• 제목/요약/키워드: bridge-abutment system

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비선형 교대운동이 교량구조물의 지진응답에 미치는 영향분석 (Effects of Nonlinear Motions due to Abutment-Soil Interaction upon Seismic Responses of Multi-Span Simply Supported Bridges)

  • 김상효;마호성;이상우;경규혁
    • 한국지진공학회논문집
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    • 제6권6호
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    • pp.17-24
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    • 2002
  • 교대-인접토체사이의 상호작용으로 인한 비선형 교대거동이 교량구조물의 전체지진응답에 미치는 영향을 다양한 인자들을 고려할 수 있도록 개발된 이상화된 교량 해석모형을 이용하여 분석하였다. 교대의 비선형 운동은 교대의 강성저하를 반영하는 비선형 스프링으로 모형화하였으며, 비선형효과를 분석하기 위하여 현행 도로교 설계기준에서 제시하고 있는 일정강성을 적용한 선형스프링을 이용한 상대적인 선형모형과 결과를 비교하였다. 분석결과로부터 전체적인 교량구조물의 지진응답은 교대진동계의 모형화 방법 밑 인접한 토체의 조건에 따라 다양하게 나타나며, 교대진동계는 교량구조물의 지진응답에 중요한 영향을 미치는 것으로 분석되었다. 인접진동계간 최대상대거리는 비선형 모델을 적용한 경우가 상당히 증가하는 것으로 나타났으며, 특히 전체 교량구조물에서 낙교의 발생가능성이 가장 큰 위치에서 최대 30%, 정도까지도 증가하는 것으로 분석되었다. 또한 촘촘한 모래를 갖는 토체조건 하에서는 경간수가 증가할수록 교대의 비선형 거동에 따른 영향은 증가하는 것으로 평가되었다. 따라서 교량구조물의 지진거동 분석시 교대의 거동특성을 보다 실제적으로 반영하기 위해서는 교대의 비선형거동이 합리적으로 고려되어야 할 것으로 판단된다.

교대인접토체의 특성에 따른 강성저하를 고려한 교량시스템의 지진거동분석 (Dynamic Behaviors of a Bridge under Seismic Excitations Considering Stiffness Degradation with Various Abutment-Soil Conditions)

  • 김상효;마호성;경규혁;이상우
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2000년도 봄 학술발표회논문집
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    • pp.347-354
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    • 2000
  • The seismic behaviors of a bridge system with several simple spans are examined to see the effects of the longitudinal stiffness degradation due to abutment-soil interaction. The abutment-backfill system is modeled as one degree-of-freedom-system with nonlinear spring and linear damper. various soil-conditions surrounding the abutment such as loose sand, medium dense sand, and dense sand are considered in the bridge seismic analysis. The idealized mechanical model for the whole bridge system is modeled by adopting the multiple-degree-of-freedom system, which can consider components such as pounding phenomena, friction at the movable supports, rotational and translational motions of foundations, and the nonlinear pier motions. The stiffness of the abutment is found to be rapidly reduced at the beginning of the earthquakes, and to be converged to constant values shortly after the displacement approaches to the Predefined critical values. It is observed that the maximum relative distanced an maximum relative displacements are generally Increased as the relative density of a soil decreases As the peak ground acceleration increases, the response ratio of the case considering stiffness degradation to the case considering constant stiffness decreases.

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교대-토체의 강성저하를 고려한 교량의 지진거공분석 (Seismic Behavior Analysis of a Bridge Considering stiffness Degradation due to Abutment-Soil Interaction)

  • 김상효
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2000년도 춘계 학술발표회 논문집 Proceedings of EESK Conference-Spring
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    • pp.357-366
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    • 2000
  • Longitudinal dynamic behaviors of a bridge system under seismic excitations are examined with various magnitudes of peak ground accelerations. The stiffness degradation due to abutment-soil interaction is considered in the bridge model which may play the major role upon the global dynamic characteristics. The idealized mechanical model for the whole ridge system is proposed by adopting the multiple-degree-of-freedom system which can consider components such as pounding phenomena friction at the movable supports rotational and translational motions of foundations and the nonlinear pier motions. The abutment-soil interaction is simulated by utilizing the one degree-of-freedom system with nonlinear spring. The stiffness degradation of the abutment-soil system is found to increase the relative displacement under moderate seismic excitations.

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Dynamic behaviors of the bridge considering pounding and friction effects under seismic excitations

  • Kim, Sang-Hyo;Lee, Sang-Woo;Mha, Ho-Seong
    • Structural Engineering and Mechanics
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    • 제10권6호
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    • pp.621-633
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    • 2000
  • Dynamic responses of a bridge system with several simple spans under longitudinal seismic excitations are examined. The bridge system is modeled as the multiple oscillators and each oscillator consists of four degrees-of-freedom system to implement the poundings between the adjacent oscillators and the friction at movable supports. Pounding effects are considered by introducing the impact elements and a bi-linear model is adopted for the friction force. From the parametric studies, the pounding is found to induce complicated seismic responses and to restrain significantly the relative displacements between the adjacent units. The smaller gap size also restricts more strictly the relative displacement. It is found that the relative displacements between the abutment and adjacent pier unit became much larger than the responses between the inner pier units. Consequently, the unseating failure could take a place between the abutment and nearby pier units. It is also found that the relative displacements of an abutment unit to the adjacent pier unit are governed by the pounding at the opposite side abutment.

R/C 교각의 비선형성을 고려한 교량시스템의 2방향 지진거동분석 (Dynamic Behavior Analysis of a Bridge Considering Nonlinearity of R/C Piers under Bi-Directional Seismic Excitations)

  • 김상효;마호성;이상우;강정운
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2001년도 춘계학술대회 논문집
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    • pp.353-360
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    • 2001
  • An analysis procedure of 2-dimensional bridge dynamics has been developed by using force-deformation model, which simulates the pier motion under biaxial bending due to the bi-directional input seismic excitations. A three-dimensional mechanical model is utilized, which can consider the other major phenomena such as pounding, rotation of the superstructure, abutment stiffness degradation, and motions of the foundation motions. The bi-directional dynamic behaviors of the bridge are then examined by investigating the relative displacements of each oscillator to the ground. It is found that the nonlinearity of the pier due to biaxial bending affects the pier motions, but the global bridge behaviors are greatly governed by the pounding phenomena and stiffness degradation of the abutment-backfill system. Especially, the relative displacement of the abutment system (A2) with movable supports to the ground is increased about 30% due to the abutment stiffness degradation.

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측방유동 연약지반상 파일슬래브로 보강된 교대의 안정 (The Stability of Bridge Abutment Reinforced by Pile-slab on Soft Ground Undergoing Lateral Flow)

  • 홍원표;송영석
    • 한국지반공학회논문집
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    • 제22권8호
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    • pp.13-24
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    • 2006
  • 연약지반상에서 교대 뒷채움으로 인하여 측방이동이 발생된 교대에 대하여 현장조사를 수행하였다. 교대측방이동의 원인을 분석한 결과, 설계시 교대기초말뚝을 수동말뚝으로 고려하지 않고, 연약지반에 대한 개량이 충분히 이루어지지 않은 것으로 조사되었다. 교대측방이동에 대한 대책공법으로 파일슬래브 공법이 제안되었다. 이 공법은 교대배면의 성토하중을 말뚝을 통하여 지지층으로 전달함으로써 연약지반의 측방유동을 효과적으로 방지할 수 있다. 연약지반상 파일슬래브공법으로 보강된 교대의 거동을 조사하기 위하여 현장계측을 수행하였다. 현장계측결과 파일슬래브공법은 교대뒷채움으로 인한 측방이동에 대하여 효과적으로 저항하는 것으로 나타났으며, 뒷채움으로 인한 성토하중은 말뚝을 통하여 지지층으로 전달됨을 알 수 있다. 이를 통하여 파일슬래브공법의 교대측방이동에 대한 억지효과를 확인할 수 있으며, 적용된 설계법의 합리성을 검증할 수 있다.

Fragility characteristics of skewed concrete bridges accounting for ground motion directionality

  • Jeon, Jong-Su;Choi, Eunsoo;Noh, Myung-Hyun
    • Structural Engineering and Mechanics
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    • 제63권5호
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    • pp.647-657
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    • 2017
  • To achieve this goal, two four-span concrete box-girder bridges with typical configurations of California highway bridges are selected as representative bridges: an integral abutment bridge and a seat-type abutment bridge. A detailed numerical model of the representative bridges is created in OpenSees to perform dynamic analyses. To examine the effect of earthquake incidence angle on the fragility of skewed bridges, the representative bridge models are modified with different skew angles. Dynamic analyses for all bridge models are performed for all earthquake incidence angles examined. Simulated results are used to develop demand models and component and system fragility curves for the skewed bridges. The fragility characteristics are compared with regard to earthquake incidence angle. The results suggest that the earthquake incidence angle more significantly affects the seismic demand and fragilities of the integral abutment bridge than the skewed abutment bridge. Finally, a recommendation to account for the randomness due to the ground motion directionality in the fragility assessment is made in the absence of the predetermined earthquake incidence angle.

A Simplified Numerical Model for an Integral Abutment Bridge Considering the Restraining Effects Due to Backfill

  • Hong, Jung-Hee;Jung, Jae-Ho;You, Sung-Kun;Yoon, Soon-Jong
    • 콘크리트학회논문집
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    • 제15권5호
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    • pp.759-767
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    • 2003
  • This paper presents the simplified but more rational analysis method for the prediction of additional internal forces induced in integral abutment bridges. These internal forces depend upon the degree of restraint provided tc the deck by the backfill soil adjacent to the abutments and piles. In addition, effect of the relative flexural stiffness ratio among pile foundations, abutment, and superstructure on the structural behavior is also an important factor. The first part of the paper develops the stiffness matrices, written in terms of the soil stiffness, for the lateral and rotational restraints provided by the backfill soil adjacent to the abutment. The finite difference analysis is conducted and it is confirmed that the results are agreed well with the predictions obtained by the proposed method. The simplified spring model is used in the parametric study on the behavior of simple span and multi-span continuous integral abutment PSC beam bridges in which the abutment height and the flexural rigidity of piles are varied. These results are compared with those obtained by loading Rankine passive earth pressure according to the conventional method. From the results of parametric study, it was shown that the abutment height, the relative flexural rigidity of superstructure and piles, and the earth pressure induced by temperature change greatly affect the overall structural response of the bridge system. It may be possible to obtain more rational and economical designs for integral abutment bridges by the proposed method.

Different approaches for numerical modeling of seismic soil-structure interaction: impacts on the seismic response of a simplified reinforced concrete integral bridge

  • Dhar, Sreya;Ozcebe, Ali Guney;Dasgupta, Kaustubh;Petrini, Lorenza;Paolucci, Roberto
    • Earthquakes and Structures
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    • 제17권4호
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    • pp.373-385
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    • 2019
  • In this article, different frequently adopted modeling aspects of linear and nonlinear dynamic soil-structure interaction (SSI) are studied on a pile-supported integral abutment bridge structure using the open-source platform OpenSees (McKenna et al. 2000, Mazzoni et al. 2007, McKenna and Fenves 2008) for a 2D domain. Analyzed approaches are as follows: (i) free field input at the base of fixed base bridge; (ii) SSI input at the base of fixed base bridge; (iii) SSI model with two dimensional quadrilateral soil elements interacting with bridge and incident input motion propagating upwards at model bottom boundary (with and without considering the effect of abutment backfill response); (iv) simplified SSI model by idealizing the interaction between structural and soil elements through nonlinear springs (with and without considering the effect of abutment backfill response). Salient conclusions of this paper include: (i) free-field motions may differ significantly from those computed at the base of the bridge foundations, thus put a significant bias on the inertial component of SSI; (ii) conventional modeling of SSI through series of soil springs and dashpot system seems to stay on the safer side under dynamic conditions when one considers the seismic actions on the structure by considering a fully coupled SSI model; (iii) consideration of abutment-backfill in the SSI model positively affects the general response of the bridge, as a result of large passive resistance that may develop behind the abutments.

Finite element modeling of a deteriorated R.C. slab bridge: lessons learned and recommendations

  • Ho, I-Kang;Shahrooz, Bahram M.
    • Structural Engineering and Mechanics
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    • 제6권3호
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    • pp.259-274
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    • 1998
  • The test results from non-destructive and destructive field testing of a three-span deteriorated reinforced concrete slab bridge are used as a vehicle to examine the reliability of available tools for finite-element analysis of in-situ structures. Issues related to geometric modeling of members and connections, material models, and failure criteria are discussed. The results indicate that current material models and failure criteria are adequate, although lack of inelastic out-of-plane shear response in most nonlinear shell elements is a major shortcoming that needs to be resolved. With proper geometric modeling, it is possible to adequately correlate the measured global, regional, and local responses at all limit states. However, modeling of less understood mechanisms, such as slab-abutment connections, may need to be finalized through a system identification technique. In absence of the experimental data necessary for this purpose, upper and lower bounds of only global responses can be computed reliably. The studies reaffirm that success of finite-element models has to be assessed collectively with reference to all responses and not just a few global measurements.