• 제목/요약/키워드: column buckling design

검색결과 144건 처리시간 0.027초

Seismic design of chevron braces cupled with MRF fail safe systems

  • Longo, Alessandra;Montuori, Rosario;Piluso, Vincenzo
    • Earthquakes and Structures
    • /
    • 제8권5호
    • /
    • pp.1215-1240
    • /
    • 2015
  • In this paper, the Theory of Plastic Mechanism Control (TPMC) is applied to the seismic design of dual systems composed by moment-resisting frames and Chevron braced frames. The application of TPMC is aimed at the design of dual systems able to guarantee, under seismic horizontal forces, the development of a collapse mechanism of global type. This design goal is of primary importance in seismic design of structures, because partial failure modes and soft-storey mechanisms have to be absolutely prevented due to the worsening of the energy dissipation capacity of structures and the resulting increase of the probability of failure during severe ground motions. With reference to the examined structural typology, diagonal and beam sections are assumed to be known quantities, because they are, respectively, designed to withstand the whole seismic actions and to withstand vertical loads and the net downward force resulting from the unbalanced axial forces acting in the diagonals. Conversely column sections are designed to assure the yielding of all the beam ends of moment-frames and the yielding and the buckling of tensile and compressed diagonals of the V-Braced part, respectively. In this work, a detailed designed example dealing with the application of TPMC to moment frame-chevron brace dual systems is provided with reference to an eight storey scheme and the design procedure is validated by means of non-linear static analyses aimed to check the actual pattern of yielding. The results of push-over analyses are compared with those obtained for the dual system designed according to Eurocode 8 provisions.

Effects of deficiency location on CFRP strengthening of steel CHS short columns

  • Shahabi, Razieh;Narmashiri, Kambiz
    • Steel and Composite Structures
    • /
    • 제28권3호
    • /
    • pp.267-278
    • /
    • 2018
  • Structures may need retrofitting as a result of design and calculation errors, lack of proper implementation, post-construction change in use, damages due to accidental loads, corrosion and changes introduced in new editions of construction codes. Retrofitting helps to compensate weakness and increase the service life. Fiber Reinforced Polymer (FRP) is a modern material for retrofitting steel elements. This study aims to investigate the effect of deficiency location on the axial behavior of compressive elements of Circular Hollow Section (CHS) steel short columns. The deficiencies located vertically or horizontally at the middle or bottom of the element. A total of 43 control column and those with deficiencies were investigated in the ABAQUS software. Only 9 of them tested in the laboratory. The results indicated that the deficiencies had a significant effect on the increase in axial deformation, rupture in deficiency zone (local buckling), and decrease in ductility and bearing capacity. The damages of steel columns were responsible for resistance and stiffness drop at deficiency zone. Horizontal deficiency at the middle and vertical deficiency at the bottom of the steel columns were found to be the most critical. Using Carbon Fiber Reinforced Polymer (CFRP) as the most effective material in retrofitting the damaged columns, significantly helped the increase in resistance and rupture control around the deficiency zone.

Numerical investigation on the response of circular double-skin concrete-filled steel tubular slender columns subjected to biaxial bending

  • Abu-Shamah, Awni;Allouzi, Rabab
    • Steel and Composite Structures
    • /
    • 제37권5호
    • /
    • pp.533-549
    • /
    • 2020
  • Recently, Concrete-filled double skin steel tubular (CFDST) columns have proven an exceptional structural resistance in terms of strength, stiffness, and ductility. However, the resistance of these column members can be severely affected by the type of loading in which bending stresses increase in direct proportion with axial load and eccentricity value. This paper presents a non-linear finite element based modeling approach that studies the behavior of slender CFDST columns under biaxial loading. Finite element models were calibrated based on the outcomes of experimental work done by other researchers. Results from simulations of slender CFDST columns under axial loading eccentric in one direction showed good agreement with the experimental response. The calibrated models are expanded to a total of thirty models that studies the behavior of slender CFDST columns under combined compression and biaxial bending. The influences of parameters that are usually found in practice are taken into consideration in this paper, namely, eccentricity-to-diameter (e/D) ratios, slenderness ratios, diameter-to-thickness (D/t) ratios, and steel contribution ratios. Finally, an analytical study based on current code provisions is conducted. It is concluded that South African national standards (2011) provided the most accurate results contrasted with the Eurocode 4 (2004) and American Institute of Steel Construction (2016) that are found to be conservative. Accordingly, correction factors are proposed to the current design guidelines to provide more satisfactory results.

Axial compressive behavior of high strength concrete-filled circular thin-walled steel tube columns with reinforcements

  • Meng Chen;Yuxin Cao;Ye Yao
    • Structural Engineering and Mechanics
    • /
    • 제88권1호
    • /
    • pp.95-107
    • /
    • 2023
  • In this study, circular thin-walled reinforced high strength concrete-filled steel tube (RHSCFST) stub columns with various tube thicknesses (i.e., 1.8, 2.5 and 3.0mm) and reinforcement ratios (i.e., 0, 1.6%, 2.4% and 3.2%) were fabricated to explore the influence of these factors on the axial compressive behavior of RHSCFST. The obtained test results show that the failure mode of RHSCFST transforms from outward buckling and tearing failure to drum failure with the increasing tube thickness. With the tube thickness and reinforcement ratio increased, the ultimate load-carrying capacity, compressive stiffness and ductility of columns increased, while the lateral strain in the stirrup decreased. Comparisons were also made between test results and the existing codes such as AIJ (2008), BS5400 (2005), ACI (2019) and EC4 (2010). It has been found that the existing codes provide conservative predictions for the ultimate load-carrying capacity of RHSCFST. Therefore, an accurate model for the prediction of the ultimate load-carrying capacity of circular thin-walled RHSCFST considering the steel reinforcement is developed, based on the obtained experimental results. It has been found that the model proposed in this study provides more accurate predictions of the ultimate load-carrying capacity than that from existing design codes.

콘크리트채움 U형합성보-H형강기둥 십자형 합성접합부의 내진성능 (Cyclic Seismic Testing of Cruciform Concrete-Filled U-Shape Steel Beam-to-H Column Composite Connections)

  • 박창희;이철호;박홍근;황현종;이창남;김형섭;김성배
    • 한국강구조학회 논문집
    • /
    • 제23권4호
    • /
    • pp.503-514
    • /
    • 2011
  • 본 연구에서는 콘크리트채움 U형 합성보와 H형강 기둥 십자형 합성접합부의 내진상세를 제시하고, 2개의 실물대 실험체를 설계/제작하여 강구조내진기준의 표준실험절차에 따라 내진성능을 평가하였다. 주요 실험체 구성요소는 춤 450mm(실험체 A) 및 550mm(실험체 B) U형 강재보, 두께 165mm의 골데크플레이트 위에 타설된 콘크리트 바닥슬래브, U형보의 완전합성작용을 하기 위한 전단스터드, 부모멘트 전달을 위한 4개의 주철근 및 H형강 기둥에 정착을 위한 용접커플러 그리고 접합부 보강을 위한 보강판으로 구성된다. 순수 강재 보-기둥 접합부와 상이한 U형 합성접합부의 독특한 특성을 고려하여, 지진하중 하에서 내진성능에 결정적 영향을 미치는 보-기둥 접합부의 용접부 취성파단, 강판의 국부좌굴, 주철근의 휨좌굴, 콘크리트 압괴 등의 한계상태가 적절히 제어되도록 실험체를 설계하였다. 강구조내진기준의 지진하중 가력프로그램에 따른 실험결과, 설계에서 의도한 바와 같이 여러 한계상태가 적절히 제어되어 실험체 A 및 B는 각각 6% 및 6.8% 라디안에 이르는 매우 뛰어난 층간변형능력을 발휘하였다. 이는 특수모멘트골조에 요구되는 4% 라디안 수준을 충분히 상회하는 만족스런 층간변형능력이다. 특히 접합부 강화전략에 의해 제안된 합성접합부 상세는 설계에서 의도한 것과 같이 소성힌지를 보강단부로서 밀어냄으로서 취약할 수 있는 보-기둥 용접접합부를 효과적으로 보호하였다. 실험체 A의 최종 파괴모드는 6.0% 층간변위에서 발생한 보강단부에 인접한 냉간성형 코너부의 점진적 저사이클피로에 의한 하부플랜지의 파단에 의해 발생하였다. 한편, 실험체 B는 8.0%의 높은 수준의 층간변위에서 발생한 볼트이음부 파단에 의해 내력을 상실하였다.

OrcaFlex를 이용한 심해 SCR 구조 해석 (Structural Analysis of Deepwater Steel Catenary Riser using OrcaFlex)

  • 박규식;최한석;김도균;유수영;강수창
    • 한국해양공학회지
    • /
    • 제29권1호
    • /
    • pp.16-27
    • /
    • 2015
  • The design challenges when attempting to obtain sufficient strength for a deepwater steel catenary riser (SCR) include high stress near the hang-off location, an elevated beam-column buckling load due to the effective compression in the touchdown zone (TDZ), and increased stress and low-cycle fatigue damage in the TDZ. Therefore, a systematic strength analysis is required for the proper design of an SCR. However, deepwater SCR analysis is a new research area. Thus, the objective of this study was to develop an overall analysis procedure for a deepwater SCR. The structural behavior of a deepwater SCR under various environmental loading conditions was investigated, and a sensitivity analysis was conducted with respect to various parameters such as the SCR weight, weight of the internal contents, hang-off angle (HOA), and vertical soil stiffness. Based on a deepwater SCR design example, it was found that the maximum stress of an SCR occurred at a hang-off location under parallel loading direction with respect to the riser plane, except for a wave dominant dynamic survival loading condition. Furthermore, the tensile stress governed the total stress of the SCRs, whereas the bending stress governed the total stress at the TDZ. The weight of the SCR and internal contents affected the maximum stress of the SCR more than the HOA and vertical soil stiffness, because the weight of the SCR, including the internal contents, was directly related to its tensile stress.

Design and Construction of GINZA KABUKIZA

  • Kawamura, Hiroshi;Ishibashi, Yoji;Morofushi, Tsutomu;Saragai, Yasuyuki;Inubushi, Akira;Yasutomi, Ayako;Fuse, Naohiko;Yoshifuku, Manabu;Saitoh, Kouji
    • 국제초고층학회논문집
    • /
    • 제5권3호
    • /
    • pp.233-241
    • /
    • 2016
  • This paper describes the structural solution for the design of a 29-story high-rise tower, which features a large office space above the Kabukiza Theatre. Kabuki is a type of Japanese traditional drama, and Kabukiza is the home building of Kabuki. GINZA KABUKIZA is the fifth generation of the Kabukiza Theatre, the first of which was built in 1889. In order to support 23 stories of office space above the theater - featuring a large void in plan - two 13-meter-deep mega-trusses, spanning 38.4 meters, are installed at the fifth floor of the building. Steelwork is used as a primary material for the structure above-ground, and a hybrid response control system using a buckling-restrained brace and oil damper is adopted in order to achieve a high seismic performance. This paper also describes the erection process of installing hydraulic jacks directly above the mega-truss at column bases, in order to keep the structure above the truss level during construction. The temple architecture of the previous Kabukiza is carefully restored by incorporating contemporary light-weight materials supported by steelwork.

고강도콘크리트충전 각형강관장주의 내력에 관한 실험적 연구 (An Experimental Study on Stength of Slender Square Tube Columns Filled with High Strength Concrete)

  • 서성연;정진안
    • 한국강구조학회 논문집
    • /
    • 제14권4호
    • /
    • pp.471-479
    • /
    • 2002
  • 본 논문에서는 고강도콘크리트충전 각형강관장주에 대한 실험결과와 탄소성해석결과를 비교분석했다. 실험체는 모두 고강도콘크리트 충전 각형강관장주로 18개를 제작하였으며, 편심비에 따라 중심 및 편심가력하였다. 본 연구의 주요 파라메타는 단면폭에 대한 유효좌굴 길이의 비($L_K$/D)= 4, 8, 12, 24, 30와 가력편심비(e)=0, k, 3k이다. 본 논문에서 고강도콘크리트 충전 각형강관장주의 내력에 관한 해석 및 실험을 통하여 다음과 같은 결과를 얻었다. $L_K$/D=12 이하의 고강도콘크리트충전 각형강관단주는 콘크리트 감소계수 $c{\gamma}u=0.85$를 고려한 전소성내역에 도달했으나, $L_K$/D=18 이상의 장주실험체는 콘크리트 감소계수를 고려한 전소성내력에 도달하지 않았다. 실험에 의한 고강도콘크리트충전 각형강관장주의 탄소성거동은 제안된 해석치의 종국내력$N_{ASSUMED}$과 비교적 양호한 접근을 보여주었다. 콘크리트 압축강도의 감소계수 $c{\gamma}u=0.85$를 고려하지 않은 CFT설계기준과 고강도 콘크리트를 충전한 각형강관기둥의 실험결과치는 비교적 잘 일치함을 알 수 있었다.

철근콘크리트 원형기둥의 나선철근 최소철근비에 대한 평가 (Evaluation of Minimum Spiral Reinforcement Ratio of Circular RC Columns)

  • 김영식;김형국;박천범;김상우;김길희
    • 한국구조물진단유지관리공학회 논문집
    • /
    • 제21권6호
    • /
    • pp.1-9
    • /
    • 2017
  • 원형 기둥의 나선철근은 축방향 철근의 위치 고정 및 좌굴방지와 코어콘크리트의 충분한 횡구속으로 기둥의 연성거동에 효과적인 역할을 한다. 각국은 기둥에 요구되는 연성을 확보하기 위하여 나선철근의 최소철근비를 제시하고 있다. ACI 318-14와 국내 콘크리트 구조설계 기준에서 제시하는 나선철근 최소철근비는 Richart et al.(1928)의 이론에 기초하여 개발되었으며 현재까지 사용되고 있다. 그러나 Richart et al.(1928)의 이론은 현대의 고강도 콘크리트, 고강도철근 그리고 나선철근의 배근조건 등의 영향을 고려하지 못한다. 이 연구에서는 나선철근으로 구속된 철근콘크리트 원형 기둥의 내력회복 및 연성증진에 요구되는 나선철근에 대한 수정 최소철근비 산정식을 제시한다. 수정 최소철근비 산정식은 콘크리트 압축강도, 나선철근 항복강도, 기둥의 단면적, 나선철근 배근간격, 나선철근 직경의 영향을 고려하고 있다. 이 논문에서는 재료강도 및 나선철근 최적비를 변수로 한 실험체의 일축 압축실험을 통하여 ACI 318-14에 제시하는 나선철근 최소철근비 산정식의 타당성을 검토하고, 그 결과를 토대로 나선철근 최소철근비 산정식의 수정방안을 고찰하였다.

Collapse Behavior of an 18-Story Steel Moment Frame during a Shaking Table Test

  • Suita, Keiichiro;Suzuki, Yoshitaka;Takahashi, Motomi
    • 국제초고층학회논문집
    • /
    • 제4권3호
    • /
    • pp.171-180
    • /
    • 2015
  • A shaking table test was conducted at the E-Defense shaking table facility to investigate the damage and collapse behavior of a steel high-rise building under exceedingly large ground motions. The specimen is a one-third scale 18-story steel moment frame designed and constructed according to design specifications and practices used in the 1980s and 1990s. The shaking table tests used a long-duration, long-period ground motion simulated for a sequential Tokai, Nankai, and Nankai earthquake scenario. The building specimen was subjected to a series of progressively increasing scaled motions until it completely collapsed. The damage to the steel frame began through the yielding of beams along lower stories and column bases of the first story. After several excitations by increasing scaled motions, cracks initiated at the welded moment connections and fractures in the beam flanges spread to the lower stories. As the shear strength of each story decreased, the drifts of lower stories increased and the frame finally collapsed and settled on the supporting frame. From the test, a typical progression of collapse for a tall steel moment frame was obtained, and the hysteretic behavior of steel structural members including deterioration due to local buckling and fracture were observed. The results provide important information for further understanding and an accurate numerical simulation of collapse behavior.