• 제목/요약/키워드: Core outrigger system

검색결과 27건 처리시간 0.036초

편심코어를 가진 초고층 건축물의 아웃리거 시스템 성능 평가 (Performance Evaluation of Outrigger System in Tall Buildings with Eccentric Core)

  • 박지형;김태호;김욱종;이도범
    • 한국전산구조공학회:학술대회논문집
    • /
    • 한국전산구조공학회 2009년도 정기 학술대회
    • /
    • pp.561-566
    • /
    • 2009
  • The outrigger system with a core is widely used for lateral load resisting system of tall building. Recently, structural systems in tall building are adopted to eccentric core and offset outrigger or one-armed outrigger system by trends in planning buildings of irregular type. Therefore, the performance of outrigger system with eccentric core in tall building is evaluated by 50-stories examples which are analyzed for variables such as layout of core and outrigger, arm length of outrigger and depth of outrigger and belt wall.

  • PDF

코어 및 오프셋 아웃리거 구조시스템의 수평거동에 대한 분석 (Analysis of Lateral Behavior in Core and Offset Outrigger System)

  • 김형기
    • 한국구조물진단유지관리공학회 논문집
    • /
    • 제25권4호
    • /
    • pp.1-11
    • /
    • 2021
  • 본 연구에서는 코어 및 오프셋 아웃리거 구조의 수평거동을 파악할 목적으로 70층 규모의 초고층 아웃리거 건물을 대상으로 MIDAS-Gen을 이용하여 구조해석 및 구조설계를 실시하였다. 그리고 본 해석의 주요한 변수는 아웃리거의 강성과 아웃리거의 평면상 위치로 설정하였다. 또한 본 해석결과에 근거하여 코어 및 오프셋 아웃리거 구조의 슬래브, 아웃리거, 외곽 기둥과 같은 구조요소들의 수평거동을 분석하였다. 본 해석연구의 결과에서는 아웃리거의 강성과 아웃리거의 평면상 위치가 초고층 아웃리거 구조시스템의 수평거동에 어떤 영향을 주는지를 분석하여 나타내었다. 특히 코어 아웃리거 구조에서는 전단벽과 외곽기둥을 연결하는 아웃리거가 위치하는 슬래브에 응력이 크게 작용하였고, 오프셋 아웃리거 구조에서는 전단벽과 아웃리거 사이에 위치한 슬래브에 응력이 크게 작용하였다. 또한 본 연구결과는 초고층 아웃리거 구조시스템의 합리적인 구조설계에 필요한 공학 데이터를 얻는데 중요한 도움이 된다고 사료된다.

Optimum location of second outrigger in RC core walls subjected to NF earthquakes

  • Beiraghi, Hamid;Hedayati, Mansooreh
    • Steel and Composite Structures
    • /
    • 제38권6호
    • /
    • pp.671-690
    • /
    • 2021
  • Seismic responses of RC core wall with two outriggers are investigated in this study. In the models analyzed here, one of the outriggers is fixed at the top of the building and the second is placed at different levels along the height of the system. Each of the systems resulting from the placement of the outrigger at different locations is designed according to the prescriptive codes. The location of the outrigger changes along the height. Linear design of all the structures is accomplished by using prescriptive codes. Buckling restrained braces (BRBs) are used in the outriggers and forward directivity near fault and far fault earthquake record sets are used at maximum considered earthquake (MCE) level. Results from nonlinear time history analysis demonstrate that BRB outriggers can change the seismic responses like force distribution and deformation demand of the RC core-walls over the height and lead to the new plastic hinge arrangement over the core-wall height. Plasticity extension in the RC core wall occurs at the base as well as adjacent to the outrigger levels. Considering the maximum inter-story drift ratio (IDR) demand as an engineering parameter, the best location for the second outrigger is at 0.75H, in which the maximum IDR at the region upper the second outrigger level is approximately equal to the corresponding value in the lower region.

The Evolution of Outrigger System in Tall Buildings

  • Ho, Goman W.M.
    • 국제초고층학회논문집
    • /
    • 제5권1호
    • /
    • pp.21-30
    • /
    • 2016
  • The structural efficiency of tall buildings heavily depends on the lateral stiffness and resistance capacity. Among those structural systems for tall buildings, outrigger system is one of the most common and efficient systems especially for those with relatively regular floor plan. The use of outriggers in building structures can be traced back from early 50 from the concept of deep beams. With the rise of building height, deep beams become concrete walls or now in a form of at least one story high steel truss type of outriggers. Because of the widened choice in material to be adopted in outriggers, the form and even the objective of using outrigger system is also changing. In the past, outrigger systems is only used to provide additional stiffness to reduce drift and deflection. New applications for outrigger systems now move to provide additional damping to reduce wind load and acceleration, and also could be used as structural fuse to protect the building under a severe earthquake condition. Besides analysis and member design, construction issue of outrigger systems is somehow cannot be separated. Axial shortening effect between core and perimeter structure is unavoidable. This paper presents a state-of-the-art review on the outrigger system in tall buildings including development history and applications of outrigger systems in tall buildings. The concept of outrigger system, optimum topology, and design and construction consideration will also be discussed and presented.

Parametric analysis of hybrid outrigger system under wind and seismic loads

  • Neethu Elizabeth Johna;Kiran Kamath
    • Structural Engineering and Mechanics
    • /
    • 제86권4호
    • /
    • pp.503-518
    • /
    • 2023
  • In tall constructions, the outriggers are regarded as a structural part capable of effectively resisting lateral loads. This study analyses the efficacy of hybrid outrigger system in high rise RCC building for various structural parameters identified. For variations in α, which is defined as the ratio of the relative flexural stiffness of the core to the axial rigidity of the column, static and dynamic analyses of hybrid outrigger system having a virtual and a conventional outrigger at two distinct levels were conducted in the present study. An investigation on the optimal outrigger position was performed by taking the results from absolute maximum inter storey drift ratio (ISDmax), roof acceleration (accroof), roof displacement (disproof), and base bending moment under both wind and seismic loads on analytical models having 40, 60 and 80 storeys. An ideal performance index parameter was introduced and was utilized to obtain the optimal position of the hybrid outrigger system considering the combined response of ISDmax, accroof, disproof and, criteria required for the structure under wind and seismic loads. According to the behavioural study, increasing the column area and outrigger arm length will maximise the performance of the hybrid outrigger system. The analysis results are summarized in a flowchart which provides the optimal positions obtained for each dependent parameter and based on ideal performance index which can be used to make initial suggestions for installing a hybrid outrigger system.

바닥 격막을 고려한 코어 및 오프셋 아웃리거 구조의 최적위치에 대한 전단벽 강성의 영향 (Effect of Shear Wall Stiffness on Optimal Location of Core and Offset Outrigger Considering Floor Diaphragm)

  • 김형기
    • 한국구조물진단유지관리공학회 논문집
    • /
    • 제23권5호
    • /
    • pp.37-47
    • /
    • 2019
  • 본 논문은 바닥 격막을 고려한 코어 및 오프셋 아웃리거 구조의 최적위치를 파악하기 위하여 70층 규모의 초고층 아웃리거 건물을 대상으로 MIDAS-Gen을 이용하여 구조설계를 실시하였다. 그리고 본 해석연구의 주요 변수는 슬래브의 강성, 전단벽의 강성, 아웃리거의 평면상 위치이다. 또한 본 해석결과에 근거하여 슬래브의 강성과 전단벽의 강성이 바닥 격막을 고려한 코어 및 오프셋 아웃리거 구조의 최적 위치에 미치는 영향을 분석하였다. 본 해석연구의 결과에서는 슬래브의 강성, 전단벽의 강성, 아웃리거의 평면상 위치가 초고층 아웃리거 구조시스템의 최적위치에 어떤 영향을 주는 지를 분석하여 나타났다. 그리고 본 논문의 결과는 초고층 아웃리거 구조시스템의 최적위치를 조사하는데 필요한 구조공학자료를 얻는데 도움이 된다고 사료된다.

Challenge in the Structural Design of Suzhou IFS

  • Zhou, Jianlong;Huang, Yongqiang
    • 국제초고층학회논문집
    • /
    • 제10권3호
    • /
    • pp.165-171
    • /
    • 2021
  • Core-outrigger-mega frame system is used in Suzhou IFS with 95-story, 450 m-tall, which is beyond Chinese code limit. Besides simple introduction on design principle, structure system and analysis, key techniques including performance based design criteria, frame shear ratio, capacity check of mega column, human comfort criteria under wind induced vibration and TSD design were presented in details for reference of similar super tall building design.

PT공법을 적용한 80MPa급 콘크리트 아웃리거부재의 실험적 연구 (Experimental study of structural behavior of 80MPa concrete outrigger member using post tension method)

  • 최종문;김우재
    • 한국건축시공학회:학술대회논문집
    • /
    • 한국건축시공학회 2009년도 추계 학술논문 발표대회
    • /
    • pp.31-34
    • /
    • 2009
  • Large outrigger elements tie the concrete core to perimeter columns, significantly increasing the building's lateral stiffness as well as its resistance to overturning due to wind. The outriggers are deep elements, and large tie forces are resisted by top and bottom heavy longitudinal reinforcing and vertical ties. To reduce construction costs, all primary reinforcing bars in outrigger levels are SD500. Further, concrete strengths of 80MPa have been specified for outrigger elements. However, the reductions in the amount of concrete and reinforcement steel are more increased in tall building. With these backgrounds, 80MPa high strength concrete outrigger system using post tension method is developed. Significant economic savings can be made by reducing the element sizes and material content. The developed outrigger system is designed using strut-and-tie models. In addition, four 1/4-scale test specimens were selected from the same prototype structure. The results from the tests are confirmed that the structural behaviors of the developed outrigger member have better capacities than those of a conventional method.

  • PDF

Optimization of lateral resisting system of framed tubes combined with outrigger and belt truss

  • Mohammadnejad, Mehrdad;Kazemi, Hasan Haji
    • Advances in Computational Design
    • /
    • 제7권1호
    • /
    • pp.19-35
    • /
    • 2022
  • In this paper, the optimum location of the belt truss-outrigger for a combined system of framed tube, shear core and outrigger-belt truss is calculated. The optimum location is determined by maximization of the first natural frequency. The framed tube is modeled using a non-prismatic cantilever beam with hollow box cross section. The governing differential equation is solved using the weak form integral equations and the natural frequencies of the structure are calculated. The graphs are introduced for quick calculation of the first natural frequency. The location of the belt truss-outrigger that maximizes the first natural frequency of the structure is introduced as an optimum location. The structure is modeled using SAP-2000 finite elements software. In the modelling, the location of the belt truss-outrigger is changed along the height of the structure. With various locations of the outrigger, the lateral deflection of the all stories and axial force in the columns of the outer tube are calculated. The analysis is repeated by locating the outrigger-belt truss at the optimum location. The analysis results are compared and effect of the optimum location on the lateral deflection and the shear lag phenomena are investigated.

A simple mathematical model for static analysis of tall buildings with two outrigger-belt truss systems

  • Rahgozar, Reza;Ahmadi, Ali Reza;Hosseini, Omid;Malekinejad, Mohsen
    • Structural Engineering and Mechanics
    • /
    • 제40권1호
    • /
    • pp.65-84
    • /
    • 2011
  • In this paper a simple mathematical model for approximate static analysis of combined system of framed tube, shear core and two outrigger-belt truss structures subjected to lateral loads is presented. In the proposed methodology, framed tube is modeled as a cantilevered beam with a box section and interaction between shear core and outrigger-belt truss system with framed tube is modeled using torsional springs placed at location of outrigger-belt truss; these torsional springs act in a direction opposite to rotation generated by lateral loads. The effect of shear lag on axial deformation in flange is quadratic and in web it is a cubic function of geometry. Here the total energy of the combined system is minimized with respect to lateral deflection and rotation in plane section. Solution of the resulting equilibrium equations yields the unknown coefficients of shear lag along with the stress and displacement distributions. The results of a numerical example, 50 storey building subjected to three different types of lateral loading obtained from SAP2000 are compared to those of the proposed method and the differences are found to be reasonable. The proposed method can be used during the preliminary design stages of a tall building and can provide a better understanding of the effects of various parameters on the overall structural behavior.