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다양한 배근상세를 갖는 짧은 연결보의 주기거동 특성과 에너지소산능력의 평가

Behavioral Characteristics and Energy Dissipation Capacity of Short Coupling Beams with Various Reinforcement Layouts

  • 발행 : 2008.04.30

초록

본 연구에서는 다양한 배근상세를 갖는 짧은 연결보 (short coupling beam)의 주기거동특성과 에너지소산 메커니즘을 연구하였다. 주기하중을 받는 연결보의 수치해석을 위하여 비선형트러스모델 (nonlinear truss model)을 사용하였다. 수치해석 결과, 일반적인 수직 수평배근상세를 갖는 연결보는 핀칭이 심한 주기곡선을 보이며 거의 에너지를 소산하지 못하였다. 반면 대각배근상세를 갖는 연결보는 핀칭이 없는 안정적인 주기거동을 보이며 많은 에너지를 소산하였으며, 연결보의 에너지소산은 취성재료인 콘크리트보다 주로 대각 방향으로 배치된 철근에 의하여 발생됐다. 이러한 분석 결과를 토대로 대각철근의 변형률 이력을 사용하여 연결보의 에너지소산량을 예측할 수 있는 간편한 평가식을 개발하였다. 검증을 위하여 제안된 평가식과 실험으로 구한 연결보의 에너지소산량을 실험 결과와 비교하였다. 그 결과, 제안된 평가식은 배근형태, 전단경간비, 비탄성 변형 크기 등 다양한 설계변수의 영향을 고려하여 전단경간비가 1.25이하인 짧은 연결보의 에너지소산량을 비교적 정확히 예측하였다. 제안된 에너지소산량 평가 방법은 철근콘크리트구조물 및 부재의 성능 기초 내진평가/설계에 손쉽게 활용될 수 있다.

The cyclic behavior and energy dissipation mechanism of short coupling beams with various reinforcement layouts were studied. For numerical analysis of coupling beams, nonlinear truss model was used. The results of numerical analysis showed that the coupling beams with conventional reinforcement layout showed pinched cyclic behavior without significant energy dissipation, whereas the coupling beams with diagonal reinforcement exhibited stable cyclic behavior without pinching. The energy dissipation of the coupling beams was developed mainly by diagonal reinforcing bars developing large plastic strains rather than concrete which is a brittle material Based on this result, simplified equations for evaluating the energy dissipation of coupling beams were developed. For verification, the predicted energy dissipation was compared with the test results. The results showed that the simplified equations can predict the energy dissipation of short coupling beams with shear span-to-depth ratio less than 1.25 with reasonable precision, addressing various design parameters such as reinforcement layout, shear span-to-depth ratio, and the magnitude of inelastic displacement. The proposed energy equations can be easily applied to performance-based seismic evaluation and design of reinforced concrete structures and members.

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참고문헌

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