• 제목/요약/키워드: Stiffness of member

검색결과 421건 처리시간 0.028초

종방향 부재의 강성효과를 고려한 쉴드 터널 분기부 보강 및 해석기법 (Reinforcement of shield tunnel diverged section with longitudinal member stiffness effect)

  • 이규필;김도
    • 한국터널지하공간학회 논문집
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    • 제21권5호
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    • pp.675-687
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    • 2019
  • 최근 대도시에는 교통량의 증가와 높은 토지 보상비 등으로 인해 도로 확충 시 대심도 복층 터널의 필요성이 증가하고 있으며, 국내에서도 일반적인 터널보다 단면이 작고 지하에서 다른 터널과 교차하는 네트워크형 터널이 계획되고 있다. 본 연구에서는 쉴드 터널 분기부에 있어서 기존 터널과 확폭부를 연결하는 연결상세에 있어 기존의 전단면 강재 접합부 대신 휨모멘트가 크게 발생하는 연결부에만 강재를 사용하는 부분 강재-콘크리트 접합부 상세와 쉴드 터널 분기부의 확폭 구간의 해석은 3차원 거동효과를 반영하기 위해 확폭부 시종점 구간의 기둥 효과와 종방향 부재의 강성효과를 고려할 수 있는 2차원 해석모델을 검토하였다. 2차원 해석기법으로 확폭부 시종점 구간에서 종방향 부재의 강성을 횡방향 모델에서 연결부의 탄성스프링 지점으로 고려하여 종방향 부재의 강성과 시종점부의 기둥효과를 반영하는 방법을 제안하였다. 제안된 2차원 해석기법을 이용한 구조해석 결과 일정값 이상의 강성을 갖는 종방향부재를 도입하면 접합부와 박스부의 휨모멘트를 저감 시킴으로써 부분 강재-콘크리트 접합부의 구조 안전성을 확보할 수 있는 것으로 검토되었다.

건축 강구조물의 초기 부재단면 설계 및 내진성능에 관한 연구 (The Evaluation of Seismic Performance and the Design of Initial Member Sections for Architectural Steel Structures)

  • 이상주;이동우;한상을
    • 한국공간구조학회논문집
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    • 제6권1호
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    • pp.101-109
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    • 2006
  • 내진 댐퍼 브레이스를 가진 강구조물은 브레이스가 지진입력에너지를 충분히 흡수함으로써 주요한 구성부재의 치명적인 피해를 현저하게 저감시키는 것이 가능하므로, 이 시스템 도입에 따른 거동특성 파악 및 적용성에 대한 연구가 활발히 진행되고 있다. 내진 댐퍼 브레이스를 가진 강구조물의 설계에 있어서는 구조물에 대한 브레이스의 강성비를 결정하여야 하며, 내진성능이 우수한 구조물을 설계하기 위해서는 강성비에 따른 구조물의 지진응답 특성을 파악할 필요가 있다. 본 연구에서는 소성설계에 기초하여 내진 댐퍼 브레이스의 수평 강성비에 따른 강구조물의 초기 부재단면를 설계하고, 지진응답해석을 수행하여 초기 부재단면 설계의 타당성 검토 및 동적거동 특성을 파악한다.

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Theoretical study of sleeved compression members considering the core protrusion

  • Zhang, Chenhui;Deng, Changgen
    • Structural Engineering and Mechanics
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    • 제66권6호
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    • pp.783-792
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    • 2018
  • This paper presents a detailed theoretical study of the sleeved compression members based on a mechanical model. In the mechanical model, the core protrusion above sleeve and the contact force between the core and sleeve are specially taken into account. Via the theoretical analyses, load-displacement relationships of the sleeved compression members are obtained and verified by the experimental results. On the basis of the core moment distribution changing with the increase of the applied axial load, failure mechanism of the sleeved compression members is assumed and proved to be consistent with the experimental results in terms of the failure modes and the ultimate bearing capacities. A parametric study is conducted to quantify how essential factors including the core protrusion length above sleeve, stiffness ratio of the core to sleeve, core slenderness ratio and gap between the core and sleeve affect the mechanical behaviors of the sleeved compression members, and it is concluded that the constrained effect of the sleeve is overestimated neglecting the core protrusion; the improvement of ultimate bearing capacity for the sleeved compression member is considered to be decreasing with the decrease of the core slenderness ratio and for the sleeved compression member with core of small slenderness ratio, small gap and small stiffness ratio are preferred to obtain larger ultimate bearing capacity and stiffness.

할선강성을 이용한 직접내진설계 (Direct Earthquake Design Using Secant Stiffness)

  • 박홍근;엄태성
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2003년도 추계 학술발표회논문집
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    • pp.239-246
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    • 2003
  • A new earthquake design method performing iterative calculations using secant stiffness was developed. The proposed design method has the advantages of convenience and stability in numerical analysis because it uses elastic analysis. At the same time, the proposed design method can accurately estimate the strength and ductility demands on the members because it performs the analysis on the inelastic behavior of structure using iterative calculation. In the present study, the procedure of the proposed design method was established, and a computer program incorporating the proposed method was developed. Design examples using the proposed method were presented, and its advantages were presented by the comparisons with existing design methods using elastic or inelastic analysis. The proposed design method, as an integrated method of analysis and design, can address the earthquake design strategy devised by the engineer, such as ductility limit on each member, the design concept of strong column - weak beam, and etc. Through iterative calculations on the structure preliminarily designed only with member sizing, the strength and ductility demands of each member can be directly calculated so as to satisfy the given design strategy As the result economical and safe design can be achieved.

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할선강성을 이용한 직접 비선형 스트럿-타이 모델 (Direct Nonlinear Strut-Tie Model Using Secant Stiffness)

  • 김윤곤;엄태성;박홍근
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2003년도 가을 학술발표회 논문집
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    • pp.384-387
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    • 2003
  • A new Direct Nonlinear Strut-Tie Model design method performing iterative calculations using secant stiffness was developed. Since basically the proposed design method uses elastic analysis, it has the advantages of convenience and stability in numerical analysis. At the same time, the proposed design method can accurately estimate the strength and ductility demands on the members because it analyzes the inelastic behavior of structure using iterative calculation. In the present study, the procedure of the proposed design method was established, and a computer program incorporating the proposed method was developed. The proposed design method, as an integrated method of analysis and design, can address the earthquake design strategy devised by the engineer, such as ductility limit on each member. Through iterative calculations on the structure preliminary designed with member sizes, the strength and ductility demands of each member can be estimated so that they satisfy the given design strategy, and as the result economical and safe design is achieved.

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이상화 구조요소법에 의한 골조구조물의 최종강도해석에 관한 연구 (A Study on the Ultimate Strength Analysis of Frame Structures by Idealized Structural Unit Method)

  • 백점기;임화규
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 1990년도 가을 학술발표회 논문집
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    • pp.28-33
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    • 1990
  • This paper presents an efficient and accurate method for nonlinear analysis of frame structures by idealized structural unit method. The main idea behind the present method is to minimize the cost of the computational effort by reducing the number of unknowns. An explicit form of the tangential elastic stiffness matrix of the element is derived by using updated Lagrangian approach. An ultimate limit state of the element is judged on the basis of the formation of a plastic hinge mechanism. The elasto-plastic stiffness matrix and the post-ultimate stiffness matrix of the element are formulated by plastic node method. A comparison between the present method is very efficient and accurate because the computing time required is very small while giving the accurate solution.

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ATMD가 설치된 두 인접빌딩간 강성연결방식을 통한 내진성능 개선 (Seismic Response Enhancement through Stiffness Connection of Two Adjacent Buildings equipped with ATMD)

  • 박관순;옥승용
    • 한국안전학회지
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    • 제32권5호
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    • pp.47-53
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    • 2017
  • In this study, we propose a new control system that effectively utilizes the interaction effect of control force through the connection of stiffness member for seismic performance enhancement of two adjacent structures equipped with active tuned mass damper (ATMD). The efficiency of the proposed control system is verified by comparing with the existing independent control system through the numerical simulations of the 10th- and 12th-story buildings. From the numerical results, it is confirmed that the proposed method can show similar or better control performance even with more economical control capacity than the existing independent control system. Another advantage is that the existing system does not exhibit the adaptive control performance in emergency of failure of one control device, whereas the proposed system can achieve successful adaptive control performance by economically and efficiently utilizing the interacting control effect through the connection member.

차체구조용 박육부재의 단면형상변화에 따른 에너지흡수 특성 (Energy Absorbing Characteristics of Thin-Walled Members for Vehicles Having Various Section Shapes)

  • 차천석;정진오;이길성;백경윤;양인영
    • 한국정밀공학회지
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    • 제20권10호
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    • pp.177-182
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    • 2003
  • The front-end side members of automobiles absorb most of the energy in a case of front-end collision. The front-end side members are required to have a high stiffness together with easiness to collapse sequentially to absorb more impact energy. The axial static collapse test (5mm/min) was conducted by using UTM for form different types of members which have different cross section shapes; single hat, single cap, double cap, and double hat. The single hat shaped section member has the typical standard section, which the double hat shape section has a symmetry in the center to have more stiffness. As a result of the test, the energy absorbing characteristic was analyzed for different section shapes. It turned out that the change of section shape influence the absorbing energy, the mean collapse load and the maximum collapse load, and the relation between the change of section shape and the collapse mode.

최적화 기법을 이용한 모울트 체결체의 강성 평가 (Stiffness Determination of a Bolted Member Using Optimization Technique)

  • 김태완;손용수;박성호
    • 전산구조공학
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    • 제6권4호
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    • pp.99-105
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    • 1993
  • 본 연구에서는 보울트-너트 체결기구의 체결장력 설계(Pre-Load Design)시 중요한 인자의 하나인 체결체의 강성(Stiffness)을 유한요소법을 이용하여 해석하였다. 비선형 간극요소(Non-linear Gap Element)와 최적화 기법(Optimization Technique)을 도입하여 유한요소해석 과정에서 요구되는 경계조건(Boundary Condition)의 설정과정을 일반화하였으며, 체결체간의 기밀성 상실 현상을 입증하였다. 변형량과 응력분포로부터 체결체의 강성을 해석하고, 기존의 경험식의 적용범위를 검토하였다.

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정적응축기법을 이용한 부분재해석 알고리즘 (Partial Reanalysis Algorithm with Static Condensation)

  • 김치경;최동인
    • 한국공간구조학회:학술대회논문집
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    • 한국공간구조학회 2006년도 춘계 학술발표회 논문집 제3권1호(통권3호)
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    • pp.175-181
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    • 2006
  • This paper presents an efficient reanalysis algorithm, named PRAS (Partial Reanalysis algorithm using Adaptable Substructuring), for the partially changed structures. The algorithm recalculates directly any displacement or member force under consideration in real time without a full reanalysis in spite of local changes in member stiffness or connectivity. The key procedures consists of 1) partitioning the whole structure into the changed part and the unchanged part, 2) condensing the internal degrees of freedom and forming the unchanged part substructure, 3) assembling and solving the new stiffness matrix from the unchanged part substructure and the changed members.

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