• 제목/요약/키워드: Plane failure method

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쏘일네일링의 세 가지 파괴모드를 고려한 설계 최적화에 대한 연구 (Optimization of Soil-Nailing Designs Considering Three Failure Modes)

  • 서형준;이강현;박정준;이인모
    • 한국지반공학회논문집
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    • 제28권7호
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    • pp.5-16
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    • 2012
  • 쏘일네일링 공법은 흙막이 또는 사면안정을 위해서 가장 많이 사용되는 공법이다. 일반적으로 쏘일네일링 공법의 설계에서는 인발에 의한 파괴와 전단에 의한 파괴를 고려한다. 쏘일네일링의 파괴거동은 인발파괴와 전단파괴와 같이 파괴면을 가지면서 사면이 무너지는 경우도 발생하지만 굴착에 의해서 사면 표면의 수평응력이 감소함에 따라 점점 표면이 쓸려가는 얕은 파괴에 의해서 파괴에 이르는 경우가 실제 현장에서 자주 발생하게 된다. 따라서 쏘일네일링의 파괴거동을 크게 인발파괴, 전단파괴, 그리고 얕은파괴로 나누어 정의하였다. 본 논문에서는 각각의 파괴모드에 대한 제약조건을 이론적으로 산정하였다. 또한 각각의 파괴를 막기 위한 설계 최적화를 실시하였으며, 네일링의 정착길이, 개수, 그리고 얕은파괴를 막기 위한 전면에서의 최소 구속압을 설계변수로 두어 최적화 과정을 진행하였다. 최적화 과정은 먼저 네일링의 정착길이와 인장력을 설계변수로 하여 인발파괴 및 전단파괴에 대하여 최적화를 실시한다. 다음으로 각 굴착단계별 사면의 표면에서 얕은파괴를 막기 위한 최소의 구속압을 산정한 후 최적화를 반복수행하여 각각의 설계 변수를 산정하게 된다. 이와 같은 설계 최적화 프로그램을 통해서 인발파괴와 전단파괴만을 고려하는 기존의 설계 시스템에서 프리스트레스까지 산정할 수 있게 되었다.

Borehole Image Processing System(BIPS)를 이용한 사면 안정성 해석

  • 유병옥;김병섭
    • 지구물리
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    • 제5권2호
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    • pp.111-129
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    • 2002
  • 일반적으로 사면에 대한 조사방법은 지표지질조사를 실시하여 불연속면의 정보를 획득하는 것이 보편화 된 방법이나 제한된 영역의 정보만을 획득하게 되는 문제점을 가지게 된다. 절취사면에서 활동면 또는 활동가능한 연약한 파쇄대를 추정하는 방법으로 토모그래피, 전기비저항탐사, 탄성파 탐사와 같은 지구물리탐사 방법을 이용하나 최근에 사용된 카메라 장치를 이용하는 방법은 시추공벽의 화상을 촬영하여 직접 육안으로 확인 할 수 있는 방법으로 다른 방법들에 비해 보다 확실히 활동가능면을 찾아낼 수 있는 방법이라고 생각된다. 본 논문에서는 고속도로 현장에서 붕괴가 발생한 사면의 붕괴원인과 활동면을 추정하고 굴착이 되지 않은 대절토 사면의 활동가능성을 예측하기 위해 시추조사를 실시한 후 BIPS(Borehole Image Processing System) 장비를 도입하여 사면내의 활동가능성 예측 및 불연속면 방향에 대한 정보를 획득하여 굴착시의 사면안정 문제를 예견해 보았다. 붕괴가 발생된 사면에서는 활동가능성이 있는 점토층을 확인할 수 있었으며 굴착되지 않은 사면에서는 주절리군의 발달방향이 사면방향으로 경사져 활동가능성이 매우 클 것으로 예상되어 사면에 대한 안정대책을 제시하였다. 특히, 굴착되지 않은 절토사면은 굴착 후에 안정성을 확보하기 위한 사면경사 완화방안은 지형이 급경사를 형성하여 100m 이상의 장대면을 형성하므로 사면을 앵커로 보강하는 방안 및 절토구간을 터널로 변경하는 방안을 제안하였다.

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통합방법을 이용한 철근콘크리트부재의 비선형 유한요소해석 (Unified Method for Nonlinear Finite Element Analysis of RC Planar Members)

  • 박홍근
    • 콘크리트학회지
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    • 제9권2호
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    • pp.133-144
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    • 1997
  • 2차원 응력상태의 철근콘크리트 부재해석을 위하여 소성이론과 파괴모델의 통합방법을 연구하였다. 콘크리트의 대별되는 두 가지 거동특성인 다차원 압축상태의 강도증가와 인장균열파괴를 동시에 나타내기 위하여, 압축파괴와 인장균열의 다중파괴기준을 사용하는 소성이론을 근간으로 여러 실험결과를 반영하는 파괴모델을 적용한다. 압축파괴기준으로서 Drucker-Prager모델과 von Mises 모델을 비교 사용하며 인장균열거동에 대하여 회전균열소성모델과 고정균열소성모델을 비교한다. 이러한 압축파괴기준과 이장균열파괴기준의 설정에는 다차원 압축상태의 강도증가, 균열로 인한 인장과 압축응력도의 저하, 보강철근의 영향등을 나타내는 실험식과 파괴에너지개념을 사용한다. 이 재료모델을 비선형유한요소해석에 사용하여 기존의 실험결과와 비교한다. 재료모델의 압축파괴와 인장균열거동을 검증하기 우하여 콘크리트의 압축파괴 또는 철근의 인장항복에 의하여 거동이 대별되는 실험들과 비교한다.

A discrete element simulation of a punch-through shear test to investigate the confining pressure effects on the shear behaviour of concrete cracks

  • Shemirani, Alireza Bagher;Sarfarazi, Vahab;Haeri, Hadi;Marji, Mohammad Fatehi;Hosseini, Seyed shahin
    • Computers and Concrete
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    • 제21권2호
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    • pp.189-197
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    • 2018
  • A discrete element approach is used to investigate the effects of confining stress on the shear behaviour of joint's bridge area. A punch-through shear test is used to model the concrete cracks under different shear and confining stresses. Assuming a plane strain condition, special rectangular models are prepared with dimension of $75mm{\times}100mm$. Within the specimen model and near its four corners, four equally spaced vertical notches of the same depths are provided so that the central portion of the model remains intact. The lengths of notches are 35 mm. and these models are sequentially subjected to different confining pressures ranging from 2.5 to 15 MPa. The axial load is applied to the punch through the central portion of the model. This testing and models show that the failure process is mostly governed by the confining pressure. The shear strengths of the specimens are related to the fracture pattern and failure mechanism of the discontinuities. The shear behaviour of discontinuities is related to the number of induced shear bands which are increased by increasing the confining pressure while the cracks propagation lengths are decreased. The failure stress and the crack initiation stress both are increased due to confining pressure increase. As a whole, the mechanisms of brittle shear failure changes to that of the progressive failure by increasing the confining pressure.

Three dimensional modelling of ancient colonnade structural systems subjected to harmonic and seismic loading

  • Sarhosis, V.;Asteris, P.G.;Mohebkhah, A.;Xiao, J.;Wang, T.
    • Structural Engineering and Mechanics
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    • 제60권4호
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    • pp.633-653
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    • 2016
  • One of the major threats to the stability of classical columns and colonnades are earthquakes. The behavior of columns under high seismic excitation loads is non-linear and complex since rocking, wobbling and sliding failure modes can occur. Therefore, three dimensional simulation approaches are essential to investigate the in-plane and out-of-plane response of such structures during harmonic and seismic loading excitations. Using a software based on the Distinct Element Method (DEM) of analysis, a three dimensional numerical study has been performed to investigate the parameters affecting the seismic behaviour of colonnades' structural systems. A typical section of the two-storey colonnade of the Forum in Pompeii has been modelled and studied parametrically, in order to identify the main factors affecting the stability and to improve our understanding of the earthquake behaviour of such structures. The model is then used to compare the results between 2D and 3D simulations emphasizing the different response for the selected earthquake records. From the results analysis, it was found that the high-frequency motion requires large base acceleration amplitude to lead to the collapse of the colonnade in a shear-slip mode between the drums. However, low-frequency harmonic excitations are more prominent to cause structural collapse of the two-storey colonnade than the high-frequency ones with predominant rocking failure mode. Finally, the 2D analysis found to be unconservative since underestimates the displacement demands of the colonnade system when compared with the 3D analysis.

사면의 변이영역에서 보강재의 변형률 특성 (Strain Characteristics of Reinforcing materials in the transition zone of slopes)

  • 김경태;장대수;장기태;한희수
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2003년도 사면안정학술발표회
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    • pp.119-127
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    • 2003
  • For the calculation of internal stability, the hypothesis in conventional design is on the basis of two distinct zones, which are‘active zone’and‘passive zone’. This means that there is an abrupt discontinuous transition from active to passive states across a potential failure line. The existence of a discontinuity of this nature appears physically unreasonable, especially from kinematic considerations. A series of pull-out model tests was undertaken from a wall being rotated about the toe to find the strain distribution mobilized from near the wall face into the deep, stable zone through the centre plane. With this finding of transition zone, the objective of study is aiming at identifying the likely effect of this zone in designing method by comparing with the prevailing design method.

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불확실한 물성치를 갖는 복합재료 적층 평판의 파괴 예측 (Prediction of the Onset of Failures in Composite Laminated Plates with Uncertain Material Properties)

  • 김태욱;신효철
    • 대한기계학회논문집A
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    • 제24권1호
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    • pp.259-268
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    • 2000
  • Because of their superior mechanical properties to isotropic materials, composite laminated plates are used for many structural applications that require high stiffness-to-weight and strength-to-weight ratios. Composite materials are always subject to a certain amount of scatter in their elastic moduli, but most analyses and designs with the materials are usually conducted by assuming that the material properties are fixed and have no uncertainties. In this paper, a convex modeling approach is introduced to take account of such uncertainties in elastic moduli. It is used with the finite element method to predict the onset of failures in composite laminated plates subject to in-plane loading. Numerical results show that failures begin at the smaller load when the uncertainties of elastic moduli considered and therefore, such uncertainties should be considered at the design stage for the safety and reliability of the structures.

안벽에 계류된 선박의 비선형 운동응답 (Nonlinear Motion Responses of a Moored Ship beside Quay)

  • 이호영;임춘규;유재문;전인식
    • 한국해양공학회지
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    • 제17권4호
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    • pp.8-15
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    • 2003
  • When a typoon sets into harbour, a moored ship shows erratic motions and even mooring line failure may occur. such troubles may be caused by harbour resonance phenomena, resulting in large motion amplitudes at low frequency, which is close ti the natural frequency of th moored ship. The nonlinear motions of a ship moored to quay are simulated under external forces due to wave, current including mooring forces in time domain. The forces due to waves are obtained from source and dipole distribution method in the frequency domain. The current forces are calculated by using slow motion maneuvering equation in the horizontal plane. The wind forces are calculated from the empirical formula of ABS and the mooring forces of ropes and fenders are modeled as linear spring.

Discrete element modeling of masonry structures: Validation and application

  • Pulatsu, Bora;Bretas, Eduardo M.;Lourenco, Paulo B.
    • Earthquakes and Structures
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    • 제11권4호
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    • pp.563-582
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    • 2016
  • The failure mechanism and maximum collapse load of masonry structures may change significantly under static and dynamic excitations depending on their internal arrangement and material properties. Hence, it is important to understand correctly the nonlinear behavior of masonry structures in order to adequately assess their safety and propose efficient strengthening measures, especially for historical constructions. The discrete element method (DEM) can play an important role in these studies. This paper discusses possible collapse mechanisms and provides a set of parametric analyses by considering the influence of material properties and cross section morphologies on the out of plane strength of masonry walls. Detailed modeling of masonry structures may affect their mechanical strength and displacement capacity. In particular, the structural behavior of stacked and rubble masonry walls, portal frames, simple combinations of masonry piers and arches, and a real structure is discussed using DEM. It is further demonstrated that this structural analysis tool allows obtaining excellent results in the description of the nonlinear behavior of masonry structures.

$\rho$-Version 유한요소법에 의한 균열판의 소성역 형상과 J-적분값 산정 (The Values of J-integral and Shapes of Plastic Zone Near a Crack Tip of Cracked Panels by the $\rho$-Version of F.E.M.)

  • 홍종현;우광성
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 1999년도 봄 학술발표회 논문집
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    • pp.42-49
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    • 1999
  • Because the linear elastic tincture analysis has been proved to be insufficient in predicting the failure of cracked bodies, in recent years, a number of fracture concepts have been studied which remain applicable in the presence of large-scale plasticity near a crack tip. This work thereby presents a new finite element model, as accurate as possible, to analyze plane problems of ductile fracture under large-scale yielding conditions. Based on the incremental theory of plasticity, the p-version finite element analysis is employed to account for the values of J-integral, the most dominant fracture parameter, and the shape of plastic zone near a crack tip by using the J-integral method and equivalent domain integral method. The numerical results by the proposed model are compared with the theoretical solutions in literatures and the numerical solutions by the i,-version of F.E.M.

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