The purpose of this study is to experimentally analyze the seismic performance of beam-column specimens with vertical irregular, which were reinforced with RHS (Replaceable steel haunch system). a steel haunch system. To evaluate the seismic performance of the RHS, three specimens were manufactured and subjected to cycle loading tests. Retrofitted specimens have different beam-upper column stiffness ratio as a variable. The stiffness ratio of beam-upper column were considered to be 1.2 and 0.84. As a result of the test, the specimen reinforced with RHS showed improved maximum load and effective stiffness, and energy dissipation capacity compared to the non-retrofitted specimen with same beam-upper column stiffness ratio. The specimen with 0.84 beam-upper column stiffness ratio showed improved performance than the specimen with 12.
Recently, the occurrence frequency of earthquake has increased in Korea, and the interests for seismic reinforcement of existing school buildings have been raised. To this end, the seismic performance evaluations for school buildings that did not accomplish the seismic design are required. In particular, this study checks the eigenvalue analysis, pushover curves, maximum base shears, performance points and story drift ratios, and then analyzes the seismic performance characteristics according to bracing configuration of steel frame system reinforcement. Also, this study presents the practical field application methods through the comparison of analysis results for the seismic performance characteristics.
최근 국내에서 연간 지진 발생 횟수가 꾸준히 증가함에 따라 공공시설물에 대한 내진 보강의 필요성이 더욱 대두되고 있다. 이 연구 에서는 사각 단면을 가진 철근콘크리트 기둥에서 강봉보강의 유무에 따른 내진 성능 개선 효과를 분석하기 위해 비선형 유한요소해 석을 수행하였으며, 검증을 위해 구조실험결과와 비교하였다. 분석 결과, 이 연구에서 수행한 유한요소해석이 실제 강봉보강공법을 적용한 철근콘크리트 기둥의 구조 거동을 합리적으로 잘 묘사하는 것으로 나타났다. 또한, 해석 및 실험 모두 강봉보강공법 적용으로 인해 파괴모드가 취성파괴에서 연성파괴로 전환되었으며, 강도와 연성도 모두 증가하는 것으로 나타났다. 따라서, 강봉보강공법 적 용을 통해 기존 철근콘크리트 기둥의 내진 성능을 효과적으로 증진시킬 수 있는 것으로 판단된다. 이 연구의 주요 결과는 향후 설계 방 안 마련 등 관련 연구에 유용할 것으로 기대된다.
현장에 적용하는 콘크리트 강도가 증가함에 따라 초고성능 콘크리트의 적용 분야가 넓어지고 있다. 초고성능 콘크리 트에는 강섬유를 일반적으로 사용하고 있지만, 이를 대체하기 위해 다양한 섬유를 연구에 적용하고 있다. 대표적으로 슈퍼섬유 라고 알려진 아라미드 섬유가 있다. 본 연구에서는 초고성능 콘크리트의 특성이 구조물 보수보강 및 내진보강에 적용하기에 적 합하다고 판단하여, 슈퍼섬유 중 하나인 파라아리미드 섬유와 조합한 복합섬유를 혼입한 초고성능 콘크리트를 보-기둥 접합부에 내진보강재로 활용하여 특성을 분석하였다. 초고성능 콘크리트의 내진보강 효과를 확인하였으며 내진상세를 적용한 실험체와 유사한 거동을 확인하였다. 초고성능 콘크리트의 높은 강도로 인해 기존 콘크리트가 파괴되는 양상이 나타나 초고성능 콘크리 트의 보수보강 효과를 모두 발휘하지 못하고 있어 추가 연구를 통해 최적의 보강단면을 설정한다면 내진보강재료로 활용할 수 있을 것으로 판단된다.
Unlike the CFT retrofit method, The EPFT retrofit method, which fills the steel tube with engineering plastic, does not require a separate concrete forming work and is a lightweight seismic Retrofit Method. In this study, an prototype model of the EPFT was proposed, and to analyze the seismic performance, an independent specimens and a reinforced concrete column were fabricated to conduct a seismic performance test. As a result of loading test of the independent specimens, the strength was increased compared to the steel tube column without internal filling, and the ductility ratio did not significantly increase due to the falling off of the weld. As a result of loading test of the concrete reinforcement specimen, the strength, ductility ratio, and energy dissipation were increased, and the number of cracks by loading step decreased compared to the non-reinforced specimen.
최근 경주, 포항에 연이은 지진 발생으로 인하여 내진설계에 관심이 높아지고 있다. 다가구주택 필로티기둥은 수직 비정형 시스템으로 상,하부층의 강성 차이로 인하여 지진 발생 시 막대한 피해가 예상되기 때문에 다가구주택 필로티기둥의 내 진보강이 필요하다. 그러나 민간 소유인 다가구주택의 경우 막대한 비용과 시간으로 인하여 보강이 어려운 실정이다. 이에 따 라, 복합섬유패널로 에폭시 접착제 미사용으로 건식시공이 가능한 전단보강공법을 제안하고자 한다. 본 연구에서는 복합섬유패 널 보강 유무에 따른 내진보강공법의 전단내력을 실험을 통하여 검증하였고, 에폭시를 사용하지 않아 일체화 거동을 하지는 않 지만 복합섬유패널의 영향으로 전단내력은 1.46∼1.49배 증가하는 것으로 평가되었다. 따라서 다가구주택 필로티기둥의 내진보 강효과가 있을 것으로 판단된다.
본 연구에서는 기존 비내진설계 콘크리트 기둥의 내진성능 개선을 위해 기둥 면적의 80% 영역을 12K 능직 카본 섬 유(CFRP sheet)와 카본용 에폭시 수지를 사용하여 보강한 후 보강량에 따른 내진성능을 실험적으로 평가하였다. 실험을 위해 실 험실 단위에서의 준실대형 기둥을 제작하였으며, 유압 풀링잭을 이용하여 약 10%만큼의 일정한 축력을 가력한 다음 변위제어를 통해 최대 10%의 변위비만큼 각 변위 사이클당 2회씩 반복 재하하여 가력을 수행하였다. 실험 결과 2겹의 12K CFRP sheet 보 강의 경우 누적에너지소산이 6.6배 증가하였으며, 4겹의 경우 9.6배 증가하였다.
Based on the nonlinear static analysis and the approximate seismic evaluation method adopted in “Guidelines for seismic performance evaluation for existing buildings, two methods to calculate strength demand for retrofitting individual structural walls in unreinforced masonry buildings are proposed.” The displacement coefficient method to determine displacement demand from nonlinear static analysis results is used for the inverse calculation of overall strength demand required to reduce the displacement demand to a target value meeting the performance objective of the unreinforced masonry building to retrofit. A preliminary seismic evaluation method to screen out vulnerable buildings, of which detailed evaluation is necessary, is utilized to calculate overall strength demand without structural analysis based on the difference between the seismic demand and capacity. A system modification factor is introduced to the preliminary seismic evaluation method to reduce the strength demand considering inelastic deformation. The overall strength demand is distributed to the structural walls to retrofit based on the wall stiffness, including the remaining walls or otherwise. Four detached residential houses are modeled and analyzed using the nonlinear static and preliminary evaluation procedures to examine the proposed method.
The precast-buckling restrained braces(PC-BRB) reinforced with engineering plastics that can compensate for the disadvantages in the manufacturing process of the existing buckling restrained brace. In this study, to examine the applicability of PC-BRB to actual structures, example structures similar to school facilities were selected and the reinforcement effect was analyzed analytically according to the damping design procedure of PC-BRB. Load-displacement curve through the incremental loading test appeared similar to the bilinear curve. Applying test result, Analytical model of PC-BRB model was constructed and applied to the example structure. As a result of the analysis, the PC-BRB showed stable hysteresis behavior without lowering the strength, and the inter story drift ratio and the shear force were reduced due to the damping effect. In addition, the reduction ratio of the shear force was similar to the reduction ratio assumed when designing the damping device.
내진설계규정이 정립되기 전에 시공된 콘크리트 교각의 경우 횡철근을 겹침이음하거나 최소한의 배근으로 최적화를 유도하였다. 따라서 지진하중 발생 시 지진에너지를 소산할 수 있는 에너지 감쇠의 효과가 기존 교각들에는 미흡한 실정이다. 본 논문은 반복하중을 받는 원형콘크리트 교각 외부에 강판, GFRP, CFRP 보강을 적용한 경우, 교각의 지진대응 성능 향상도를 정량적으로 평가하였다. 범용유한요소해석프로그램인 ABAQUS의 다양한 3차원 요소를 적용하여 교각 구조물을 모델링하였으며,하중은 교각 상부에 횡방향 동적하중과 교각 전체 자중이 고려되었다. 하중-변위 곡선, 응력-변형률 곡선, 연성도, 에너지 흡수 능력(연성도), 손상도를 고려하여 보강에 따른 교각의 내진성능 향상도를 비교분석하였다. 비보강 콘크리트 교각의 경우 연성도는 78%로 취성파괴 구조물이었으나, 강판보강의 경우 91.0%, GFRP보강의 경우 91.9%, CFRP보강의 경우 92.0%이다. 세 가지 보강의 종류를 비교한 결과 강도, 연성도, 손상도 모두에 있어서 CFRP보강의 경우가 가장 큰 증진 효과를 보이고 있다.
This paper is to investigate the retrofitting effect for a non-seismic reinforced concrete frame strengthened by perimeter steel moment frames with indirect integrity, which ameliorates the problems of the direct integrity method. To achieve this, first, full-scale tests were conducted to address the structural behavior of a two-story non-seismic reinforced concrete frame and a strengthened frame. The non-seismic frame showed a maximum strength of 185 kN because the flexural-shear failure at the bottom end of columns on the first floor was governed, and shear cracks were concentrated at the beam-column joints on the second floor. The strengthened frame possessed a maximum strength of 338 kN, which is more than 1.8 times that of the non-seismic specimen. A considerable decrease in the quantity of cracks for the strengthened frame was observed compared with the non-seismic frame, while there was the obvious appearance of the failure pattern due to the shear crack. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be reasonably determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The proposed method had an error of about 2.2% for the non-seismic details and about 4.4% for the strengthened frame based on the closed results versus the experimental results.
Nonlinear static analysis and preliminary evaluation were performed in this study to evaluate the seismic performance of unreinforced masonry buildings subjected to various soil conditions based on the revised Korean Building Code. Preliminary evaluation scores and nonlinear static analyses indicated that all buildings were susceptible to collapse and did not reach their target performance. Therefore, retrofit of those building models was carried out through a systematic procedure to determine areas to be strengthened. It was possible to make most building models satisfy performance objectives through the reinforcement alone of damaged external shear walls. However, the application of a preliminary evaluation procedure to retrofit design was found to be too conservative because all the retrofitted building models verified with nonlinear static analysis failed to satisfy performance objectives. Therefore, it is possible to economically retrofit unreinforced masonry buildings through the fortification of external walls if a simple evaluation procedure that can efficiently specify vulnerable parts is developed.
This study is to investigate the effect of a retrofitted reinforced concrete frame with non-seismic details strengthened by embedded steel moment frames with an indirect joint, which mitigates the problems of the direct joint method. First, full-scale experiments were conducted to confirm the structural behavior of a 2-story reinforced concrete frame with non-seismic details and strengthened by a steel moment frame with an indirect joint. The reinforced concrete frame with non-seismic details showed a maximum strength of 185 kN at an overall drift ratio of 1.75%. The flexural-shear failure of columns was governed, and shear cracks were concentrated at the beam-column joints. The reinforced concrete frame strengthened by the embedded steel moment frames achieved a maximum strength of 701 kN at an overall drift ratio of 1.5% so that the maximum strength was about 3.8 times that of the specimen with non-seismic details. The failure pattern of the retrofitted specimen was the loss of bond strength between the concrete and the rebars of the columns caused by a prying action of the bottom indirect joint because of lateral force. Furthermore, methods are proposed for calculation of the specified strength of the reinforced concrete frame with non-seismic details and strengthened by the steel moment frame with the indirect joint.
본 연구는 탄소나노튜브/보강섬유/폴리머 복합 쉘에 대한 동적응답을 다루었다. 단일벽 탄소나노튜브, 유리섬유 및 에폭시 레진으로 구성된 3단계 복합구조이며, 유효 물성값은 멀티스케일 해석을 통하여 산정하였다. 유한요소 프로그램인 ABAQUS를 적용하여 다양한 탄소나노튜브 함유비율, 적층각도, 곡률 및 중앙 개구부의 다양한 변화에 대한 동적응답 및 상호 작용을 분석하였다. 본 연구는 원통형 복합쉘의 동적 하중에 의한 처짐을 감소시킬 수 있는 변수들의 중요성을 보여주었다.