The proposed hybrid damper installs at a coupling beam and consists of a high-damping rubber (HDR) and steel pin. The proposed hybrid damper adopted a pin-lock system acts as a viscoelastic damper under wind load (small displacement) while it behaves as a hysteretic damper under earthquake load (large displacement).
In this paper, the pin-lock mechanism and structural performance of the proposed hybrid damper is evaluated through experiment. Experiments were carried out with the variables which displacement, loading frequency and steel pin quantities were used. Test results showed that the pin-lock mechanism and the performance of the hybrid damper under a large displacement were verified. Also equivalent damping ratios of HDR were increasing at a small displacement as displacement amplitudes were increasing. However HDR did not depend on frequency,
Various hybrid dampers have been developed as increasing tall buildings in Korea. To minimize the installment space and cost, the new hybrid friction damper was developed using friction components. It is composed of two one-nodal rotary frictional components and a slotted bolted frictional connection. Because of these components, hybrid friction damper can be activated by building movements due to lateral forces such as a wind and earthquake. In this paper, displacement amplitude dependency tests were carried out to evaluate on the structural performance and the multi-slip mechanism of the hybrid damper. Test results show that the multi-slip mechanism is verified and friction coefficients are increasing as displacement amplitudes are increasing.
본 연구는 拉列햇톰훨 .i훌빼의 훌훌훌B分의 효율적인 有限훌素흙析을 위한 보-윷換훌素 및 윷~部分의 요
소를 제시하고자 한다. 먼저 보-윷~훌훌는 보요소와 벽체요소사이의 변형 및 힘의 狗東條件을 근거로하여
보의 기본적인 거동을 동일하게 유지하면서 平面應力훌素의 개념으로 대치된 유사보요소로 간주될 수 있으
며, 이는 뺏뺏部分에서의 보요소와 벽체요소사이의 서로 다른 自由度에 기인한 윷形의 不홉음性을 합리척으
로 해결해준다. 또한 보-윷뺏훌素와 직접 연결되는 윷換部分의 요소는 보-뺑換훌素의 경우와 동일한 狗束
條件이 적용됩으로써 윷~部分에 대한 효율적인 훌훌分훌j方훗을 제시해 준다. 이와 같이 본 연구에서 제시된
요소들은 기본적으로 i호 flJ Ji lfli훌 _i훌~ 뿐만아니라 보요소와 벽체요소의 相효作用이 고려되는 모든 구조물
에 효율적으로 활용될 수 있다.
An experimental study was conducted to examine for the structural behavior of coupled steel plate shear wall (Coupled SPSW) system what is formed by connection the two steel plate shear walls (SPSW) with a coupling beam. The variable of this study was the length of coupling beam. The testing results were showed that the strength and stiffness of specimen with shorter coupling beam were improved than those of other specimen. However there is no difference of the yielding mechanism.