지반은 압축력 전담요소, 케이블은 인장력 전담요소를 사용하여 등분포토압 및 편토압을 받는 굴착평면의 전산해석을 수행하였다. 긴장력과 설계토압에 의한 축력과 휨모멘트를 계산하여 축응력과 휨응력을 산출하고 합성응력검토를 수행하여 굴착면의 안전성을 검토하였다.

Optimized design of dual steel moment resisting system equipped with cross-anchored self-centering buckling restrained chevron brace

  • Khaneghah, Mohammadreza Ahadpour;Dehcheshmaeh, Esmaeil Mohammadi;Broujerdian, Vahid;Amiri, Gholamreza Ghodrati
    • Earthquakes and Structures
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    • 제23권2호
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    • pp.139-150
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    • 2022
  • In most self-center braces, decreasing residual deformation is possible only by increasing pretension force, which results in lower energy dissipation capacity. On the other hand, increasing energy dissipation capacity means higher values of residual deformation. The goal of this research was to find the best design for a self-centering buckling restrained brace (SC-BRB) system by balancing self-centering capability and energy dissipation. Three, six, and nine-story structures were investigated using OpenSees software and the TCL programming language to achieve this goal. For each height, 62 different SC-BRBs were considered using different values for the pretension force of cables, the area of the buckling restrained brace (BRB) core plate, and the yield stress of the core plate. The residual deformation and dissipated energy of all the models were calculated using nonlinear analyses after cyclic loading was applied. The optimum design for each height was determined among all the models and was compared to the structure equipped with the usual BRB. The residual deformation of the framed buildings was significantly reduced, according to the findings. Also the reduction of the energy dissipation was acceptable. The optimum design of SC-BRB in 6-story building has the most reduction percent in residual deformation, it can reduce residual deformation of building 83% while causing only a 57% of reduction in dissipated energy. The greatest reduction in residual deformation versus dissipated energy reduction was for the optimum SC-BRB design of 9-story building, results indicated that it can reduce residual deformation of building 69% while causing only a 42% of reduction in dissipated energy.