• 제목/요약/키워드: Slope reinforcement method

검색결과 156건 처리시간 0.029초

Stability charts and reinforcement with piles in 3D nonhomogeneous and anisotropic soil slope

  • Xu, Jingshu;Li, Yongxin;Yang, Xiaoli
    • Geomechanics and Engineering
    • /
    • 제14권1호
    • /
    • pp.71-81
    • /
    • 2018
  • Soils are mostly nonhomogeneous and anisotropic in nature. In this study, nonhomogeneity and anisotropy of soil are taken into consideration by assuming that the cohesion increases with depth linearly and also varies with respect to direction at a particular point. A three-dimensional rotational failure mechanism is adopted, and then a three-dimensional stability analysis of slope is carried out with the failure surface in the shape of a curvilinear cone in virtue of the limit analysis method. A quasistatic approach is used to develop stability charts in nonhomogeneous and anisotropic soils. One can easily read the safety factors from the charts without the need for iterative procedures for safety factors calculation. The charts are of practical importance to prevent a plane failure in excavation slope whether it is physically constrained or not. Then the most suitable location of piles within the reinforced slope in nonhomogeneous and anisotropic soils is explored, as well as the interactions of nonhomogeneous and anisotropic coefficients on pile reinforcement effects. The results indicate that piles are more effective when they are located between the middle and the crest of the slope, and the nonhomogeneous coefficient as well as the anisotropic coefficient will not only influence the most suitable location for piles but also affect the calculated safety factor of existing reinforced slope. In addition, the two coefficients will interact with each other on the effect on slope reinforcement.

핵석지반의 사면안정성 연구 (A Study on Slope Stability of Corestone)

  • 이수곤;금동헌
    • 한국지반공학회:학술대회논문집
    • /
    • 한국지반공학회 2000년도 가을 학술발표회 논문집
    • /
    • pp.551-558
    • /
    • 2000
  • When cut slope is excavated, corestone in cut slope exists 20∼30%. In case of soil and soft rock mixing, people lay out gradient of 1 : 0.5, because of soft rock slope. In a case, slope that exists corestone between soil happens to large landslide. So, As a study performs geological survey, Analysis of slope stability reinforcement measures, etc, A study presents example meaures and analysis on slope stability of corestone.

  • PDF

경남 대합지구 절취사면의 붕괴 및 보강대책에 관한 사례연구 (A Case Study on Collapse and Reinforcement of Cut-slope in Gyeong-Nam Dae-Hap)

  • 이진권;박춘식;장정욱
    • 한국지반공학회:학술대회논문집
    • /
    • 한국지반공학회 2006년도 춘계 학술발표회 논문집
    • /
    • pp.703-710
    • /
    • 2006
  • The objective of this study is to acquire stabilization of collapse of cut-slope in Chang-Nyung, Gyeong-Nam. The following shows the results of this study. We applied a reinforcement method with the latticed beam $(0.50\times0.50)$ + permanent anchor($PC\;6\times\phi12.7mm$, Ta = 50.0t/EA, etc 3.0m), and fill gravels(D=35cm) in the latticed beam. We attenuated the slope (1:2.0), and stabilized the slope pace by ASANA method. We planned a drainage way(U-type, $0.40\times0.40$) in order to prevent surface water from inflowing into underground.

  • PDF

복합사면의 사면안정해석에 관한 연구 (Slope Stability Analysis for Compound slope)

  • 신은철;김진수
    • 한국지반공학회:학술대회논문집
    • /
    • 한국지반공학회 2010년도 춘계 학술발표회
    • /
    • pp.1279-1285
    • /
    • 2010
  • Our country has a tendency to build many structures by cutting mountainous areas due to geographical features. Among these construction done in our country, road construction take the first spot in rank. As the construction is done, fractured inclining plane is created inevitability because of the natural properties of mountainous areas. The stability of the fractured inclining planes and slope formed in the opening, which are developed at the time of construction, need to be evaluated. Also, reinforcement plans for these matters are necessary. This paper is to go through an examination on the fractured inclining surface that is developed at the time of construction, especially the composite inclining plane that consists of soil and rocks. Furthermore, evaluating the stability by performing an analysis on stereographic projection and limit equilibrium, based on the examination results. using the stability evaluations, applications were explored for reinforcement methods of construction that fits the geological characters of this inclining surface.

  • PDF

유한차분해석을 통한 쏘일네일링 설치각도가 사면 보강효과에 미치는 영향 (Influence of Soil Nailing Angle on Slope Reinforcement Effect by Finite Difference Analysis)

  • 유광호;민경선
    • 한국지반공학회논문집
    • /
    • 제29권8호
    • /
    • pp.27-36
    • /
    • 2013
  • 사면보강을 위한 쏘일네일링 설계 시 한계평형법을 기초로 하는 프로그램이 주로 사용되고 있다. 하지만 사용 프로그램들은 지반과 쏘일네일링의 상호작용을 제대로 반영하지 못하는 단점을 가지고 있어 이를 보완할 필요가 있다. 또한 경제적인 시공 및 설계를 위해 쏘일네일링 보강패턴에 대한 연구가 요구된다. 본 연구에서는 지반과 쏘일네일링의 상호작용이 고려되는 유한차분해석을 실시하여, 쏘일네일링의 보강효과를 비교 분석하였다. 그 결과 사면으로부터 네일까지의 각도가 $90^{\circ}$가 될 때 활동면이 최대로 커짐에 따라 최대안전율을 보였다.

암반사면 안정성 평가 및 보강설계 (Stability Evaluation and Reinforcement Design Method of the Rock Slope)

  • 안윤성;김연중
    • 지질공학
    • /
    • 제4권3호
    • /
    • pp.343-356
    • /
    • 1994
  • 대형구조물 및 발전소 또는 도로, 철도 등 모든 산업 및 사회간접시설물을 건설할 때, 새롭게 영구사면들이 조성되며 이러한 사면에서 지질재해인 암반의 사면붕괴가 종종 발생한다. 붕괴된 사면은 붕괴원인 및 붕괴형태 그리고 안정성 평가를 위한 현장조사 및 실내시험을 통하여 붕괴모델링(Failure Modelling)을 설정하게 되며, 이에 따른 사면의 안전율을 구하고 설계 기준에 맞도록 사면을 보강하게 된다. 사면의 보강은 현장여건이 최대한 반영된 최적의 붕괴모델링이 요구되며, 이에 따른 보강공법으로는 사면 경사각을 낮추거나 사면을 보강 처리하므로서 안전율을 증가시키는 방법 등이 있다.

  • PDF

A laboratory and numerical study on the effect of geogrid-box method on bearing capacity of rock-soil slopes

  • Moradi, Gholam;Abdolmaleki, Arvin;Soltani, Parham;Ahmadvand, Masoud
    • Geomechanics and Engineering
    • /
    • 제14권4호
    • /
    • pp.345-354
    • /
    • 2018
  • Currently, layered geogrid method (LGM) is the commonly practiced technique for reinforcement of slopes. In this paper the geogrid-box method (GBM) is introduced as a new approach for reinforcement of rock-soil slopes. To achieve the objectives of this study, a laboratory setup was designed and the slopes without reinforcements and reinforced with LGM and GBM were tested under the loading of a circular footing. The effect of vertical spacing between geogrid layers and box thickness on normalized bearing capacity and failure mechanism of slopes was investigated. A series of 3D finite element analysis were also performed using ABAQUS software to supplement the results of the model tests. The results indicated that the load-settlement behavior and the ultimate bearing capacity of footing can be significantly improved by the inclusion of reinforcing geogrid in the soil. It was found that for the slopes reinforced with GBM, the displacement contours are widely distributed in the rock-soil mass underneath the footing in greater width and depth than that in the reinforced slope with LGM, which in turn results in higher bearing capacity. It was also established that by reducing the thickness of geogrid-boxes, the distribution and depth of displacement contours increases and a longer failure surface is developed, which suggests the enhanced bearing capacity of the slope. Based on the studied designs, the ultimate bearing capacity of the GBM-reinforced slope was found to be 11.16% higher than that of the slope reinforced with LGM. The results also indicated that, reinforcement of rock-soil slopes using GBM causes an improvement in the ultimate bearing capacity as high as 24.8 times more than that of the unreinforced slope.

Model experiments for the reinforcement method of agricultural reservoirs by overtopping

  • Lee, Young-Hak;Lee, Dal-Won;Heo, Joon;Ryu, Jung-Hyun
    • 농업과학연구
    • /
    • 제47권1호
    • /
    • pp.163-171
    • /
    • 2020
  • In this study, a large laboratory model experiment was conducted with the aim of developing an embankment reinforcement method to prevent overtopping, which is the main cause for the failure of agricultural reservoirs. The model experiment was carried out with concrete and asphalt as a permanent reinforcement method and with geomembrane as the emergency method at a deteriorated homogeneous reservoir. Under the non-reinforced conditions, the pattern of the failure appeared in several scour directions from the downstream slope as the overtopping began, and the width and depth of the erosion were magnified as it gradually moved to the dam crest. Under the conditions reinforced with asphalt and concrete, the overtopping was stabilized. In the case of the concrete reinforcement, it was found that the slope of the riprap boundary exhibited downward erosion by the current; thus, it was necessary to construct an extension up to the riprap joint of the upstream and downstream sides to prevent the expansion of the failure. Under the conditions reinforced with the geomembrane sheet, the overtopping was stabilized, and no seepage was found that required the emergency reinforcement method. Asphalt, concrete, and geomembrane sheet reinforcements have been shown to be capable of delaying failure for about 1 hour and 40 minutes compared to the non-reinforcement conditions. The reinforcement method is considered to be a very effective method to prevent disasters during overtopping. The pore water pressure can be used as useful data to predict the risk of failure at an embankment.

식생뿌리의 전단강도 보강에 의한 사면안전율 해석 -잣나무 뿌리를 중심으로- (A Study on the Slope Stability Analysis by Shearing Reinforcement of Vegetation Roots -Focused on the Pinus Koraiensis Roots-)

  • 조주형;이종성
    • 한국조경학회지
    • /
    • 제27권5호
    • /
    • pp.80-93
    • /
    • 2000
  • This study measured the shearing resistance of the roots of the Pinus Koraiensis by the tensile strength gained through their individual tensile test for the Root Reinforcement Model. On the basis of the shearing resistance value calculated through such a process the factor of safety(Fs) was comparatively presented by using the simplified Janbu Method in PCSTABL5M, the slop-analyzing software which had been developed in Purdue University of the U.S.A according to the shape of a slope and the type of soil. The results to have measured a stress and the factor of safety(Fs) by experiment are as follows. 1) The mean root diameter of the Pinus Koraiensis used for this experiment was 2.483mm and the mean tensile stress was calculated as 422.846(kgf/$\textrm{cm}^2$). In the strain ratio of material and the elastic modulus was measured 7.8%, 9,291.92(kgf/$\textrm{cm}^2$). 2) The shearing strength including the resistance of soil and root is expressed as Rt=C+Cr+$\sigma$.tan . ΔCr(kg/$\textrm{cm}^2$) of the shearing resistance calculated by estimating the areal ratio of roots at 10 is 0.253(kgf/$\textrm{cm}^2$). 3) As the result of making an analysis of the natural slope stability by the soil parameter, the factor of safety(Fs) was calculated at 1.795 in CL, and the stability analysis of the root reinforcement slope, Fs was calculated at 1.952. However, since a precise analysis of the controlled factors of the slope analyses are demanded for more accurate dynamic analyses, the future demands a study on this.

  • PDF

개량 강관네일링 공법을 이용한 사면 보강사례 연구 (A Case Study on the Slope Reinforcement by Improved Steel Pipe Nailing)

  • 최동남;임희대;송영수;이규환
    • 한국안전학회지
    • /
    • 제22권1호
    • /
    • pp.54-60
    • /
    • 2007
  • This paper describes typical design and construction practice for in-situ ground reinforcement technique using improved steel pipe pressure grouting. A case history is presented to illustrate the benefit gained by application of the technique. This technique was applied to cut slopes developed in the construction of auxiliary spillway of 00 dam. Applicable conditions, method of survey, slope stability analysis and construction are given in this parer. As for the construction method, a procedure is given and the main points are the control of construction work. As a result of the pull-out test, it is shown that seel pipe nailing is particularly useful for stabilizing rock slope.