• 제목/요약/키워드: Axial Displacement

검색결과 781건 처리시간 0.023초

Research on hysteretic characteristics of EBIMFCW under different axial compression ratios

  • Li, Sheng-cai;Lin, Qiang
    • Earthquakes and Structures
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    • 제22권5호
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    • pp.461-473
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    • 2022
  • Energy-saving block and invisible multiribbed frame composite wall (EBIMFCW) is an important shear wall, which is composed of energy-saving blocks, steel bars and concrete. This paper conducted seismic performance tests on six 1/2-scale EBIMFCW specimens, analyzed their failure process under horizontal reciprocating load, and studied the effect of axial compression ratio on the wall's hysteresis curve and skeleton curve, ductility, energy dissipation capacity, stiffness degradation, bearing capacity degradation. A formula for calculating the peak bearing capacity of such walls was proposed. Results showed that the EBIMFCW had experienced a long time deformation from cracking to failure and exhibited signs of failure. The three seismic fortification lines of the energy-saving block, internal multiribbed frame, and outer multiribbed frame sequentially played important roles. With the increase in axial compression ratio, the peak bearing capacity and ductility of the wall increased, whereas the initial stiffness decreased. The change in axial compression ratio had a small effect on the energy dissipation capacity of the wall. In the early stage of loading, the influence of axial compression ratio on wall stiffness and strength degradation was unremarkable. In the later stage of loading, the stiffness and strength degradation of walls with high axial compression ratio were low. The displacement ductility coefficients of the wall under vertical pressure were more than 3.0 indicating that this wall type has good deformation ability. The limit values of elastic displacement angle under weak earthquake and elastic-plastic displacement angle under strong earthquake of the EBIMFCW were1/800 and 1/80, respectively.

Mid-length lateral deflection of cyclically-loaded braces

  • Sheehan, Therese;Chan, Tak-Ming;Lam, Dennis
    • Steel and Composite Structures
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    • 제18권6호
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    • pp.1569-1582
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    • 2015
  • This study explores the lateral deflections of diagonal braces in concentrically-braced earthquake-resisting frames. The performance of this widely-used system is often compromised by the flexural buckling of slender braces in compression. In addition to reducing the compressive resistance, buckling may also cause these members to undergo sizeable lateral deflections which could damage surrounding structural components. Different approaches have been used in the past to predict the mid-length lateral deflections of cyclically loaded steel braces based on their theoretical deformed geometry or by using experimental data. Expressions have been proposed relating the mid-length lateral deflection to the axial displacement ductility of the member. Recent experiments were conducted on hollow and concrete-filled circular hollow section (CHS) braces of different lengths under cyclic loading. Very slender, concrete-filled tubular braces exhibited a highly ductile response, undergoing large axial displacements prior to failure. The presence of concrete infill did not influence the magnitude of lateral deflection in relation to the axial displacement, but did increase the number of cycles endured and the maximum axial displacement achieved. The corresponding lateral deflections exceeded the deflections observed in the majority of the previous experiments that were considered. Consequently, predictive expressions from previous research did not accurately predict the mid-height lateral deflections of these CHS members. Mid-length lateral deflections were found to be influenced by the member non-dimensional slenderness (${\bar{\lambda}}$) and hence a new expression was proposed for the lateral deflection in terms of member slenderness and axial displacement ductility.

지진하중을 고려한 장대레일교량의 궤도-교량 상호작용에 대한 안전성 평가 (Safety Evaluation on Interaction between Track and Bridge in Continuous Welded Railway Bridge Considering Seismic Load)

  • 심윤보;김연태;김상철
    • 한국구조물진단유지관리공학회 논문집
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    • 제20권2호
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    • pp.40-48
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    • 2016
  • 본 연구는 지진이 발생할 경우 장대레일교량에 있어 레일과 상판 간의 종방향 상호작용에 미치는 영향을 검토하기 위한 것으로, 해석모델에 여러 하중조합과 함께 지진하중을 적용함으로써 대상 철도교량 레일에서의 축방향 부가응력과 레일-상판 간 상대변위의 변화를 산출하였다. 해석 결과, 본 연구 대상 철도교량의 경우 철도시설공단에서 제시하고 있는 표준응답스펙트럼을 적용할 때 레일부가응력은 대부분의 하중조합에 대해 허용기준 내의 값을 보이고 있는 반면, 레일-상판 상대변위는 공단에서 제시하는 허용기준을 초과하고 있는 것으로 나타났다. 따라서 레일-상판 상대변위가 레일부가응력에 비해 상대적으로 더 허용기준을 만족시키기 어렵다는 것을 알 수 있었으며, 아울러 고베 대지진과 같은 큰 규모의 지진이 발생하면 레일부가응력과 레일-상판 상대변위는 허용기준을 충족시키지 못하므로 이에 대한 적절한 내진 대비가 필요하다.

내부연결 원추형 임플란트의 육각구조의 유무에 따른 연결부 안정성: 실험적 연구 (Joint stability of internal conical connection abutments with or without hexagon indexes: an in vitro study)

  • 이상운;차민상;이지혜;조리라;박찬진
    • 구강회복응용과학지
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    • 제36권2호
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    • pp.95-103
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    • 2020
  • 목적: 본 연구의 목적은 내부연결 원추형 임플란트의 육각구조 유무가 임플란트 지대주 장축변위와 임플란트 지대주 나사의 풀림토크에 미치는 영향을 평가하고자 하였다. 연구 재료 및 방법: 내부연결 원추형 임플란트를 육각구조를 가진 지대주 그룹(HEX)과 육각구조를 갖지 않는 지대주 그룹(CON)으로 나누고 각 그룹 당 10쌍의 시편을 체결하였다. 지대주 나사를 30 Ncm 조임회전력을 가하여 체결한 뒤 장축변위 및 풀림토크값을 측정하고 250 N 수직적 반복하중을 100,000회 가한 뒤 장축변위 및 풀림토크값을 측정하였다. 각 단계마다 디지털 마이크로미터를 이용하여 임플란트 직경과 수직적 높이를 측정하였고 전자 토크게이지를 이용하여 풀림토크값을 측정하였다. 각 군간의 값의 유의차를 확인하기 위하여 독립 표본 T 검정을 이용하여 통계분석하였다(α = 0.05). 결과: HEX 군은 조임회전력을 가한 뒤 유의하게 높은 장축변위를 나타내였다(P < 0.05). HEX 군과 CON 군은 수직적 반복하중 후 장축변위에 유의한 차이를 보이지 않았다(P = 0.052). HEX 군과 CON 군은 수직적 반복하중 전, 후 풀림토크값 모두 유의한 차이를 보이지 않았다(P = 0.057 and P = 0.138). 모든 그룹에서 반복하중 후 풀림토크값 상실율이 증가하였다(P < 0.05). 결론: 내부연결 원추형 임플란트에서 육각구조를 가진 경우 장축 변위가 더 컸으며, 그 외의 연결부 안정성은 유사하였다. 모든 그룹에서 반복하중 후 풀림토크값 상실율이 증가하였다.

Mechanical properties of reinforced-concrete rocking columns based on damage resistance

  • Zhu, Chunyang;Cui, Yanqing;Sun, Li;Du, Shiwei;Wang, Xinhui;Yu, Haochuan
    • Structural Engineering and Mechanics
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    • 제80권6호
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    • pp.737-747
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    • 2021
  • The objective of seismic resilience is to maintain or rapidly restore the function of a building after an earthquake. An efficient tilt mechanism at the member level is crucial for the restoration of the main structure function; however, the damage resistance of the members should be the main focus. In this study, through a comparison with the classical Flamant theory of local loading in the elastic half-space, an elastomechanical solution for the axial-stress distribution of a reinforced-concrete (RC) rocking column was derived. Furthermore, assuming that the lateral displacement of the rocking column is determined by the contact surface rotation angle of the column end and bending and shear deformation of the column body, the load-lateral displacement mechanical model of the RC rocking column was established and validated through a comparison with finite-element simulation results. The axial-compression ratio and column-end strength were analyzed, and the results indicated that on the premise of column damage resistance, simply increasing the axial-compression ratio increases the lateral loading capacity of the column but is ineffective for improving the lateral-displacement capacity. The lateral loading and displacement of the column are significantly improved as the strength of the column end material increases. Therefore, it is feasible to improve the working performance of RC rocking columns via local reinforcement of the column end.

사판식 가변 용량형 액셜 피스톤 펌프의 일정출력 레귤레이터 특성 시뮬레이션 (Simulation on Characteristics of Constant Power Regulator Systems in Variable Displacement Axial Piston Pump)

  • 이지민;박성환;박용호;이현희
    • 동력기계공학회지
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    • 제15권2호
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    • pp.5-12
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    • 2011
  • In this study, modeling and numerical simulations has been performed to investigate performance characteristics of constant power regulator system for swash plate type axial piston pump. The commercial numerical simulation software, AMESim was applied for analyzing the dynamic behavior of constant power regulator system of swash plate axial piston pump. The validity of simulation model of constant power regulator system is verified by comparing simulation results with experiments. Also, the behavior of main components of constant power regulator system such as spool, sleeve and counterbalance piston is investigated using the results of computer simulation.

Soil-structure interaction and axial force effect in structural vibration

  • Gao, H.;Kwok, K.C.S.;Samali, B.
    • Structural Engineering and Mechanics
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    • 제5권1호
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    • pp.1-19
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    • 1997
  • A numerical procedure for dynamic analysis of structures including lateral-torsional coupling, axial force effect and soil-structure interaction is presented in this study. A simple soil-structure system model has been designed for microcomputer applications capable of reflecting both kinematic and inertial soil-foundation interaction as well as the effect of this interaction on the superstructure response. A parametric study focusing on inertial soil-structure interaction is carried out through a simplified nine-degree of freedom building model with different foundation conditions. The inertial soil-structure interaction and axial force effects on a 20-storey building excited by an Australian earthquake is analysed through its top floor displacement time history and envelope values of structural maximum displacement and shear force.

일래스토메릭 부싱의 축방항모드에 대한 리아니스 모델연구 (A Study of Lianis Model for Elastomeric Bushing in Axial Mode)

  • 이성범
    • Elastomers and Composites
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    • 제37권3호
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    • pp.151-158
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    • 2002
  • 본 연구에서 고려된 elastomeric bushing은 자동차 현가장치에 사용되는 기계요소로서, 바깥쪽의 실린더형 슬리브와 안쪽의 실린더형 축 사이에서 가운데가 완전히 비어있는 실린더의 형태를 가진다. 본 연구에서는 일래스토메릭 부싱에 적용되는 힘과 변형의 관계가 비선형이고 점탄성의 특성을 보이므로, Lianis에 의해 발전되어진 비선형 점탄성 비압축 재료에 대한 구조방정식을 사용하여, 부싱의 축방향 응답에 대한 힘과 변위의 관계를 얻었다. 또한 변위에 의존하는 force relaxation function은 extrapolation method에 의한 ramp displacement control test로부터 완성되고, 이는 step displacement control test로부터 얻게된 결과와 비교하며, 두 결과가 매우 잘 일치됨을 확인하였다.

Dynamic stiffness matrix of composite box beams

  • Kim, Nam-Il
    • Steel and Composite Structures
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    • 제9권5호
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    • pp.473-497
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    • 2009
  • For the spatially coupled free vibration analysis of composite box beams resting on elastic foundation under the axial force, the exact solutions are presented by using the power series method based on the homogeneous form of simultaneous ordinary differential equations. The general vibrational theory for the composite box beam with arbitrary lamination is developed by introducing Vlasov°Øs assumption. Next, the equations of motion and force-displacement relationships are derived from the energy principle and explicit expressions for displacement parameters are presented based on power series expansions of displacement components. Finally, the dynamic stiffness matrix is calculated using force-displacement relationships. In addition, the finite element model based on the classical Hermitian interpolation polynomial is presented. To show the performances of the proposed dynamic stiffness matrix of composite box beam, the numerical solutions are presented and compared with the finite element solutions using the Hermitian beam elements and the results from other researchers. Particularly, the effects of the fiber orientation, the axial force, the elastic foundation, and the boundary condition on the vibrational behavior of composite box beam are investigated parametrically. Also the emphasis is given in showing the phenomenon of vibration mode change.

Forced vibration of nanorods using nonlocal elasticity

  • Aydogdu, Metin;Arda, Mustafa
    • Advances in nano research
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    • 제4권4호
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    • pp.265-279
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    • 2016
  • Present study interests with the longitudinal forced vibration of nanorods. The nonlocal elasticity theory of Eringen is used in modeling of nanorods. Uniform, linear and sinusoidal axial loads are considered. Dynamic displacements are obtained for nanorods with different geometrical properties, boundary conditions and nonlocal parameters. The nonlocal effect increases dynamic displacement and frequency when compared with local elasticity theory. Present results can be useful for modeling of the axial nanomotors and nanoelectromechanical systems.