• 제목/요약/키워드: prying action force

검색결과 6건 처리시간 0.022초

고력볼트로 체결된 T-stub의 지레작용력 및 부재 접촉력 예측모델 (Prediction Models for the Prying Action Force and Contact Force of a T-stub Fastened by High-Strength Bolts)

  • 양재근;백민창
    • 한국강구조학회 논문집
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    • 제25권4호
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    • pp.409-419
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    • 2013
  • 인장력을 받는 고력볼트로 체결된 T-stub는 지레작용력과 부재 사이의 접촉력 등의 영향을 받는다. 이러한 지레작용과 부재 사이의 접촉력 등이 고려된 설계식이 제안되지 않는 경우, 인장력을 받는 T-stub는 예측한 설계강도 보다 더 작은 강도에도 파괴될 가능성이 있다. 이를 방지하기 위하여 지금까지 많은 연구를 통하여 고력볼트로 체결된 T-stub의 지레작용력과 부재 사이의 접촉력 예측모델이 제안되었다. 그러나 아직도 우리나라에서는 이를 반영한 설계식의 제안이 이루어지고 있지 않다. 따라서 이 연구는 3차원 비선형 유한요소해석법을 적용하여 그동안 제안된 예측모델을 개선한 보다 정확한 지레작용력 및 접촉력 예측모델을 제안하고자 진행하였다. 3차원 비선형 유한요소 해석 결과, 이 연구에서 제안한 지레작용력 및 접촉력 예측모델은 기존의 예측모델보다 더 근사적인 예측값을 제공하였다.

파일럿 집광로봇 박스형 압력보상용기 구조설계식 (Structural Design Equation for a Box-shape Pressure Compensated Chamber of Pilot Mining Robot)

  • 이민욱;홍섭;임우철;이태희;최종수
    • 한국해양공학회지
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    • 제26권6호
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    • pp.66-73
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    • 2012
  • A pressure compensated chamber of a pilot mining robot isolates and protects an electrical-electronic system from the ambient highly pressured water. Since the inner pressure of the chamber is compensated with outer water pressure using hydraulic oil and pressure compensator, there exists a pressure difference, less than 1 bar, between outer and inner surface. The structural safety of the chamber is obtained relatively easier than the canister type which inner pressure is kept as the atmospheric pressure. However, due to the adoption of box shape for space efficiency and usage of the transparent engineering plastic viewport for checking inner circumstance, the viewport can be largely deformed. This large deformation can cause an additional tensile force, called the prying force, to the bolt-flange connection parts of the viewport. In this paper, we suggest the structural design equation considering the prying action for designing the structure of a box-shape pressure compensated chamber.

비보강 확장단부판 접합부에 체결된 고장력볼트의 지레작용력 및 축방향 인장강성에 대한 해석적 연구 (Analytical Study on the Prying Action Force and Axial Tensile Stiffness of High-Strength Bolts Used in an Unstiffened Extended End-Plate Connection)

  • 김희동;양재근;이형동
    • 한국강구조학회 논문집
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    • 제27권2호
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    • pp.251-260
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    • 2015
  • 단부판 접합부는 다양한 형태로 보-기둥 모멘트 접합부에 적용되고 있다. 이러한 단부판 접합부는 단부판의 두께 및 길이, 고장력 볼트의 개수 및 직경, 고장력볼트의 게이지 거리, 고장력볼트의 지레작용력, 용접부의 치수 및 길이 등에 따라서 상이한 거동특성, 강성 및 강도, 에너지소산능력의 변화를 나타낸다. 따라서 이 연구는 단부판의 두께 변화에 따른 인장측에 체결된 고장력볼트의 지레작용력 및 축방향 인장강성을 파악하고, 단부판의 거동특성에 영향을 미치는 이러한 변수들을 예측하기 위한 해석모델을 제안하기 위하여 진행하였다. 이를 위하여 이 연구에서는 단부판의 두께만을 변수로 선택하여 비보강 확장단부판 접합부에 대한 3차원 비선형 유한요소해석을 수행하였다.

복합 프리캐스트 콘크리트 패널 수평접합부의 구조적 거동 (Structural Behavior on Horizontal Connection for Hybrid Precast Concrete Panel)

  • 이상섭;박금성
    • 대한건축학회논문집:구조계
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    • 제35권10호
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    • pp.155-162
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    • 2019
  • Hybrid precast concrete panel is a wall element that is able to quickly construct the core wall structure for moderate-rise modular buildings. Hybrid precast concrete panel has unique characteristics which is a pair of C-shaped steel beams combined at the top and bottom of a concrete wall, In this study, an improved anchorage detail for vertical rebar is proposed to ensure the lateral force resistance performance of hybrid precast concrete panel emulating monolithic concrete wall. Also, the structural performance of horizontal connection is investigated experimentally with the bolt spacing parameter. And the behavior of hybrid precast concrete panel with the improved detail is compared with the monolithic concrete wall tested in a previous study. Finally, the required thickness of C-shaped steel beam to eliminate or minimize the deformation in horizontal connection is calculated by prying action equation.

Relationships for prediction of backstay effect in tall buildings with core-wall system

  • Karimi, Mahdi;Kheyroddin, Ali;Shariatmadar, Hashem
    • Advances in Computational Design
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    • 제5권1호
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    • pp.35-54
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    • 2020
  • One of the prevailing structural systems in high-rise buildings is the core-wall system. On the other hand, the existence of one or more underground stories causes the perimeter below-grade walls with the diaphragm of grade level to constitute of a very stiff box. In this case or a similar situation, during the lateral response of a tall building, underground perimeter walls and diaphragms that provide an increased lateral resistance relative to the core wall may introduce a prying action in the core that is called backstay effect. In this case, a rather great force is generated at the diaphragm of the grade-level, acting in a reverse direction to the lateral force on the core-wall system, and thus typically causes a reverse internal shear. In this research, in addition to review of the results of the preceding studies, an improved relationship is proposed for prediction of backstay force. The new proposed relationship takes into account the effect of foundation flexibility and is presented in a non-dimensional form. Furthermore, a specific range of the backstay force to lateral load ratio has been determined. And finally, it is shown that although all suggested formulas are valid in the elastic domain, yet with some changes in the initial considerations, they can be applied to some certain non-linear problems as well.

내부 매입형 철골조로 보강된 철근콘크리트 건물의 내진 성능평가 (Seismic Performance Evaluation of Reinforced Concrete Buildings Strengthened by Embedded Steel Frame)

  • 김선웅;이경구
    • 한국지진공학회논문집
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    • 제24권1호
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    • pp.29-37
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    • 2020
  • 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.