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        검색결과 6

        1.
        2023.11 KCI 등재 구독 인증기관 무료, 개인회원 유료
        The equivalent static load for non-structural elements has a limitation in that the sloshing effect and the interaction between the fluid and the water tank cannot be considered. In this study, the equations to evaluate the impulse and convective components in the design codes and previous research were compared with the shaking table test results of a rectangular water tank with flexible wall panels. The conclusions of this study can be summarized as follows: (1) It was observed that the natural periods of the impulsive component according to ACI 350.3 were longer than system identification results. Thus, ACI 350.3 may underestimate the earthquake load in the case of water tanks with flexible walls. (2) In the case of water tanks with flexible walls, the side walls deform due to bending of the front and back walls. When such three-dimensional fluid-structure interaction was included, the natural period of the impulsive component became similar to the experimental results. (3) When a detailed finite element (FE) model of the water tank was unavailable, the assumption   could be used, resulting in a reasonably conservative design earthquake load.
        4,000원
        2.
        2020.11 KCI 등재 구독 인증기관 무료, 개인회원 유료
        In the event of an earthquake, non-structural components require seismic performance to ensure evacuation routes and to protect lives from falling non-structural components. Accordingly, the seismic design code proposes horizontal force for the design and evaluation of non-structural components. Ground motion observed on each floor is affected by a building's eigen vibration mode. Therefore, the earthquake damage of non-structural components is determined by the characteristics of the non-structural component system and the vibration characteristics of the building. Floor response spectra in the seismic design code are estimated through time history analysis using seismic waves. However, it is difficult to use floor response spectra as a design criterion because of user-specific uncertainties of time history analysis. In addition, considering the response characteristics of high-rise buildings to long-period ground motions, the safety factor of the proposed horizontal force may be low. Therefore, this study carried out the horizontal force review proposed in the seismic design code through dynamic analysis and evaluated the floor response of seismic waves considering buildings and predominant periods of seismic waves.
        4,000원
        3.
        2007.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        일반적인 각형 라멘 구조물에 있어서, 상하지진동은 수평지진동에 비하여 구조물에 미치는 영향이 작다고 간주되어, 내진설계에 있어서는 수평지진동만을 고려하는 것이 일반적이다. 그러나, 공간구조물에서는 수평지진동에 의해 수평방향뿐만 아니라 연직방향으로도 구조물의 동적응답이 크게 증폭되며, 또한 상하지진동에 의해서도 연직방향뿐만 아니라 수평방향으로도 구조물의 동적응답이 크게 증폭되는 특성을 가지고 있으므로, 수평 상하 양방향의 지진동을 모두 고려할 필요가 있다. 본 논문에서는 공간구조물의 가장 간단한 구조형식인 아치를 대상으로, 수평 상하지진동의 동시입력에 대한 순간가속도 응답배율의 특성을 고찰하였다. 또한, 지진동의 단독입력시의 등가정적지진력을 이용하여, 지진동의 동시입력에 대한 등가정적지진력을 제안하였다.
        4,000원
        4.
        1999.06 KCI 등재 구독 인증기관 무료, 개인회원 유료
        이전의 연구에서 하중증분법을 이용하여 지점 변위를 일으키고 자중. 부력, 그리고 조류력을 받는 해양케이블의 초기평형 상태를 결정하였다 본 연구에서는 이 상태를 기준으로 동적으로 지점운동 또는 지진하중에 대하여 첨가질량 및 케이블운동에 의한 Morison force를 고려한 해양케이블의 동적 비선형해석을 수행한다 지점운동과 지진력을 받는 수중케이블에 대하여 기하학적인 비선형해석을 수행하고 해석결과의 분석을 통하여 해양케이블의 동특성을 파악한다.
        4,000원
        5.
        2019.04 서비스 종료(열람 제한)
        In this study the frame based-FE model of road facility-supporting structures was created and analyzed to investigate the distributions of seismic forces according to the types of the supporting structures. From the results of response spectrum analysis, the first to third natural periods of most road facility supporting structures are ranged around an effective acceleration response zone in the design response spectrum and the base shear force and base moment increase as the size of the structures increases.
        6.
        2013.04 서비스 종료(열람 제한)
        For the reliable design of an offshore platform, it is very important to reduce the effects of wave forces as well as to increase the safety of structure. In order to reduce the wave forces on structures, the partial porous cylinder, which is composed of a porous part located near free surface and a rigid part bounded top and bottom by impermeable end caps, is newly suggested. Using the Eigen-function expansion method the wave force on partial porous cylinders are calculated. Applying the wave forces and seismic forces, the dynamic response evaluations of the platform are carried out through the modal analysis and the substructure method based on the effect of soil-structure interaction. The displacement and bending stress are computed using the various input parameters, such as the shear-wave velocity of soil and the porosity rate.