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        검색결과 8

        1.
        2022.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        콘크리트 바닥판의 파손 등으로 인하여 강합성 거더 교량의 생애주기가 짧아짐에 따라 프리캐스트 바닥판을 사용한 모듈화 공법에 대한 연구가 활발히 진행되고 있으나, 바닥판의 해체 시 발생하는 분진 및 소음으로 인한 환경적 측면에 대한 연구는 미흡한 실정이다. 본 연구는 기존 용접 스터드 볼트를 대체할 수 있는 볼트 접합 전단연결재의 성능을 검증하기 위하여 정적강도 실험 및 피로강도 실험을 수행하였다. 실험결과 200만 회 피로하중에 대하여 실험체의 균열 및 파괴 양상은 관측되지 않았으며, 이후 실시한 잔류강도 실험 또한 정적강도 실험과 동일한 것으로 확인되었다.
        4,000원
        3.
        2015.06 KCI 등재 구독 인증기관 무료, 개인회원 유료
        As aluminum foam has the most superior absorption of impact energy, this material has been used at automobile and airplane. If aluminum foam is used by jointing bolt and nut, it can be broken. Therefore, it is more effective to bond aluminum foam and other materials by adhesive. In this study, the fatigue fracture simulation through ANSYS program is carried out on the aluminum foam specimen bonded with adhesive as the type of DCB Mode Ⅲ. There are four kinds of specimens with the types of DCB Mode Ⅲ in this study. The thicknesses of four specimens are 35mm, 45mm, 55mm and 65mm. In cases of specimen thicknesses of 35mm, 45mm, 55mm and 65mm, the maximum loads are shown as ±0.2kN, ±0.55kN, ±1kN and ±1.2kN respectively. As the specimen thickness increases, the maximum loads increase. The results of fatigue experiment as specimen thickness of 55mm can be shown to approach the simulation results by confirming the simulation results of this study. So, The simulation data can be applied in order to investigate the mechanical property at DCB specimen with the type of Mode Ⅲ.
        4,000원
        4.
        2013.12 KCI 등재 구독 인증기관 무료, 개인회원 유료
        Adhesive joint method has been used instead of welding, reveted joint, bolt and nut in various industry fields recently. Aluminum foam has hole or crack on adhesive interface which is different from common composite material. To investigate shear characteristic of adhesive interface between aluminum foams, double cantilever beams(DCB) with thicknesses of 25mm, 45mm and 65mm bonded with single-lab joints are designed. The relation between nodes at finite element model is important to investigate adhesive strength in this study. All meshes are generated and some nodes are located on adhesive zone along collinear axis. As reaction force obtained by static experiment is applied, fatigue analysis is carried with 10Hz. In advance, adhesive property is obtained by preliminary experiment for applying adhesive strength to input into simulation analysis. With these conditions, the analysis results show that 2.97MPa, 3.10MPa and 4.2MPa of maximum equivalent stresses are shown respectively in case model thicknesses are 25mm, 45mm and 65mm. By use of the simulation result at this study, it is possible to find adhesive behavior of aluminum foam and be applied to real adhesive joint structure without experiment by sparing experimental cost and time
        4,000원
        5.
        2017.04 서비스 종료(열람 제한)
        In this study, experiment and analysis of high-strength bolt connection under shear fatigue loading was conducted to evaluate reduction of axial force of bolt. Three type of bolt size and initial axial force were applied to specimens. As a results, it was observed that the reduction ratio of axial force, and that would be used to additional parametric study.
        6.
        2017.01 KCI 등재 서비스 종료(열람 제한)
        In this study, experiment and analysis of high-strength bolt connection under shear fatigue loading was conducted to evaluate reduction of axial force of bolt. Three type of bolt size and initial axial force were applied to specimens. As a results, it was observed that the reduction ratio of axial force, and that would be used to additional parametric study.
        7.
        2016.10 서비스 종료(열람 제한)
        High-strength bolt has high stiffness and fatigue strength. At this time, initial axial force is one of main factor to affect the strength and deformation behavior of connection. Therefore, the objective of this study is to investigate reduction of initial axial force in high-strength bolt under shear fatigue.