Since atypical high-rise buildings are vulnerable to gravity loads and seismic loads, various structural systems must be applied to ensure the stability of the structure. In this study, the authors selected a 60-story twisted-shaped structure among atypical high-rise structures as an analytical model to investigate its structural behavior concerning the outrigger system. The structural analyses were performed varying the number of installed layers and the arrangement of the outrigger system, as well as the placement of the mega column, as design variables. The analysis revealed that the most effective position for the outrigger was 0.455H from the top layer, consistent with previous studies. Additionally, connecting outriggers and mega columns significantly reduced the displacement response of the model. From an economic standpoint, it is deemed efficient to connect and install outriggers and mega columns at the structure's ends.
Recently, the concept of an outrigger damper system with a damper added to the existing outrigger system has been developed and applied for dynamic response control of high-rise buildings. However, the study on the structural characteristics and design method of Outrigger damper system is in the early stages. In this study, a 50 story high - rise building was designed and an outrigger damper system with viscoelastic damper was applied for wind response control. The time history analysis was performed by using the kaimal spectrum to create an artificial wind load for a total of 1,000 seconds at 0.1 second intervals. Analysis of the top horizontal maximum displacement response and acceleration response shows that outrigger damper systems are up to 28.33% and 49.26% more effective than conventional outrigger systems, respectively. Also, it is confirmed that the increase of damping ratio of dampers is effective for dynamic response control. However, since increasing the damping capacity increases the economic burden, it is necessary to select the appropriate stiffness and damping value of the outrigger damper system.
The outrigger damper system is a structural system with excellent lateral resistance when a wind load occurs. However, research on outrigger dampers is still in its infancy. In this study, dynamic response control performance of damper is analyzed according to change of stiffness value and damping value of damper. To do this, a real-scale 3D model of 50 stories has been developed and the artificial wind load has been entered for dynamic analysis. Generally, the larger the damping value, the smaller the stiffness value is, the more effective it is to reduce the maximum displacement and acceleration response. However, the larger the attenuation value as the cost of construction increases, it is necessary to select appropriate stiffness and damping value when applying an outrigger damper.
The demand for skyscrapers is increasing worldwide. Until now, various lateral resistance structures have been used for lateral displacement control of high-rise buildings. An outrigger damper system has been introduced recently to improve lateral dynamic response control performance further. However, a study of outrigger damper system is yet to be sufficiently investigated. In this study, time history analysis was performed to investigate the control performance of an outrigger damper system of high-rise building under eccentric loading. To do this, an actual scale 3-dimensional tall building model with an outrigger damper system was prepared. The control performance of the outrigger damper system was evaluated by varying stiffness and damping values. On the top floor torsional angle response to the earthquake load, was greatly affected by damping value. And the displacement response was affected greatly by the stiffness value and damping value of damper system. In conclusion, it is necessary to select the proper damping and stiffness values of the outrigger damper system.
In recent years, an outrigger damper system has been proposed to reduce dynamic responses of tall buildings. However, a study on outrigger damper system is still in its early stages. In this study, time history analysis was performed to investigate the dynamic response control performance of outrigger damper. To do this, a actual scale 3-dimensional tall building model with outrigger damper system has been developed. El Centro earthquake was applied as an earthquake excitation. The control performance of the outrigger damper system was evaluated by varying stiffness and damping values. Analysis results, on the top floor displacement response to the earthquake load, was greatly effected by damping value. And acceleration response greatly was effected by stiffness value of damper system. Therefore, it is necessary to select that proper stiffness and damping values of the outrigger damper system.
Recently, the concept of damped outrigger system has been proposed for tall buildings. But, structural characteristics and design method of this system were not sufficiently investigated to date. In this study, the dynamic response control performance of outrigger damper has been analyzed. To this end, a simplified analysis model with outrigger damper system has been developed. Use the El Centro seismic(1940, NS) analysis was performed. Analysis results, on the top floor displacement response to the earthquake response, did not have a big effect. However, acceleration response control effect was found to be excellent. The increase of outrigger damper capacity usually results in the improved control performance. However, it is necessary to select that proper stiffness and damping values of the outrigger damper system because, the outrigger damper having large capacity is result in heavy financial burden.
Damped outrigger systems have been proposed as a novel energy dissipation system to protect tall buildings from severe earthquakes and strong wind loads. In this study, semi-active damping devices such as magnetorheological (MR) dampers instead of passive dampers are installed vertically between the outrigger and perimeter columns to achieve large and adaptable energy dissipation. Control performance of semi-active outrigger damper system mainly depends on the control algorithm. Fuzzy logic control algorithm was used to generate command voltage sent to MR damper. Genetic algorithm was used to optimize the fuzzy logic controller. An artificial earthquake load was generated for numerical simulation. A simplified numerical model of damped outrigger system was developed. Based on numerical analyses, it has been shown that the semi-active damped outrigger system can effectively reduce both displacement and acceleration responses of the tall building in comparison with a passive outrigger damper system.
Recently, the concept of damped outrigger system has been proposed for tall buildings. But, structural characteristics and design method of this system were not sufficiently investigated to date. In this study, the dynamic response control performance of outrigger damper has been analyzed. To this end, a simplified analysis model with outrigger damper system has been developed. An artificial wind of 1000 seconds with 0.1 second time steps was generated by using a Kaimal spectrum. Analysis results show that outrigger damper system is more effective up to 20-23% in the control of dynamic response compared to conventional outrigger system. The increase of outrigger damper capacity usually results in the improved control performance. However, it is necessary to select that proper stiffness and damping values of the outrigger damper system because, the outrigger damper having large capacity is result in heavy financial burden.
본 연구에서는 풍진동 제어 기술의 하나로 현재 대부분의 초고층 건축물에 적용되고 있는 아웃리거 시스템에 댐퍼를 설치한 아웃리거 댐퍼 시스템에 대하여 수치해석모델과 상용 구조해석프로그램을 사용한 모델을 사용하여 최적설계 및 변수연구를 수행하였다. 먼저 아웃리거 댐퍼의 거동 특성을 반영하도록 상태방정식을 사용한 단자유도 수치 모델을 설계하였고 상용 구조해석 프로그램을 사용해서 최적설계를 위한 다자유도모델을 설계하였다. 강성이 고려되지 않고 오직 댐퍼의 감쇠에 의한 최적 위치는 최상층인 것으로 나타났지만 중간 이상의 층에서는 댐퍼의 높이에 따른 성능 변화가 크지 않기 때문에 강성과 감쇠가 복합적으로 운동에 참여하는 실제 구조물의 경우 최적의 위치가 최상층이 아닌 다른 층에 존재한다. 아웃리거 댐퍼시스템은 기존 일반적인 아웃리거 시스템과 비교할 때 가속도 응답을 줄이는데 있어 매우 효과적인 것을 확인하였다.
본 연구에서는 횡하중을 받는 아웃리거 시스템의 횡변위를 정량적으로 제어할 수 있는 효율적인 강성최적설계기법을 제시하고 이를 이용하여 아웃리거 시스템의 거동특성 및 효율성을 평가하고자 한다. 이를 위해 아웃리거를 이용한 고층 구조물의 거동특성을 고려한 민감도 해석을 수행하며 아울러 수학적계획법의 일반성을 유지하면서도, 큰 규모의 문제도 효율적으로 다룰 수 있는 근사화 개념을 도입하여 구속조건식을 설정한다. 특히 초기에 주어진 단면형상이 최적설계 과정동안 계속 유지된다는 가정을 이용하여 부재재설계 기법을 개발한다. 제시된 정량적인 횡변위 제어 방안의 효용성을 검토하기 위해 네 가지 형태의 50층 고층구조물 예제가 고려된다.
본 논문은 오프셋 아웃리거 구조의 최적위치에 대한 제안을 목적으로 70층 규모의 아웃리거 건물을 대상으로 일반 구조해석 프로그램인 MIDAS-Gen을 이용하여 계획설계 수준의 구조설계를 실시하였다. 그리고 본 연구에서 주요 변수는 전단벽의 강성, 프레임의 강성, 아웃리거의 강성, 아웃리거에 접합된 기둥의 강성이다. 본 연구의 목적을 위하여 최상층의 수평변위, 아웃리거에 작용하는 하중의 분포, 아웃리거의 최적위치에 대한 기존모델 등을 분석하였다. 본 논문은 오프셋 아웃리거 구조의 최적위치를 제안하였다. 그리고 본 연구의 결과는 초고층 오프셋 아웃리거 구조시스템의 최적위치를 찾는데 필요한 구조공학자료를 얻는데 도움이 된다고 사료된다.
논문은 바닥 격막을 고려한 초고층 아웃리거 구조시스템의 수평거동을 파악하기 위하여 80층 규모의 초고층 아웃리거 건물을 대상으로 MIDAS-Gen을 이용하여 계획설계 수준의 구조설계를 진행하였다. 그리고 본 해석의 주요한 변수는 아웃리거의 평면상 위치, 슬래브의 강성, 아웃리거의 강성, 다이어프램의 종류이다. 또한 본 연구의 목적을 위하여 최상층에서 발생하는 수평변위, 층간변위, 슬래브에 발생한 응력을 분석하였다. 본 연구의 결과, 아웃리거의 평면상 위치, 슬래브의 강성, 아웃리거의 강성, 다이어프램의 종류는 초고층 아웃리거 구조시스템의 수평거동에 영향을 주는 것으로 나타났다. 그리고 본 연구의 결과는 초고층 아웃리거 구조시스템의 수평거동을 파악하는데 필요한 구조설계 기본자료를 얻는데 도움이 된다고 사료된다.
The purpose of this paper is to search the optimal location of offset outrigger system in high-rise building after a structural schematic design of 80 stories building was conducted, making use of MIDAS-Gen. In this research, the key factors of analysis study were column stiffness, outrigger position in plan and outrigger location in height. For the aim of finding out the optimum position of offset outrigger system in tall building, we studied the lateral displacement in top floor which is the very essential variables in the structural design of high-rise building. The results of study showed that the column stiffness, the outrigger location in plan and outrigger location in height had an effect on the optimal position of outrigger system. Also, it is indicated that the research results can be useful in acquiring the structural design materials for seeking the optimum position of offset outrigger system in tall building.
In this study, it was modelled high-rise building applying outrigger damper system and analyzed by applying eccentric load. By controlling the variation of damping and stiffness of the damper, the seismic response control performance of outrigger damper system was analysed. An outrigger damper system is effective in controlling the top floor displacement response and torsional angle. Therefore, the damper should be selected the proper stiffness value because the variation of stiffness have an influence on the torsional angle.
This study intended to analyze an influence of the structure elements on the optimal location for one-outrigger system in tall building by using MIDAS-Gen. In this investigation, the analysis parameters were the outrigger position and the stiffness of main structure elements such as shear walls, outrigger systems, exterior columns connected in outrigger system and frames not to be connected in outrigger system. For the objective of finding out the optimal location for one-outrigger system in high-rise building, we studied the lateral displacement in top level of 80 stories building.
The results of this study indicated that the outrigger location and the stiffness of main structure elements such as shear walls, outrigger systems, exterior columns connected in outrigger system and frames not to be connected in outrigger system had an influence on the optimal location of one-outrigger system. In addition, it is showed that the research results can be very useful in obtaining the structure design data for looking for the optimal location of one-outrigger system in high-rise building.