• 제목/요약/키워드: Structural steel

검색결과 5,888건 처리시간 0.033초

Structural assessment of cold-formed composite structures

  • de Andrade, S.A.L.;da S. Vellasco, P.C.G.;Mergulhao, A.J.R.
    • Steel and Composite Structures
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    • 제2권5호
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    • pp.397-410
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    • 2002
  • The main aim of the present paper is to present the results of a full-scale experimental investigation to study the structural behaviour of composite steel beams. The composite beam was made of cold-formed steel section shapes filled with reinforced concrete. First a comprehensive description of the experimental results in terms of: deflections, deformations, slippage and stress levels on critical steps of the load path is presented. The experimental results were then compared to theoretical values obtained by the use of an analytical model based on ultimate limit state stress blocks. Finally, a practical application of the use of this structural solution is depicted.

강구조 재사용 시스템을 위한 탈부착이 가능한 PC 슬래브 접합부의 성능평가 (Performance Evaluation of Removable PC Slab Connection for the Reusable Steel Structural System)

  • 심현주;오은지;이은택
    • 한국강구조학회 논문집
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    • 제25권6호
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    • pp.649-658
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    • 2013
  • 최근 건축 분야에서도 친환경, 순환형 패러다임으로 전환되어지고 있다. 이 연구에서는 사용자의 요구에 따라 구조체의 해체에 의해 재사용이 가능한 구조시스템을 도입하여 건설자재의 절감 및 재활용, 구조체의 장수명화를 통해 친환경 및 $LCCO_2$를 저감할 수 있는 강구조 시스템을 구현하고자 한다. 부재의 재조합이나 재사용을 가능하게 하기 위하여 탈착이 가능한 바닥슬래브와 강재보 접합상세를 제안하고 구조성능 및 진동 등과 같은 동적 특성에 의해 사용성을 파악하고 평가하였다.

Finite element model calibration of a steel railway bridge via ambient vibration test

  • Arisoy, Bengi;Erol, Osman
    • Steel and Composite Structures
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    • 제27권3호
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    • pp.327-335
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    • 2018
  • This paper presents structural assessment of a steel railway bridge for current condition using modal parameter to upgrade finite element modeling in order to gather accurate result. An adequate monitoring, such as acceleration, displacement, strain monitoring, is important tool to understand behavior and to assess structural performance of the structure under surround vibration by means of the dynamic analysis. Evaluation of conditions of an existing steel railway bridge consist of 4 decks, three of them are 14 m, one of them is 9.7 m, was performed with a numerical analysis and a series of dynamic tests. Numerical analysis was performed implementing finite element model of the bridge using SAP2000 software. Dynamic tests were performed by collecting acceleration data caused by surrounding vibrations and dynamic analysis is performed by Operational Modal Analysis (OMA) using collected acceleration data. The acceleration response of the steel bridge is assumed to be governing response quantity for structural assessment and provide valuable information about the current statute of the structure. Modal identification determined based on response of the structure play significant role for upgrading finite element model of the structure and helping structural evaluation. Numerical and experimental dynamic properties are compared and finite element model of the bridge is updated by changing of material properties to reduce the differences between the results. In this paper, an existing steel railway bridge with four spans is evaluated by finite element model improved using operational modal analysis. Structural analysis performed for the bridge both for original and calibrated models, and results are compared. It is demonstrated that differences in natural frequencies are reduced between 0.2% to 5% by calibrating finite element modeling and stiffness properties.

강재 영구거푸집 와이드 보의 시공단계 구조성능 (Structural Performance of Permanent Steel Formed Wide Beams in Construction Stage)

  • 박유나;허인욱;김재현;할리오나;김성배;김강수
    • 한국구조물진단유지관리공학회 논문집
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    • 제27권5호
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    • pp.130-138
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    • 2023
  • 이 연구에서는 강재 영구거푸집 와이드 보를 대상으로 시공하중에 대한 실험적‧해석적 연구를 수행하였다. 측면강판의 리브 간격과 고정철물의 깊이를 변수 총 4개의 실험체를 제작하여 실험을 수행하였으며, 변수별 실험체의 구조거동 차이를 상세히 분석하였다. 또한, 실험결과를 기반으로 강재 영구거푸집 와이드 보의 유한요소해석 모델을 제안하였다. 검증된 해석모델을 활용하여 하부 및 측면강판의 리브 간격, 고정철물 간격, 고정철물 깊이 및 두께를 변수로 해석적 연구를 수행하였으며, 이를 통해 최적화된 상세를 도출하였다. 더 나아가 다양한 상세를 가지는 강재 영구거푸집 와이드 보의 변형량을 간단하게 예측할 수 있는 인공신경망 예측모델을 제안하였다.

Enhancing the Fire Performance of Concrete-Filled Steel Columns through System-Level Analysis

  • Fike, R.S.;Kodur, V.K.R.
    • 국제초고층학회논문집
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    • 제2권1호
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    • pp.11-21
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    • 2013
  • The use of concrete filling offers a practical alternative for achieving the required stability of steel Hollow Structural Section (HSS) columns under fire conditions. However, current methods for evaluating fire resistance of Concrete Filled Hollow Structural Steel (CFHSS) columns are highly conservative as they are based on an elemental approach without due consideration to structural interactions that occur in framed structural systems. To overcome this limitation, a system level fire resistance analysis was carried out by treating CFHSS columns as part of an overall structural frame. In this analysis, an eight story steel-framed building was modeled under a range of standard and performance-based fire scenarios (including multi-story progressive burn-out fires) to evaluate the contribution of various structural members/assemblies to overall fire resistance. One of the primary factors considered was the use of concrete filling in HSS columns as an alternative to standard W-shape columns. Results from the analysis indicate that the use of CFHSS columns, in place of W-shape columns, in a performance-based environment can fully eliminate the need for applied fire protection to columns, while providing the required level of structural fire resistance.

Assessment of steel structures designed for progressive collapse under localized fires

  • Behrouz Behnam
    • Steel and Composite Structures
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    • 제46권2호
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    • pp.279-292
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    • 2023
  • Structural design against the progressive collapse has been a vital necessity for decades due to occasional tragic events. The question of whether designed structures against the progressive collapse are still robust if subjected to multi-hazard scenarios containing column removal and successive localized fires is ad-dressed in the current study. Two seven-story steel structures with an identical area but different structural configurations of 4- and 5-bays are designed against the progressive collapse; the structural components are also fireproofed for a 60 min fire resistance. The structures are then subjected to different column re-moval scenarios over different stories followed immediately by localized fires. Results indicate that the structures are not able to keep their stability under all of the considered scenarios; the 4-bay structure is more vulnerable than the 5-bay structure. It is also indicated that upper stories are more sensitive toward the considered scenarios than lower stories. To advance structural safety, two strategies are adopted: in-creasing the thickness of the insulation materials to reduce the thermal effects, or, increasing the safety fac-tor (ΩN) of the structures when designing against the progressive collapse. As for the first strategy, provid-ing a 35% and a 25% increase in the insulation thicknesses of the structural components of the 4-bay and 5-bay structures, respectively, can prevent a progressive collapse to trigger. As for the second strategy, in-creasing ΩN by 10% can enhance the structural integrity to where no collapse occurs under all of the sce-narios.

Nonlinear analysis of concrete-filled steel composite columns subjected to axial loading

  • Bahrami, Alireza;Badaruzzamana, Wan Hamidon Wan;Osmanb, Siti Aminah
    • Structural Engineering and Mechanics
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    • 제39권3호
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    • pp.383-398
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    • 2011
  • This paper investigates the nonlinear analysis of concrete-filled steel composite columns subjected to axial loading to predict the ultimate load capacity and behaviour of the columns. Finite element software LUSAS is used to conduct the nonlinear analyses. The accuracy of the finite element modelling is verified by comparing the result with the corresponding experimental result reported by other researchers. Nonlinear analyses are done to study and develop different shapes and number of cold-formed steel sheeting stiffeners with various thicknesses of cold-formed steel sheets. Effects of the parameters on the ultimate axial load capacity and ductility of the concrete-filled steel composite columns are examined. Effects of variables such as concrete compressive strength $f_c$ and cold-formed steel sheet yield stress $f_{yp}$ on the ultimate axial load capacity of the columns are also investigated. The results are shown in the form of axial load-normalized axial shortening plots. It is concluded from the study that the ultimate axial load capacity and behaviour of the concrete-filled steel composite columns can be accurately predicted by the proposed finite element modelling. Results in this study demonstrate that the ultimate axial load capacity and ductility of the columns are affected with various thicknesses of steel sheets and different shapes and number of stiffeners. Also, compressive strength $f_c$ of the concrete and yield stress $f_{yp}$ of the cold-formed steel sheet influence the performance of the columns significantly.

보 단부 용접상세에 따른 고강도강 기둥-보 접합부의 변형능력에 관한 연구 (A Study on Deformation Capacity of High Strength Steel Beam-to-Column Connections According to Welding Detail at Beam End)

  • 오상훈;박해용
    • 한국강구조학회 논문집
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    • 제26권4호
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    • pp.335-348
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    • 2014
  • 고강도 강의 경우 재료의 높은 항복비와 모재인성 부족으로 인해 휨 구조부재에 적용하기가 용이하지 않다. 고강도 강 휨재의 가장 큰 문제점 중 하나는 일반 연강접합부와 마찬가지로 보 단부의 취성파단이다. 연강접합부의 경우 부재의 보강 및 보 단부의 용접접근공 상세의 개량을 통하여 국내기준의 특수모멘트골조용 접합상세가 다수 개발된 바 있으나 고강도강 접합부에 대한 적용성 평가는 아직까지 미비한 실정이다. 본 연구는 국내에서 개발된 고강도 강(HSA800)을 적용한 기둥-보 접합부의 적용성 평가를 위한 초기단계의 연구이며 보 단부의 용접접근공 상세에 따른 고강도 강 접합부의 구조성능을 실험 및 해석적 방법을 통하여 고찰하였다.

Research on the longitudinal stress distribution in steel box girder with large cantilever

  • HONG, Yu;LI, ShengYu;WU, Yining;XU, Dailing;PU, QianHui
    • Steel and Composite Structures
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    • 제44권5호
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    • pp.619-632
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    • 2022
  • There are numerous structural details (Longitudinal beam, web plate, U-ribs and I-ribs) in the top and bottom plates of steel box girders, which have significant influences on the longitudinal stress (normal stress) distribution. Clarifying the influence of these structural details on the normal stress distribution is important. In this paper, the ultra-wide steel box girder with large cantilevers of the Jinhai Bridge in China, which is the widest cable-stayed bridge in the world, has been analyzed. A 1:4.5 scale laboratory model of the steel box girder has been manufactured, and the influence of structural details on the normal stress distribution in the top and bottom plates for four different load cases has been analyzed in detail. Furthermore, a three-dimensional finite element model has been established to further investigate the influence regularity of structural details on the normal stress. The experimental and finite element analysis (FEA) results have shown that different structural details of the top and bottom plates have varying effects on the normal stress distribution. Notably, the U-ribs and I-ribs of the top and bottom plates introduce periodicity to the normal stress distribution. The period of the influence of U-ribs on the normal stress distribution is the sum of the single U-rib width and the U-rib spacing, and that of the influence of I-ribs on the normal stress distribution is equal to the spacing of the I-ribs. Furthermore, the same structural details but located at different positions, will have a different effect on the normal stress distribution.