• 제목/요약/키워드: failure of columns

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철근콘크리트 기둥에서 반복횡력에 대한 헤드형 횡보강근의 구속효과에 대한 실험연구 (Experimental Study on the Confinement Effect of Headed Cross Tie in RC Column Subjected to Cycling Horizontal Load)

  • 서수연;함주호
    • 한국구조물진단유지관리공학회 논문집
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    • 제16권5호
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    • pp.1-10
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    • 2012
  • 본 연구는 철근콘크리트 기둥 횡보강근의 형태 특히 크로스타이의 유무 및 단부 정착형태에 따른 내진성능을 평가하기 위한 실험연구이다. 계획된 실험변수인 크로스타이의 유무, 크로스타이의 단부 정착형태(헤드형 또는 갈고리형), 그리고 기둥 축응력의 크기에 따라 총 5개의 기둥 실험체를 제작한 뒤 일정 축력하에 횡방향 반복가력 실험을 수행한 후, 크로스타이가 철근콘크리트 기둥의 구조성능에 미치는 영향을 평가하였다. 실험으로부터, 크로스타이가 없이 띠철근만으로 횡보강된 기둥은, 낮은 횡력에서 균열과 함께 띠철근이 휨변형한 뒤 코아 콘크리트가 탈락되는 파괴양상을 보인 반면에 크로스타이가 있는 기둥은 균열이 발생한 이후에도 띠철근이 휨변형과 주근좌굴을 억제하고 코아 콘크리트를 효과적으로 구속하여 내력 및 연성을 증진시키는 것으로 나타났다. 횡방향 대변형시, 갈고리형 크로스타이는 $90^{\circ}$ 갈고리 부분이 펴지면서 코아 콘크리트가 탈락되는 양상을 보이지만 헤드형 크로스타이는 대변형 시에도 헤드가 매우 효과적으로 띠철근과 주근을 구속하여 높은 내력과 연성능력을 발휘하는 것으로 나타났다.

고강도 띠철근으로 구속된 고강도 콘크리트 기둥의 연성 (Ductility of High-Strength Concrete Columns with High-Strength Lateral Ties)

  • 문호권;이영호;양근혁;정헌수
    • 콘크리트학회논문집
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    • 제13권3호
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    • pp.261-267
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    • 2001
  • 본 연구는 고축력을 받는 고강도 콘크리트 기둥부재의 연성을 확보하기 위한 띠철근 양 산정시 띠철근 강도가 연성에 미치는 영향이 현저하게 나타나기 시작하는 축력비 및 연성과 주근의 관계를 파악하기 위한 실험적 연구이다 본 연구의 목적을 이루기 위해 띠철근 항복강도, 축력비, 주근 양 및 배치형태 등을 주요 변수로 하여 총 12개의 시험체를 제작하였다. 시험체의 크기는 20$\times$20$\times$80 cm이며 실험구간은 중앙부 40 cm 이다. 실험결과 띠철근의 항복강도가 연성에 영향을 현저히 미치기 시작하는 축력비는 0.4 $f_{ck}$ $A_{g}$이었으며 현 ACI318-99 내진기준에 따라 띠철근 양을 산정할 때 저축력하에서 고강도 띠철근을 사용할 경우 띠철근 간격이 크고 띠철근 강도의 영향이 미비하여 부재는 취성적인 거동을 보일 위험이 있다. 고축력하에서 고강도 띠철근은 주근의 좌굴억제에도 상당히 효율적이었다. 특히 0.4 $f_{ck}$ $A_{g}$이상의 고축력하에서 고강도 띠철근이 응력을 충분히 발휘하기 위해서는 띠철근 체적비 및 배근형태, 주근의 배치형태, 축력비 등을 함께 고려하여야 할 것이라고 사료된다.다.

Experimental and numerical studies of precast connection under progressive collapse scenario

  • Joshi, Digesh D.;Patel, Paresh V.;Rangwala, Husain M.;Patoliya, Bhautik G.
    • Advances in concrete construction
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    • 제9권3호
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    • pp.235-248
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    • 2020
  • Progressive collapse in a structure occurs when load bearing members are failed and the adjoining structural elements cannot resist the redistributed forces and fails subsequently, that leads to complete collapse of structure. Recently, construction using precast concrete technology is adopted increasingly because it offers many advantages like faster construction, less requirement of skilled labours at site, reduced formwork and scaffolding, massive production with reduced amount of construction waste, better quality and better surface finishing as compared to conventional reinforced concrete construction. Connections are the critical elements for any precast structure, because in past, major collapse of precast structure took place because of connection failure. In this study, behavior of four different precast wet connections with U shaped reinforcement bars provided at different locations is evaluated. Reduced 1/3rd scale precast beam column assemblies having two span beam and three columns with removed middle column are constructed and examined by performing experiments. The response of precast connections is compared with monolithic connection, under column removal scenario. The connection region of test specimens are filled by cast-in-place micro concrete with and without polypropylene fibers. Performance of specimen is evaluated on the basis of ultimate load carrying capacity, maximum deflection at the location of removed middle column, crack formation and failure propagation. Further, Finite element (FE) analysis is carried out for validation of experimental studies and understanding the performance of structural components. Monolithic and precast beam column assemblies are modeled using non-linear Finite Element (FE) analysis based software ABAQUS. Actual experimental conditions are simulated using appropriate boundary and loading conditions. Finite Element simulation results in terms of load versus deflection are compared with that of experimental study. The nonlinear FE analysis results shows good agreement with experimental results.

The multi-axial strength performance of composited structural B-C-W members subjected to shear forces

  • Zhu, Limeng;Zhang, Chunwei;Guan, Xiaoming;Uy, Brian;Sun, Li;Wang, Baolin
    • Steel and Composite Structures
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    • 제27권1호
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    • pp.75-87
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    • 2018
  • This paper presents a new method to compute the shear strength of composited structural B-C-W members. These B-C-W members, defined as concrete-filled steel box beams, columns and shear walls, consist of a slender rectangular steel plate box filled with concrete and inserted steel plates connecting the two long-side steel plates. These structural elements are intended to be used in structural members of super-tall buildings and nuclear safety-related structures. The concrete confined by the steel plate acts to be in a multi-axial stressed state: therefore, its shear strength was calculated on the basis of a concrete's failure criterion model. The shear strength of the steel plates on the long sides of the structural element was computed using the von Mises plastic strength theory without taking into account the buckling of the steel plate. The spacing and strength of the inserted plates to induce plate yielding before buckling was determined using elastic plate theory. Therefore, a predictive method to compute the shear strength of composited structural B-C-W members without considering the shear span ratio was obtained. A coefficient considering the influence of the shear span ratio was introduced into the formula to compute the anti-lateral bearing capacity of composited structural B-C-W members. Comparisons were made between the numerical results and the test results along with this method to predict the anti-lateral bearing capacity of concrete-filled steel box walls. Nonlinear static analysis of concrete-filled steel box walls was also conducted by using ABAQUS and the results agreed well with the experimental data.

Investigations of different steel layouts on the seismic behavior of transition steel-concrete composite connections

  • Qi, Liangjie;Xue, Jianyang;Zhai, Lei
    • Advances in concrete construction
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    • 제8권3호
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    • pp.173-185
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    • 2019
  • This article presents a comparative study of the effect of steel layouts on the seismic behavior of transition steel-concrete composite connections, both experimental and analytical investigations of concrete filled steel tube-reinforced concrete (CFST-RC) and steel reinforecd concrete-reinforced concrete (SRC-RC) structures were conducted. The steel-concrete composite connections were subjected to combined constant axial load and lateral cyclic displacements. Tests were carried out on four full-scale connections extracted from a real project engineering with different levels of axial force. The effect of steel layouts on the mechanical behavior of the transition connections was evaluated by failure modes, hysteretic behavior, backbone curves, displacement ductility, energy dissipation capacity and stiffness degradation. Test results showed that different steel layouts led to significantly different failure modes. For CFST-RC transition specimens, the circular cracks of the concrete at the RC column base was followed by steel yielding at the bottom of the CFST column. While uncoordinated deformation could be observed between SRC and RC columns in SRC-RC transition specimens, the crushing and peeling damage of unconfined concrete at the SRC column base was more serious. The existences of I-shape steel and steel tube avoided the pinching phenomenon on the hysteresis curve, which was different from the hysteresis curve of the general reinforced concrete column. The hysteresis loops were spindle-shaped, indicating excellent seismic performance for these transition composite connections. The average values of equivalent viscous damping coefficients of the four specimens are 0.123, 0.186 and 0.304 corresponding to the yielding point, peak point and ultimate point, respectively. Those values demonstrate that the transition steel-concrete composite connections have great energy dissipating capacity. Based on the experimental research, a high-fidelity ABAQUS model was established to further study the influence of concrete strength, steel grade and longitudinal reinforcement ratio on the mechanical behavior of transition composite connections.

Numerical Simulation on Disproportionate Collapse of the Tall Glulam Building under Fire Conditions

  • Zhao, Xuan;Zhang, Binsheng;Kilpatrick, Tony;Sanderson, Iain
    • 국제초고층학회논문집
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    • 제10권4호
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    • pp.311-321
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    • 2021
  • Perception of the public to structural fires is very important because there are only a number of tall timber buildings constructed in the world. People are hesitating to accept tall timber buildings, so it is essential to ensure the first generation of tall timber buildings to a very high standard, especially fire safety. Right now, there are no specific design standards or regulations for fire design of tall timber buildings in Europe. Even though heavy timber members have better fire resistance than steel components, many conditions still need to be verified before considering the use of timber materials, e.g. fire spread, post-fire collapse, etc. This research numerically explores the structural behaviours of a tall Glulam building when one of its internal Glulam (Glued laminated timber) columns fails after sustaining a full 120-min standard fire and is removed from the established finite element building model created in SAP2000. The numerical results demonstrate that the failure and removal of the selected internal Glulam column may lead to the local failure of the adjacent CLT (Cross laminated timber) floor slabs, but will not lead to large disproportionate damage and collapse of the whole building. Here, the building is assumed to be located in Glasgow, Scotland, UK.

Seismic performance of high strength steel frames with variable eccentric braces based on PBSD method

  • Li, Shen;Wang, Ze-yu;Guo, Hong-chao;Li, Xiao-lei
    • Earthquakes and Structures
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    • 제18권5호
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    • pp.527-542
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    • 2020
  • In traditional eccentrically braced steel frames, damages and plastic deformations are limited to the links and the main structure members are required tremendous sizes to ensure elasticity with no damage based on the force-based seismic design method, this limits the practical application of the structure. The high strength steel frames with eccentric braces refer to Q345 (the nominal yield strength is 345 MPa) steel used for links, and Q460 steel utilized for columns and beams in the eccentrically brace steel frames, the application of high strength steels not only brings out better economy and higher strength, but also wider application prospects in seismic fortification zone. Here, the structures with four type eccentric braces are chosen, including K-type, Y-type, D-type and V-type. These four types EBFs have various performances, such as stiffness, bearing capacity, ductility and failure mode. To evaluate the seismic behavior of the high strength steel frames with variable eccentric braces within the similar performance objectives, four types EBFs with 4-storey, 8-storey, 12-storey and 16-storey were designed by performance-based seismic design method. The nonlinear static behavior by pushover analysis and dynamic performance by time history analysis in the SAP2000 software was applied. A total of 11 ground motion records are adopted in the time history analysis. Ground motions representing three seismic hazards: first, elastic behavior in low earthquake hazard level for immediate occupancy, second, inelastic behavior of links in moderate earthquake hazard level for rapid repair, and third, inelastic behavior of the whole structure in very high earthquake hazard level for collapse prevention. The analyses results indicated that all structures have similar failure mode and seismic performance.

지오그리드 보강 Stone Column의 파괴메카니즘 및 지지력 특성 - 축소모형실험을 통한 고찰 (Load Carrying Capacity and Failure Mechanism of Geogrid Reinforced Stone Columns : Reduced-Scale Model Tests)

  • 이대영;송아란;유충식
    • 한국지반공학회논문집
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    • 제22권10호
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    • pp.121-129
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    • 2006
  • 쇄석기둥 공법은 성토제방, 교량교대기초, 오일탱크와 같은 침하에 민감한 구조물의 지지력 증대 및 압밀 촉진에 효과적인 지반 개량 공법이다. 쇄석기둥 공법은 지반의 지지력 증대, 침하감소, 측방유동 방지 및 액상화 방지 등의 효과를 기대할 수 있다. 최근 들어서는 쇄석기둥의 외벽을 토목섬유로 보강(감쌈) 구속력을 증가시켜 줌으로써 쇄석기둥 지반의 하중지지력을 개선시키는 공법에 대한 관심이 증가하고 있으나, 지오그리드 보강 쇄석기둥 공법에 대한 연구는 체계화되어 있지 않는 실정이다. 본 연구에서는 실내모형실험을 통해 지오그리드로 보강 쇄석기둥의 하중지지력 특성 및 파괴형태를 고찰하였으며, 실험결과를 통해 지오그리드로 보강하지 않은 쇄석기둥공법에 비해 지오그리드보강 쇄석기둥공법의 지지력 개선효과가 크게 나타남을 알 수 있다.

Nonlinear modeling of beam-column joints in forensic analysis of concrete buildings

  • Nirmala Suwal;Serhan Guner
    • Computers and Concrete
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    • 제31권5호
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    • pp.419-432
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    • 2023
  • Beam-column joints are a critical component of reinforced concrete frame structures. They are responsible for transferring forces between adjoining beams and columns while limiting story drifts and maintaining structural integrity. During severe loading, beam-column joints deform significantly, affecting, and sometimes governing, the overall response of frame structures. While most failure modes for beam and column elements are commonly considered in plastic-hinge-based global frame analyses, the beam-column joint failure modes, such as concrete shear and reinforcement bond slip, are frequently omitted. One reason for this is the dearth of published guidance on what type of hinges to use, how to derive the joint hinge properties, and where to place these hinges. Many beam-column joint models are available in literature but their adoption by practicing structural engineers has been limited due to their complex nature and lack of practical application tools. The objective of this study is to provide a comparative review of the available beam-column joint models and present a practical joint modeling approach for integration into commonly used global frame analysis software. The presented modeling approach uses rotational spring models and is capable of modeling both interior and exterior joints with or without transverse reinforcement. A spreadsheet tool is also developed to execute the mathematical calculations and derive the shear stress-strain and moment-rotation curves ready for inputting into the global frame analysis. The application of the approach is presented by modeling a beam column joint specimen which was tested experimentally. Important modeling considerations are also presented to assist practitioners in properly modeling beam-column joints in frame analyses.

Cumulative damage in RC frame buildings - The 2017 Mexico earthquake case

  • Leonardo M. Massone;Diego Aceituno;Julian Carrillo
    • Advances in Computational Design
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    • 제8권1호
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    • pp.13-36
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    • 2023
  • The Puebla-Morelos Earthquake (Mw 7.1) occurred in Mexico in 2017 causing 44 buildings to collapse in Mexico City. This work evaluates the non-linear response of a 6-story reinforced concrete (RC) frame prototype model with masonry infill walls on upper floors. The prototype model was designed using provisions prescribed before 1985 and was subjected to seismic excitations recorded during the earthquakes of 1985 and 2017 in different places in Mexico City. The building response was assessed through a damage index (DI) that considers low-cycle fatigue of the steel reinforcement in columns of the first floor, where the steel was modeled including buckling as was observed in cases after the 2017 earthquake. Isocurves were generated with 72 seismic records in Mexico City representing the level of iso-demand on the structure. These isocurves were compared with the location of 16 collapsed (first-floor column failure) building cases consistent with the prototype model. The isocurves for a value greater than 1 demarcate the location where fatigue failure was expected, which is consistent with the location of 2 of the 16 cases studied. However, a slight increase in axial load (5%) or decrease in column cross-section (5%) had a significant detrimental effect on the cumulated damage, increasing the intensity of the isocurves and achieving congruence with 9 of the 16 cases, and having the other 7 cases less than 2 km away. Including column special detailing (tight stirrup spacing and confined concrete) was the variable with the greatest impact to control the cumulated damage, which was consistent with the absence of severe damage in buildings built in the 70s and 80s.