다가구주택 필로티기둥은 전이구조 형식으로 되어 있어 지진하중에 대하여 전단파괴가 발생하기 쉽다. 이에 따라 내 진설계기준은 강화되고 있지만 이전에 지어진 건축물의 경우 내진보강이 필요한 실정이다. 하지만 기존 습식 공법의 경우 시간 적, 경제적 부담이 크기 때문에 내진보강이 잘 이루어지지 않는다. 따라서 모서리앵글과 CN복합섬유패널을 활용하여 DIY 시공 이 가능한 전단보강공법을 제안하고자 하며 본 실험에서 CN복합섬유패널의 전단성능을 평가하고자 한다. 볼트 연단거리 및 앵 글의 재질을 변수로 설정하여 실험한 결과, 볼트 연단거리가 가까울수록 각형띠판 래티스기둥의 전단내력이 증진되는 것을 확 인하였으며 슬리브 볼트는 고장력 볼트에 비하여 현저히 내력이 저하되어 CN복합섬유패널을 평가하기가 어려웠다. 또한, 알루 미늄앵글은 강재앵글에 비하여 내력은 낮지만 연성능력이 좋은 것으로 평가되었고, 강재앵글은 상대적으로 강성이 크기 때문에 CN복합섬유패널에 주는 영향이 미미한 것을 확인하였다. 이를 실용화하기 위해서 구체적으로 앵글의 크기와 볼트 연단거리를 변수로 설정하여 실험을 수행해야 할 것으로 판단된다.
This paper presents the effect on the inelastic behavior and structural performance of concrete and filled steel pipe through a numerical method for reliable judgment under various load conditions of the CJS composite structural system. Variable values optimized for the CJS synthetic structural system and the effects of multiple variables used for finite element analysis to present analytical modeling were compared and analyzed with experimental results. The Winfrith concrete model was used as a concrete material model that describes the confinement effect well, and the concrete structure was modeled with solid elements. Through geometric analysis of shell and solid elements, rectangular steel pipe columns and steel elements were modeled as shell elements. In addition, the slip behavior of the joint between the concrete column and the rectangular steel pipe was described using the Surface-to-Surface function. After finite element analysis modeling, simulation was performed for cyclic loading after assuming that the lower part of the foundation was a pin in the same way as in the experiment. The analysis model was verified by comparing the calculated analysis results with the experimental results, focusing on initial stiffness, maximum strength, and energy dissipation capability.
Composite columns are increasingly used due to the construction of super-tall buildings and large-scale buildings. Studies on the shapes of and construction technologies for structural members using steel tubes are being conducted actively. Welded built-up CFT columns previously developed and commercialized by the authors of this study (ACT-1 columns) are structurally stable and economically efficient. However, the 1m limit in the width of the columns and their small interior spaces impose a difficulty in installing reinforcing materials and thus deteriorate the ease and efficiency with which they are constructed. This study suggests placing thick plates at the centers of the surfaces of the existing ACT-1 column and installing a binding frame (binding frames) at the central thick plates to enhance the integrity and resist lateral pressure caused by concrete casting. Finite element analysis was conducted with the variables of the number and cross-sectional size of the binding frame and the cross-sectional size of the steel tube to estimate the structural behavior of the steel tubes. Hydraulic tests were conducted to analyze load-displacement relations and identify the influence of the binding frames on the relations. The variables in the tests were the number and cross-sectional size of the binding frame, welding details, column joint and the cross-sectional size of the steel tube