• Title/Summary/Keyword: 굴착지지

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Lateral Pressure on ,anchored Excavation Retention walls (앵카지지 굴착흙막이벽에 작용하는 측방토압)

  • 홍원표;이기준
    • Geotechnical Engineering
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    • v.8 no.4
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    • pp.81-98
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    • 1992
  • Deep excavation increases utility of underground spaces for high buildings. subways etc. To excavate vertically the underground, safe earth retaining walls and supporting systems should be prepared. Recently anchors have been used to support the excavation wall. The anchored excavation has some advantages toprovide working space for underground construction. In this paper the prestressed anchor loads were measured by load cells which attacted to the anchors to support the excavation walls at eight construction fields. where under-ground deep excavation was performed on cohesionless soils. The lateral pressures on the retaining walls, which are estimated from the measured anchor forces, shows a trapezoidal distribution that the pressure increases linearly with depth from the ground surface to 30% of the excavation depth and then keeps constant value regardless of the stiffness of the walls. The maximum lateral pressure was same to 63% of the Ranking active earth pressure or 17% of the vertical overburden pressure at the final depth The investigation of the measured lateral pressure on the anchored excavation walls shows that empirical earth pressure diagram presented by Terzaghi-Peck and Tschebotarioff could be applied with some modifications to determine anchor loads for the anchored excavation in cohesionless soils.

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지하 굴착시 계측관리에 의한 가설부재의 절감

  • 김학수
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 1997.11a
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    • pp.295-300
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    • 1997
  • 건물지하터파기에서 지하굴착시 공사비절감 및 안전관리를 위하여 계측관리를 실시하였다. 본 빌딩은 길이와 폭이 38.6m, 28.5m, 터파기깊이는 17.5m로 원설계에서는 strut5단으로 토류벽을 지지하여 흙을 굴착하는 것으로 설계되어 있으나 토질주상도를 참고로 할 때GL-8.5m부터는 굳은 토사층 및 풍화암층이 나오는 상태이므로 원설계와는 달리 토층이 연약한 부분만 strut로 지지한 후 strut에 strain Gauge를 부착하여 굴착단계마다 strut의 응력을 검정하고 이 응력값이 부재의 허용응력 이내로 계속된다면 Strut단 수를 절감하는 방안으로 일을 추진하였으며 본문에서는 이에 대하여 설명하고자 한다. (중략)

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A study on the effect of support structure of steel rib in partitioning excavation of tunnel (터널 상·하반 분할 굴착 시 강지보재 지지구조 효과에 대한 연구)

  • Kim, Ki-Hyun;Kim, Yeon-Deok;Hwang, Beoung-Hyeon;Choi, Yong-Kyu;Kim, Sang-Hwan
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.22 no.5
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    • pp.543-561
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    • 2020
  • This paper is the result of the study on the effect of the support structure of the tunnel steel rib. In tunnel excavation, the top and bottom half excavation methods result in subsidence of steel rib reinforcement due to insufficient support of steel rib reinforcement when the ground is poor after excavation. The foundation of the steel rib installed in the upper half excavates the bottom part of the base, causing the subsidence to occur due to various effects such as internal load and lateral pressure. As a result, the tunnel is difficult to maintain and its safety is problematic. To solve these problems, steel rib support structures have been developed. For the purpose of verification, the behavior of the supporting structure is verified by model experiments reduced to shotcrete and steel rib material similarity, the numerical analysis of ΔP and ΔP generated by bottom excavation by Terzaghi theoretical equation. As a result, it was found that the support structure of 20.100~198.423 kN is required for the 10~40 m section of the depth for each soil of weathered soil~soft rock. In addition, as a result of the reduced model experiment, a fixed level of 50% steel rib deposit of steel rib support structure was installed. The study shows that the installation of steel rib support structures will compensate for uncertainties and various problems during construction. It is also thought that the installation of steel rib support structure will have many effects such as stability, economy, and air reduction.

Evaluation of Soil Stiffness and Excavation Support Wall Deformation at Deep Excavation Site Using Inverse Analysis (역해석을 이용한 지반 강성 산정 및 굴착 지지벽체의 변형 평가)

  • Kim, Taesik;Jung, Young-Hoon
    • Journal of the Korean GEO-environmental Society
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    • v.21 no.12
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    • pp.5-10
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    • 2020
  • In this study, the evolution of soil engineering property values according to excavation was analyzed through the inverse analysis for the OO deep excavation site located in Incheon. The stiffness of the ground was updated by comparing the horizontal wall deformation of the excavation support wall calculated by the finite element analysis at each stage of excavation and the value measured using an inclinometer. The updated stiffness was used to predict the response of the excavation support wall in the next excavation step. The finite element analysis method using the Hardening Soil model was used, and the stratum where the excavation support wall is located was selected as the stratum for the inverse analysis. The inverse analysis results showed that the stiffness value at the stiffness value at the initial stage of excavation is larger than the stiffness used in the original design. As the excavation proceeds, the stiffness calculated through the second inverse analysis was found to decrease compared to the value derived by the first inverse analysis. Therefore, it can be stated that the deformation of the excavation support wall can be accurately calculated through finite element analysis when an appropriate stiffness value is input according to the excavation stage.

Settlement of Ground Surface behind Anchored Sheet-Piles in Loose Sand (느슨한 모래지반(地盤)에서 앵커로 지지(支持)된 널말뚝의 배면지반침하(背面地盤沈下))

  • Chun, Byung Sik;Kang, In Sung
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.10 no.1
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    • pp.145-153
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    • 1990
  • The relationship between ground surface settlements and wall displacements associated with excavation is analysed by the results of model test of anchored sheet-piles in loose sand. The effect of wall restriction at the toe, anchor slope, wall rigidity, and excavation level on settlement of ground surface and wall displacement are considered for model test. The results of model test are compared with the theory and the results of field measurement of braced wall. The results of analysis are shown by fitted regression equations that may be used for prediction of ground surface settlement adjacent to anchored sheet-piles. It is found that wall displacement and ground surface settlement associated with excavation are different from the supporting methods.

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Lateral Earth Pressures Acting on Anchored Diaphragm Walls and Deformation Behavior of Walls during Excavation (지하굴착시 앵커지지 지중연속벽에 작용하는 측방토압 및 벽체의 변형거동)

  • Hong, Won-Pyo;Lee, Moon-Ku;Lee, Jae-Ho;Yun, Jung-Mann
    • Journal of the Korean Geotechnical Society
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    • v.23 no.5
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    • pp.77-88
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    • 2007
  • Lateral earth pressure and horizontal displacement of the diaphragm walls constructed in multi-soil layers were analyzed by the field instrumentation from six building construction sites in urban area. The distribution of the developed earth pressure of the anchored diaphragm walls during excavation shows approximately a trapezoid diagram. The maximum earth pressure of anchored diaphragm walls corresponds to $0.45{\gamma}H$ and the earth pressure acts at the upper part of the walls. The maximum earth pressure is two times larger than the empirical earth pressure of flexible walls in sands suggested by Terzaghi and Peck(1967), Tschebotarioff(1973), and Hong and Yun(1995a). The horizontal displacement of diaphragm walls is closely related with supporting systems such as struts, anchors, and so on. The horizontal displacement of anchored walls shows less than 0.1 percent of the excavated depth, and the horizontal displacement of strutted walls shows less than 0.25 percent of the excavated depth. Therefore, the restraining effect of horizontal displacement to the anchored diaphragm walls is larger than the strutted diaphragm walls. In addition, since the horizontal displacement of the diaphragm walls is lower than the criterion, $\delta=0.25%H$, used for control the anchored retention wall using soilder piles, the safety of excavation sites applied with the diaphragm walls is pretty excellent.

Rock Socket Roughness with Drilling Tools (굴착장비에 따른 암반근입말뚝의 공벽 거칠기)

  • Nam, Moon-S.
    • Journal of the Korean Geotechnical Society
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    • v.23 no.1
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    • pp.13-21
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    • 2007
  • Rock socketed drilled shafts are used as foundations for bridges and other transportation structures because of their load carrying capabilities. However, only limited information is available in the literature on the effects of roughness on the unit side resistance of rock socketed drilled shafts. The objective of this study is to investigate the effect of drilling tools on the socket roughness in soft clay shale in Texas. Field study showed that the drilling tools, auger and core barrel, produced different roughness in the boreholes.

Lateral Earth Pressures Acting on Anchored Retention Walls for Underground Excavation (지하굴착시 앵커지지 흙막이벽에 작용하는 측방토압)

  • 홍원표;윤중만
    • Geotechnical Engineering
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    • v.11 no.1
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    • pp.63-78
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    • 1995
  • Recently, in order to utilize more effectively underground space, deep excavations have been performed on building or subway construction in urban areas. In such excavations, anchors have been used to support the excavation retaining walls because the anchored excavation could provide wide working space for underground construction. The purpose of this paper is to establish empirical equations to be able to estimate the earth pressures acting on anchored excavation retention walls, based on the investigation of field measuring results, which were obtained from twenty seven building construction sites. The prestressed anchor force was measured by load cells which were attached to the anchor head, while the horizontal displacement of excavation walls were measured by inclinometers which were installed right'behind the retention walls. The lateral earth pressures acting on the anchored retention walls, which were estimated from both the measured anchor forces and the horizontal displacement of the walls, showed a trapezoidal distribution. There was some difference between the measured earth pressures acting on the anchored retention walls and the empirical earth pressures given by several empirical equations. Thus, the lateral earth pressures acting on anchored retention walls would be estimated by these empirical equations with some modifications.

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A Case Study on the Top-Down Methods Performed in the Excavation Works of Domestic Downtown (국내 도심지 굴착공사에 적용된 Top-Down 공법의 시공사례 연구)

  • Chung, Jeeseung;Park, Sukk
    • Journal of the Korean GEO-environmental Society
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    • v.18 no.2
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    • pp.5-19
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    • 2017
  • Underground excavation for building construction in Korea is changing from conventional support method (Strut, Ground anchor) to inside permanent support method by stability, economic, circumstances around excavation and etc. This study was selected the sites of Top-down, New Top-down, S.P.S, S.T.D and B.R.D in general use. This study was compared and analyzed a construction cost and period between aforementioned methods and conventional support method. Also, this study was confirmed the stability of temporary retaining wall by analysis for measurement data under construction. As a result, this study can grasp that most improved permanent support method is excellent in economic and constructability than conventional support method in case of deep excavation and rapid appearance of bedrock.

A Study on the Rational Application of 3D Numerical Analysis for Anchored Earth Retaining Wall (앵커지지 흙막이 벽체의 합리적인 3차원 수치해석기법 적용에 관한 연구)

  • Jeong, Sang-Seom;Sim, Jae-Uk;Lee, Sung-June
    • Journal of the Korean Geotechnical Society
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    • v.32 no.4
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    • pp.29-39
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    • 2016
  • This paper presents the results of 2D and 3D finite element simulations conducted to analyze the effects of excavation depth (H), excavation width (L), and ground condition on the behavior of anchored earth retaining wall in inclined ground layers. The results of numerical analyses are compared with those of the site instrumentation analyses. Based on the results obtained, it appeared that 2D numerical analysis tends to overestimate the horizontal displacement of retaining wall compared to the 3D numerical analysis. When the excavation depth is deeper than 20m, it is found that 2D and 3D numerical analysis results of excavation work in soil ground condition are more different from the results in rock ground condition. For an accurate 3D numerical analysis, applying 3D mesh which has an excavation width twice longer than excavation depth is recommended. Consequently, 3D numerical analysis may be able to offer significantly better predictions of movement than 2D analysis.