Eccentric axial load tests were carried out to investigate the structural performance of the SIP (Structural Insulation Panel), which is widely used as residential type in Europe and North America. Outside the country, design standards for SIP have been prepared and related research has been carried out variously. However, in Korea, the research on the performance of the structural insulation panel is very small, and the related standard is not provided. In this study, the eccentric axial load was applied after the opening was installed to utilize the structural insulation panel as the structural wall. The size of the test specimen was 1200 × 2400㎜. The number of test specimens was 6, and the size of the openings and the reinforcement method around the openings were used as variables.
As the ridges become larger and larger, a structural type that enables effective utilization of the long span and space is required. In the construction stage, the steel column supports the installation load. However, in order to secure the stability against the out - of - plane deformation of the steel column due to the lateral pressure when the concrete is laid, a binding frame is installed inside the steel pipe at constant intervals to resist the concrete installation pressure. When the concrete is cured and its performance as a composite section is exerted, a stress is generated which pushes the steel pipe out of the plane by the column compressive force. In this case, since the binding frame controls the deformation, the local buckling is delayed and the constraining effect on the concrete is increased. In order to evaluate the structural performance and behavior of the composite mega column according to the eccentricity effect and the effect of the binding frame, we carried out a structural test by fabricating eight monopole specimens with the binding frame reinforcement, reinforcing gap, reinforced cross section and eccentricity , And the experimental results are compared with the KBC2016 design formula.
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.
편심 하중을 받는 철근 콘크리트 기둥에서 띠철근과 콘크리트 강도의 영향을 파악하기 위하여 콘크리트 압축강도, 띠철근 배근간격 및 형상, 편심비를 주요 변수로 하여 단면 200mm×200mm의 시험체 24개를 실험하였다. 이러한 연구를 통하여 콘크리트 기둥은 편심거리비, 띠철근 배근간격, 띠철근 배근형태 등에 관계없이 콘크리트 강도가 증가할수록 취성적으로 거동하였고, 편심거리비가 증가할수록 띠철근 배근에 의한 연성 증가 효과는 감소함을 알 수 있었다. 띠철근 배근간격이 100mm에서 30mm로 줄어들 경우, 최대 내력은 10~20% 증가하였으며, 최대 내력 이후에도 보다 연성적으로 거동하였다. 그러므로 고강도 콘크리트 기둥에서 적당한 연성과 강도를 확보하기 위해서는 일반강도 콘크리트에 비하여 더 많은 띠철근 체적비와 밀실한 띠철근 배근이 필요하였으며, 띠철근 배근 간격만을 제한하는 현재의 대한건축학회 내진 기준은 고강도 콘크리트 사용 시 띠철근의 배근 효과와 부재 연성 확보 측면에서 불안전하였으며, 띠철근을 콘크리트 강도와 연계하는 새로운 내진 기준이 필요한 것으로 나타났다.