• 제목/요약/키워드: Stiffness predictions

검색결과 158건 처리시간 0.022초

GFRP 보강근을 사용한 콘크리트 보의 휨파괴 거동 (Flexural Behavior of Concrete Beams Reinforced with GFRP Bars)

  • 어석홍;하상훈
    • 한국산학기술학회논문지
    • /
    • 제15권8호
    • /
    • pp.5318-5326
    • /
    • 2014
  • 본 논문은 철근대체재로서 유리섬유보강 플라스틱봉(GFRP : Glass Fiber Reinforced Plastic Bar)으로 보강한 콘크리트 보 및 일반 RC보의 휨파괴 실험결과를 비교하여 제시한 것으로 보강비와 콘크리트의 압축강도를 주요 실험변수로 설정하여 보의 균열발생 양상과 파괴모우드, 처짐, 변형률 및 최대하중을 측정하고 분석하였다. 실험결과, GFRP 보강보의 하중강도는 보강비와 콘크리트 강도가 증가할수록 크게 나타났으며, 동일 보강비일 경우 일반 RC보에 비하여 41.3~51.6% 증가하였다. GFRP 보강보의 처짐은 일반 RC보에 비하여 약 4.1~6.3배 증가하는 것으로 나타났으며, 실측처짐이 이론값보다 평균 31% 정도 작게 나타나 GFRP 보의 처짐계산시 사용되는 휨강성이 최대하중시 과소평가되기 때문인 것으로 판단된다. GFRP 보의 균열폭은 RC보에 비하여 1.87~2.79배 크게 발생하였으며, 보강비와 콘그리트 강도가 증가할수록 다소 작은 것으로 나타났다. ACI code 440에 의해 산정한 설계휨강도는 대체적으로 안전측의 값을 나타내었다.

축약법에 의한 구조물 결합부의 동적 거동 예측 (Dynamical Predictions of the Structural Connection by the Reduced Approach)

  • 윤성호
    • 한국전산구조공학회논문집
    • /
    • 제27권6호
    • /
    • pp.589-596
    • /
    • 2014
  • 기계 구조물에서 부재의 결합부가 시스템 전체의 동적 거동에 매우 심각한 영향을 미치고 있다. 따라서 동적인 응답의 정확한 예측은 이러한 결합부를 어떻게 모델링 하느냐에 달려 있다고 해도 과언이 아니다. 본 논문에서는 결합부의 유연성을 정량적으로 표현하기 위하여 서로 대칭이고 마주보는 외팔보의 중앙에 선형 및 비틀림 스프링을 결합부에 이식하였다. 이를 바탕으로 결합부의 강성 변화에 따른 시스템의 재해석은 축약법과 유한요소법으로 계산하였다. 이항 급수로 표현되는 기저 벡터의 수에 따라서 전체 모델의 크기는 획기적으로 감소되어 축약 모델로 매우 짧은 시간에 효율적으로 계산할 수 있었다. 본 연구에서는 두 가지 경우의 수치해석 예가 제시되어 축약 모델의 결과가 정밀해와 잘 일치함을 보여주고 있다.

Structural identification of Humber Bridge for performance prognosis

  • Rahbari, R.;Niu, J.;Brownjohn, J.M.W.;Koo, K.Y.
    • Smart Structures and Systems
    • /
    • 제15권3호
    • /
    • pp.665-682
    • /
    • 2015
  • Structural identification or St-Id is 'the parametric correlation of structural response characteristics predicted by a mathematical model with analogous characteristics derived from experimental measurements'. This paper describes a St-Id exercise on Humber Bridge that adopted a novel two-stage approach to first calibrate and then validate a mathematical model. This model was then used to predict effects of wind and temperature loads on global static deformation that would be practically impossible to observe. The first stage of the process was an ambient vibration survey in 2008 that used operational modal analysis to estimate a set of modes classified as vertical, torsional or lateral. In the more recent second stage a finite element model (FEM) was developed with an appropriate level of refinement to provide a corresponding set of modal properties. A series of manual adjustments to modal parameters such as cable tension and bearing stiffness resulted in a FEM that produced excellent correspondence for vertical and torsional modes, along with correspondence for the lower frequency lateral modes. In the third stage traffic, wind and temperature data along with deformation measurements from a sparse structural health monitoring system installed in 2011 were compared with equivalent predictions from the partially validated FEM. The match of static response between FEM and SHM data proved good enough for the FEM to be used to predict the un-measurable global deformed shape of the bridge due to vehicle and temperature effects but the FEM had limited capability to reproduce static effects of wind. In addition the FEM was used to show internal forces due to a heavy vehicle to to estimate the worst-case bearing movements under extreme combinations of wind, traffic and temperature loads. The paper shows that in this case, but with limitations, such a two-stage FEM calibration/validation process can be an effective tool for performance prognosis.

A component method model for blind-bolts with headed anchors in tension

  • Pitrakkos, Theodoros;Tizani, Walid
    • Steel and Composite Structures
    • /
    • 제18권5호
    • /
    • pp.1305-1330
    • /
    • 2015
  • The successful application of the component-based approach - widely used to model structural joints - requires knowledge of the mechanical properties of the constitutive joint components, including an appropriate assembly procedure to derive the joint properties. This paper presents a component-method model for a structural joint component that is located in the tension zone of blind-bolted connections to concrete-filled tubular steel profiles. The model relates to the response of blind-bolts with headed anchors under monotonic loading, and the blind-bolt is termed the "Extended Hollo-bolt". Experimental data is used to develop the model, with the data being collected in a manner such that constitutive models were characterised for the principal elements which contribute to the global deformability of the connector. The model, based on a system of spring elements, incorporates pre-load and deformation from various parts of the blind-bolt: (i) the internal bolt elongation; (ii) the connector's expanding sleeves element; and (iii) the connector's mechanical anchorage element. The characteristics of these elements are determined on the basis of piecewise functions, accounting for basic geometrical and mechanical properties such as the strength of the concrete applied to the tube, the connection clamping length, and the size and class of the blind-bolt's internal bolt. An assembly process is then detailed to establish the model for the elastic and inelastic behaviour of the component. Comparisons of model predictions with experimental data show that the proposed model can predict with sufficient accuracy the response of the component. The model furthers the development of a full and detailed design method for an original connection technology.

암에 근입된 말뚝의 주면저항력 예측 (Prediction of the Shaft Resistance of Pile Sockets)

  • Seidel, J.P.;Cho, Chun-Whan
    • 한국지반공학회논문집
    • /
    • 제18권5호
    • /
    • pp.281-293
    • /
    • 2002
  • 기존의 말뚝 설계방법들은 시공 및 재하시험 결과들로부터 축적된 말뚝거동에 대한 경험을 바탕으로 이루어 졌다고 할 수 있다. 이와 같이 만들어진 암에 근입된 말뚝의 설계에 대한 전통적인 방법들에 대해 고찰한 결과, 암에 근입된 말뚝의 경험적인 설계방법들은 설계시 상당한 불확실성을 내포하는 것으로 나타났다. 따라서 본 논문에서는 암에 근입된 말뚝의 주면저항을 예측하는 새로운 방법에 대한 기본원리를 고찰하였다. 이 방법으로 예측한 말뚝의 지지력은 현장에서 측정한 결과와 잘 일치하는 것으로 나타났다. 제한된 변수연구 결과이지만 본 연구를 통해 암의 거칠기와 말뚝의 직경은 암반에 근입된 말뚝의 거동에 중요한 역할을 하는 것을 알 수 있었다 또한 국내 화강편마암에 대한 현장 사례연구를 통해 이방법의 적용성을 검토하였다.

와이어로프 기반 비부착 보강된 RC 기둥의 내진거동에 대한 T형 강판 정착의 영향 (Influence of Anchorage of T-Plate on the Seismic Performance of RC Columns Strengthened with Unbounded Wire Rope Units)

  • 심재일;양근혁
    • 한국구조물진단유지관리공학회 논문집
    • /
    • 제14권1호
    • /
    • pp.133-140
    • /
    • 2010
  • 와이어로프와 T형 강판을 이용한 비부착공법의 내진성능을 평가하기 위해 중심 축하중과 반복 횡하중을 받는 5개의 보강된 기둥과 무보강 기둥을 실험하였다. 주요 변수는 T형 강판의 정착방법과 피복 모르터의 유 무이다. 실험결과 T형 강판이 정착된 기둥의 하중분배로 인한 휨 내력 및 연성 증가를 확인할 수 있었다. 그러나 T형 강판이 정착되지 않은 기둥은 연성 증가에는 효과적이지만 T형 강판으로 하중이 분배되지 않았다. 피복 모르터가 있는 보강된 기둥은 효과적인 초기 강성 및 휨 내력 증가를 보였지만 연성증가에는 불리하였다. 단면분할법을 이용해 예측한 보강된 기둥의 최대 휨 내력은 등가응력블럭을 사용하여 예측한 ACI 318-05 기준보다 실험결과를 예측하였다.

Progressive Collapse of Steel High-Rise Buildings Exposed to Fire: Current State of Research

  • Jiang, Jian;Li, Guo-Qiang
    • 국제초고층학회논문집
    • /
    • 제7권4호
    • /
    • pp.375-387
    • /
    • 2018
  • This paper presents a review on progressive collapse mechanism of steel framed buildings exposed to fire. The influence of load ratios, strength of structural members (beam, column, slab, connection), fire scenarios, bracing systems, fire protections on the collapse mode and collapse time of structures is comprehensively reviewed. It is found that the key influencing factors include load ratio, fire scenario, bracing layout and fire protection. The application of strong beams, high load ratios, multi-compartment fires will lead to global downward collapse which is undesirable. The catenary action in beams and tensile membrane action in slabs contribute to the enhancement of structural collapse resistance, leading to a ductile collapse mechanism. It is recommended to increase the reinforcement ratio in the sagging and hogging region of slabs to not only enhance the tensile membrane action in the slab, but to prevent the failure of beam-to-column connections. It is also found that a frame may collapse in the cooling phase of compartment fires or under travelling fires. This is because that the steel members may experience maximum temperatures and maximum displacements under these two fire scenarios. An edge bay fire is more prone to induce the collapse of structures than a central bay fire. The progressive collapse of buildings can be effectively prevented by using bracing systems and fire protections. A combination of horizontal and vertical bracing systems as well as increasing the strength and stiffness of bracing members is recommended to enhance the collapse resistance. A protected frame dose not collapse immediately after the local failure but experiences a relatively long withstanding period of at least 60 mins. It is suggested to use three-dimensional models for accurate predictions of whether, when and how a structure collapses under various fire scenarios.

Shear strength prediction of concrete-encased steel beams based on compatible truss-arch model

  • Xue, Yicong;Shang, Chongxin;Yang, Yong;Yu, Yunlong;Wang, Zhanjie
    • Steel and Composite Structures
    • /
    • 제43권6호
    • /
    • pp.785-796
    • /
    • 2022
  • Concrete-encased steel (CES) beam, in which structural steel is encased in a reinforced concrete (RC) section, is widely applied in high-rise buildings as transfer beams due to its high load-carrying capacity, great stiffness, and good durability. However, these CES beams are prone to shear failure because of the low shear span-to-depth ratio and the heavy load. Due to the high load-carrying capacity and the brittle failure process of the shear failure, the accurate strength prediction of CES beams significantly influences the assessment of structural safety. In current design codes, design formulas for predicting the shear strength of CES beams are based on the so-called "superposition method". This method indicates that the shear strength of CES beams can be obtained by superposing the shear strengths of the RC part and the steel shape. Nevertheless, in some cases, this method yields errors on the unsafe side because the shear strengths of these two parts cannot be achieved simultaneously. This paper clarifies the conditions at which the superposition method does not hold true, and the shear strength of CES beams is investigated using a compatible truss-arch model. Considering the deformation compatibility between the steel shape and the RC part, the method to obtain the shear strength of CES beams is proposed. Finally, the proposed model is compared with other calculation methods from codes AISC 360 (USA, North America), Eurocode 4 (Europe), YB 9082 (China, Asia), JGJ 138 (China, Asia), and AS/NZS 2327 (Australia/New Zealand, Oceania) using the available test data consisting of 45 CES beams. The results indicate that the proposed model can predict the shear strength of CES beams with sufficient accuracy and safety. Without considering the deformation compatibility, the calculation methods from the codes AISC 360, Eurocode 4, YB 9082, JGJ 138, and AS/NZS 2327 lead to excessively conservative or unsafe predictions.

Assessment of geometric nonlinear behavior in composite beams with partial shear interaction

  • Jie Wen;Abdul Hamid Sheikh;Md. Alhaz Uddin;A.B.M. Saiful Islam;Md. Arifuzzaman
    • Steel and Composite Structures
    • /
    • 제48권6호
    • /
    • pp.693-708
    • /
    • 2023
  • Composite beams, two materials joined together, have become more common in structural engineering over the past few decades because they have better mechanical and structural properties. The shear connectors between their layers exhibit some deformability with finite stiffness, resulting in interfacial shear slip, a phenomenon known as partial shear interaction. Such a partial shear interaction contributes significantly to the composite beams. To provide precise predictions of the geometric nonlinear behavior shown by two-layered composite beams with interfacial shear slips, a robust analytical model has been developed that incorporates the influence of significant displacements. The application of a higher-order beam theory to the two material layers results in a third-order adjustment of the longitudinal displacement within each layer along the depth of the beam. Deformable shear connectors are employed at the interface to represent the partial shear interaction by means of a sequence of shear connectors that are evenly distributed throughout the beam's length. The Von-Karman theory of large deflection incorporates geometric nonlinearity into the governing equations, which are then solved analytically using the Navier solution technique. Suggested model exhibits a notable level of agreement with published findings, and numerical outputs derived from finite element (FE) model. Large displacement substantially reduces deflection, interfacial shear slip, and stress values. Geometric nonlinearity has a significant impact on beams with larger span-to-depth ratio and a greater degree of shear connector deformability. Potentially, the analytical model can accurately predict the geometric nonlinear responses of composite beams. The model has a high degree of generality, which might aid in the numerical solution of composite beams with varying configurations and shear criteria.

재액상화에 관한 원심모형실험과 수치해석 (Centrifuge Test and Its Numerical Modeling for Reliquefaction)

  • 박성식
    • 한국지반공학회논문집
    • /
    • 제22권12호
    • /
    • pp.89-98
    • /
    • 2006
  • 본 논문에서는 지진이 발생한 지역에서 다시 지진이 발생할 경우에 포화된 사질토 지반의 동적거동에 관한 연구를 수행하였다. 반복 직접단순전단시험을 실시하여 느슨한 모래지반에서 간극수압발생량과 재액상화발생여부의 상관관계를 분석하였다. 최초의 전단하중으로 인하여 지반이 원래 가지고 있던 유효수직응력의 약 90%까지 간극수압이 발생하였을 경우 시간 경과에 따라 과잉간극수압이 전부 소산된 이후 다시 전단하중을 가하였을 때 지반의 액상화에 대한 저항력은 증가하였다. 하지만 최초 진동으로 지반이 완전히 액상화되었을 경우에는 다음에 전달되는 전단하중에는 이전보다도 지반이 더욱 조밀해짐에도 불구하고 액상화 저항력은 증가하지 않았다. 이와 같은 실내시험결과를 진동 중에 발생하는 간극수압 변화와 흙의 강성저하를 고려할 수 있는 유효응력모델인 UBCSAND모델에 적용하였으며, 최초 전단하중에서 발생하는 간극수압비에 따라 구성모델의 액상화 저항력을 결정하였다. 이 구성모델을 이용하여 재액상화현상을 연구한 원심모형실험의 결과를 예측하였으며, 계측치와 서로 비교하였다. 국내에서도 일본과 가까운 남부지역에서는 약한 지진이지만 자주 발생하고 있는 시점에서 이와 같은 유효응력모델을 이용한 재액상화 현상에 관한 연구가 절실히 요구되어진다.