• 제목/요약/키워드: Panel Stiffness

검색결과 284건 처리시간 0.026초

Investigation of the link beam length of a coupled steel plate shear wall

  • Gholhaki, M.;Ghadaksaz, M.B.
    • Steel and Composite Structures
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    • 제20권1호
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    • pp.107-125
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    • 2016
  • Steel shear wall system has been used in recent years in tall buildings due to its appropriate behavior advantages such as stiffness, high strength, economic feasibility and high energy absorption capability. Coupled steel plate shear walls consist of two steel shear walls that are connected to each other by steel link beam at each floor level. In this article the frames of 3, 10, and 15 of (C-SPSW) floor with rigid connection were considered in three different lengths of 1.25, 2.5 and 3.75 meters and link beams with plastic section modulus of 100% to the panel beam at each floor level and analyzed using three pairs of accelerograms based on nonlinear dynamic analysis through ABAQUS software and then the performance of walls and link beams at base shear, drift, the period of structure, degree of coupling (DC) and dissipated energy evaluated. The results show that the (C-SPSW) system base shear increases with a decrease in the link beam length, and the drift, main period and dissipated energy of structure decreases. Also the link beam length has different effects on parameters of coupling degrees.

Cyclic behavior of steel beam-concrete wall connections with embedded steel columns (I): Experimental study

  • Li, Guo-Qiang;Gu, Fulin;Jiang, Jian;Sun, Feifei
    • Steel and Composite Structures
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    • 제23권4호
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    • pp.399-408
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    • 2017
  • This paper experimentally studies the cyclic behavior of hybrid connections between steel coupling beams and concrete shear walls with embedded steel columns. Four beam-to-wall connection specimens with short and long embedded steel columns are tested under monotonic and cyclic loads, respectively. The influence of embedment length of columns on the failure mode and performance of connections is investigated. The results show that the length of embedded steel columns has significant effect on the failure mode of connections. A connection with a long embedded column has a better stiffness, load-bearing capacity and ductility than that of a short embedded column. The former fails due to the shear yielding of column web in the joint panel, while failure of the latter is initiated by the yielding of horizontal reinforcement in the wall due to the rigid rotation of the column. It is recommended that embedded steel columns should be placed along the entire height of shear walls to facilitate construction and enhance the ductility.

철도터널내 조적식 라이닝의 모형화에 관한 연구 (Modeling of Old Masonry Lining in Railroad Tunnels)

  • 이준석;신현곤;김무일
    • 한국터널지하공간학회 논문집
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    • 제3권3호
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    • pp.3-13
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    • 2001
  • 본 연구에서는 재래식 철도터널의 라이닝재로 사용된 조적식 구조물의 해석기법에 대하여 논의하였다. 이를 위하여 기존의 조적식 구조물 모형화 과정과는 다르게 다층 조적조에 대한 해석기법을 제안하였으며 조적의 각종 비등방 물성을 도표화하여 현장에서 손쉽게 적용가능하도록 하였다. 조적조내 균열발생 경우를 고려하여 다층 조적조의 분산형 균열모형을 제안하였으며 균열전파 모형도 함께 고려하였다. 수치해석을 통하여 제안한 모형의 적정성을 검증하였으며 향후 연구방향에 대하여 간단히 언급하였다.

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Cyclic performance of RC beam-column joints enhanced with superelastic SMA rebars

  • Ghasemitabar, Amirhosein;Rahmdel, Javad Mokari;Shafei, Erfan
    • Computers and Concrete
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    • 제25권4호
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    • pp.293-302
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    • 2020
  • Connections play a significant role in strength of structures against earthquake-induced loads. According to the post-seismic reports, connection failure is a cause of overall failure in reinforced concrete (RC) structures. Connection failure results in a sudden increase in inter-story drift, followed by early and progressive failure across the entire structure. This article investigated the cyclic performance and behavioral improvement of shape-memory alloy-based connections (SMA-based connections). The novelty of the present work is focused on the effect of shape memory alloy bars is damage reduction, strain recoverability, and cracking distribution of the stated material in RC moment frames under seismic loads using 3D nonlinear static analyses. The present numerical study was verified using two experimental connections. Then, the performance of connections was studied using 14 models with different reinforcement details on a scale of 3:4. The response parameters under study included moment-rotation, secant stiffness, energy dissipation, strain of bar, and moment-curvature of the connection. The connections were simulated using LS-DYNA environment. The models with longitudinal SMA-based bars, as the main bars, could eliminate residual plastic rotations and thus reduce the demand for post-earthquake structural repairs. The flag-shaped stress-strain curve of SMA-based materials resulted in a very slight residual drift in such connections.

Using friction dampers in retrofitting a steel structure with masonry infill panels

  • Zahrai, Seyed Mehdi;Moradi, Alireza;Moradi, Mohammadreza
    • Steel and Composite Structures
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    • 제19권2호
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    • pp.309-325
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    • 2015
  • A convenient procedure for seismic retrofit of existing buildings is to use passive control methods, like using friction dampers in steel frames with bracing systems. In this method, reduction of seismic demand and increase of ductility generally improve seismic performance of the structures. Some of its advantages are development of a stable rectangular hysteresis loop and independence on environmental conditions such as temperature and loading rate. In addition to friction dampers, masonry-infill panels improve the seismic resistance of steel structures by increasing lateral strength and stiffness and reducing story drifts. In this study, the effect of masonry-infill panels on seismic performance of a three-span four-story steel frame with Pall friction dampers is investigated. The results show that friction dampers in the steel frame increase the ductility and decrease the drift (to less than 1%). The infill panels fulfill their function during the imposed drift and increase structural strength. It can be concluded that infill panels together with friction dampers, reduced structural dynamic response. These infill panels dissipated input earthquake energy from 4% to 10%, depending on their thickness.

A simple model for ground surface settlement induced by braced excavation subjected to a significant groundwater drawdown

  • Zhang, Runhong;Zhang, Wengang;Goh, A.T.C.;Hou, Zhongjie;Wang, Wei
    • Geomechanics and Engineering
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    • 제16권6호
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    • pp.635-642
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    • 2018
  • Braced excavation systems are commonly required to ensure stability in construction of basements for shopping malls, underground transportation and other habitation facilities. For excavations in deposits of soft clays or residual soils, stiff retaining wall systems such as diaphragm walls are commonly adopted to restrain the ground movements and wall deflections in order to prevent damage to surrounding buildings and utilities. The ground surface settlement behind the excavation is closely associated with the magnitude of basal heave and the wall deflections and is also greatly influenced by the possible groundwater drawdown caused by potential wall leakage, flow from beneath the wall, flow from perched water and along the wall interface or poor panel connections due to the less satisfactory quality. This paper numerically investigates the influences of excavation geometries, the system stiffness, the soil properties and the groundwater drawdown on ground surface settlement and develops a simplified maximum surface settlement Logarithm Regression model for the maximum ground surface settlement estimation. The settlements estimated by this model compare favorably with a number of published and instrumented records.

국내 무보강 조적조 건물의 지진취약도함수 (Seismic Fragility Function for Unreinforced Masonry Buildings in Korea)

  • 안숙진;박지훈
    • 한국지진공학회논문집
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    • 제25권6호
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    • pp.293-303
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    • 2021
  • Seismic fragility functions for unreinforced masonry buildings were derived based on the incremental dynamic analysis of eight representative inelastic numerical models for application to Korea's earthquake damage estimation system. The effects of panel zones formed between piers and spandrels around openings were taken into account explicitly or implicitly regarding stiffness and inelastic deformation capacity. The site response of ground motion records measured at the rock site was used as input ground motion. Limit states were proposed based on the fraction of structural components that do not meet the required performance from the nonlinear static analysis of each model. In addition to the randomness of ground motion considered in the incremental dynamic analysis explicitly, supplementary standard deviation due to uncertainty that was not reflected in the fragility assessment procedure was added. The proposed seismic fragility functions were verified by applying them to the damage estimation of masonry buildings located around the epicenter of the 2017 Pohang earthquake and comparing the result with actual damage statistics.

A6451 알루미늄 및 용융아연도금강판의 클린칭 접합특성 및 접합기술의 차체 부품 적용 연구 (A Study on Clinching Characteristics for A6451 Aluminum and Galvanized Steels and the Application of Clinching Technology to Automotive Parts)

  • 권의표;박현경
    • 한국기계기술학회지
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    • 제20권6호
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    • pp.886-893
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    • 2018
  • In this study, clinching characteristics of aluminum and galvanized steels were investigated for the application of clinching as a joining technique to aluminum wheelhouse assembly. A6451 aluminium alloy and galvanized steel sheets were joined by hybrid joining(clinching + adhesive bonding). Tensile-shear load and fracture mode of hybrid joints were investigated. Maximum tensile-shear load of hybrid joints was about six times higher than that of clinched joints without adhesive. Energy absorption values of hybrid joints were higher than those of clinched joints without adhesive as well as resistance spot welded steel joints. Developed aluminum wheelhouse assembly showed higher static stiffness than the existing steel parts. Aluminum wheelhouse inner panel unit was 44% lighter than the steel unit, and the final assembled aluminum wheelhouse was 14.6% lighter than the existing steel parts.

강구조에서 ㄱ형강을 이용한 반강접 접합의 간편 설계 (A Study on the Simple Design Method of Semi-Rigid Connection with Angle in Steel Structure)

  • 허명재;김홍근;최원구
    • 한국강구조학회 논문집
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    • 제23권3호
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    • pp.261-273
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    • 2011
  • 최근에는 건축물의 대형화, 고층화라는 시대적인 흐름과 요구로 인해서 철골 구조의 수요가 급증하고 있다. 일반적인 철골 구조의 해석은 접합부를 강접합과 단순접합으로 가정하여 수행되고 있는데, 강접합(Fixed connection)의 경우에는 절점에 연결된 각 부재의 변형 전 상대적인 각도가 변형 후에도 그대로 유지된다고 가정하므로 접합부가 충분한 강성을 발휘하고 안정성을 확보하도록 패널존 부분에 스티프너로 보강을 한다. 하지만 인건비 상승과 함께 강접 접합부의 제작비가 과도해짐으로 경제성 측면에서 스티프너 보강을 생략한 접합부의 필요성이 증가하고 있다. 반면, 단순접합(Pinned connection)의 경우에는 단순보처럼 거동하여 보와 기둥 사이에 휨모멘트가 전달되지 않는다고 가정한다. 이는 공장제작이 간단하고, 시공이 간편한 장점이 있으나 접합부에서 모멘트를 전달할 수 없어서 구조적인 효율이 떨어지는 단점이 있다. 반강접의 도입은 단면치수 결정의 효율성을 증대하고, 현장에서의 부재조립 용이성, 골조 전체의 안전성 확보 등의 이점이 있어서 외국의 경우, 보-기둥 접합부의 실제적인 거동을 파악하기 위해서 계속적인 노력을 해왔고 그 결과를 규준에 적용하고 있다. 본 논문은 미국 AISC의 LRFD 설계규준을 참고하여 국내 강재를 적용한 반강접의 구조해석을 실시해서 각 강재에 대한 자료은행을 만들 것이고 이상화된 접합부의 구조해석 결과와 비교하여 경제성 측면, 단부 고정계수, 회전강성과 함께 반강접을 고려한 구조물의 설계 방안을 제시 하고자 한다.

투수성 GFRP 보강 복합체 개발 및 투수성에 대한 연구 (A Study on the Development and Performance Evaluation of Permeable GFRP Strengthening Panel for RC Structure)

  • 조병완;강석원;박철;김장욱
    • 한국구조물진단유지관리공학회 논문집
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    • 제17권3호
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    • pp.65-73
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    • 2013
  • 최근 콘크리트 구조물의 보강방법으로 FRP (Fiber Reinforced Polymer)를 이용한 외부부착보강공법이 많이 활용되고 있다. FRP 외부 부착보강은 중량에 비하여 높은 강도 및 강성, 우수한 내구성과 시공성 등 여러 가지 장점을 가지는 공법이다. 그러나 외부부착보강은 구조물이 투수성이 낮은 보강재로 밀폐되고 수분이 외부로 배출되지 못함으로 인하여, 장기적인 구조물의 손상을 발생시키는 문제점이 있다. 본 연구에서는 계면의 수분을 적절하게 배출할 수 있는 GFRP 보강재를 개발하고 투수성능을 측정하는데 주목적을 두고 있다. 이를 위하여 본 연구에서는 기존에 많이 사용되고 있는 보강공법을 투수가능한 구조로 변형하고 GFRP 함량을 변수로 보강재의 투수과정을 모사하는 실내 투수시험을 수행하여 보강재의 투수계수를 측정하였다. 또한 보강재의 투수과정에 대한 수치해석을 수행하여 측정된 투수계수 값을 이론적으로 검증하고자 하였다. 그 결과 섬유 함량중 75%의 섬유 함량에서 가장 많은 0.5129 $g/h\;m^2$의 수분이 배출되었으며, 인장강도 역시 75%였을 때 최대인장강도인 4,76.6MPa를 나타내어 75% 유리섬유 함량의 COSREM GP패널이 통기성 및 구조적으로 가장 우수한 것으로 나타났다.