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      • KCI등재

        프레임구조물의 터널시공에 따른 거동분석

        손무락(Son Moorak),박재현(Park Jaehyun) 대한토목학회 2012 대한토목학회논문집 C Vol.32 No.3

        본 논문은 터널건설로 인해 발생된 인접지반에서의 지반변위가 프레임구조물에 미치는 영향을 터널 시공조건(지반손실)을 달리하면서 조사한 것이다. 터널굴착에 의해 발생된 지반변위에 노출된 4층 오픈 프레임구조물과 블록으로 채워진 프레임구조물이 서로 다른 시공조건(지반손실)에 노출될 때 발생되는 구조물 거동을 수치해석을 통해 조사하였다. 오픈 프레임구조물은 탄성구조물로서 모델링 한 반면, 블록으로 채워진 프레임구조물은 소요전단 및 인장강도 이상의 응력이 발생할 때 구조물에 실제크랙이 발생할 수 있도록 모델링하였다. 터널굴착유발 지반변위에 노출된 두 서로 다른 프레임구조물의 거동 및 손상정도를 터널 시공조건에 따라 조사하였으며, 발생된 구조물의 거동 및 손상정도는 구조물에 발생한 변형, 크랙크기 및 분포를 고려하여 서로 비교하였다. 뿐만 아니라, 다양한 시공조건(지반손실)의 변화에 의해 구조물에 유발될 수 있는 손상정도의 크기를 손상도 예측기준(Son and Cording, 2005)을 사용하여 제시하였다. 이러한 결과들은 향후 터널굴착으로 인해 유발되는 인접 프레임구조물의 손상을 제어하고 최소화하는데 필요한 정보를 제공할 것이다. This paper investigates the response of frame structures with the consideration of tunnel construction (ground loss) conditions. The response of four-story open frame structure and block-infilled frame structures, which are subjected to tunnelling-induced ground movements, has been investigated in different construction (ground loss) conditions using numerical analysis. The open frame structure has been modelled as an elastic structure, while the block-infilled frame structure has been modelled to have real cracks when the shear and tensile stress exceed the maximum shear and tensile strength. The response of the two different frame structures has been investigated in terms of construction (ground loss) conditions considering the magnitude of deformations and cracks in structures. In addition, the damage levels, which are possibly induced in the structures, has been provided in terms of construction (ground loss) conditions using the state of strain damage estimation criterion (Son and Cording, 2005). The results of this study will provide a background for better understandings for controlling and minimizing building damage on nearby frame structures due to tunnelling-induced ground movements.

      • KCI등재

        터널시공 및 지반조건을 반영한 인접구조물의 거동분석

        손무락(Son Moorak),윤종철(Yun Jongcheol) 대한토목학회 2010 대한토목학회논문집 C Vol.30 No.6

        본 논문은 터널굴착으로 인해 발생된 인접지반에서의 지반변위가 구조물에 미치는 영향을 시공조건(지반손실) 및 지반의 특성을 달리하면서 지반-구조물 상호작용이 고려된 상태에서 조사한 것이다. 터널굴착에 의해 발생된 지반변위에 노출된 4층 블록식구조물이 서로 다른 시공조건(지반손실) 및 지반조건에 노출될 때 발생되는 구조물 거동이 수치해석을 통해 조사되었다. 수치해석을 위한 구조물은 소요전단 및 인장강도 이상의 응력이 발생할 때 구조물에 실제크랙이 발생될 수 있도록 개별 요소법(DEM)을 이용하여 모델링되었다. 터널굴착유발 지반변위에 노출된 4층 블록식구조물의 거동 및 손상정도가 지반변위의 크기에 따라 조사되었으며, 발생된 구조물의 거동 및 손상정도는 구조물에 발생한 변형, 크랙크기 및 분포를 고려하여 시공조건(지반손실) 및 지반조건별로 비교되었다. 뿐만아니라, 다양한 시공조건(지반손실) 및 지반조건의 변화에 의해 구조물에 유발될 수 있는 손상정도의 크기가 손상도 예측기준(Son and Cording, 2005)을 시용하여 제시되었다. 이러한 결과들은 향후 터널굴착으로 인해 유발되는 인접구조물의 손상을 제어하고 최소화하는데 필요한 정보를 제공할 것이다. This paper investigates the effects of tunnelling-induced ground movements on nearby structures, considering soil-structure interactions of different construction (ground loss) and soil characteristics. The response of four-story block structures, which are subjected to tunnelling-induced ground movements, has been investigated in different construction (ground loss) and soil conditions using numerical analysis. The structures for numerical analysis has been modelled using Discrete Element Method (DEM) to have real cracks when the shear and tensile stress exceed the maximum shear and tensile strength. The response of four-story block structures has been investigated with a ground movement magnitude and compared in terms of construction (ground loss) and soil conditions considering the magnitude of deformations and cracks in structures. In addition, the damage levels, which are possibly induced in structures, has been provided in terms of construction (ground loss) and soil conditions using the state of strain damage estimation criterion (Son and Cording, 2005). The results of this study will provide a back-ground for better understandings for controlling and minimizing building damage on nearby structures due to tunnelling-induced ground movements.

      • KCI등재

        모래 및 점토지반에서 터널시공조건을 고려한 인접구조물의 손상도 분석

        손무락(Son Moorak),윤종철(Yun Jongcheol) 대한토목학회 2011 대한토목학회논문집 C Vol.31 No.1

        본 논문은 터널굴착으로 인해 발생된 인접지반에서의 지반변위가 구조물에 미치는 영향을 지반조건(느슨한 모래, 조밀한 모래, 연약한 점토, 단단한 점토) 및 시공조건(지반손실량)을 달리하면서 지반-구조물 상호작용이 고려된 상태에서 조사한 것이다. 터널굴착에 의해 발생된 지반변위에 노출된 4층 블록식구조물이 서로 다른 지반조건 및 시공조건(지반손실량)에 노출될 때 발생되는 구조물 거동이 수치해석을 통해 조사되었다. 수치해석을 위한 구조물은 소요전단 및 인장강도 이상의 응력이 발생할 때 구조물에 실제크랙이 발생될 수 있도록 개별요소법(DEM)을 이용하여 모델링되었다. 터널굴착유발 지반변위에 노출된 4층 블록식구조물의 거동 및 손상정도가 지반변위의 크기에 따라 조사되었으며, 발생된 구조물의 거동 및 손상정도는 구조물에 발생한 변형, 크랙크기 및 분포를 고려하여 지반조건 및 시공조건(지반손실)별로 비교되었다. 뿐만 아니라, 다양한 지반조건 및 시공조건(지반손실)의 변화에 의해 구조물에 유발될 수 있는 손상정도의 크기가 손상도 예측기준(Son and Cording, 2005)을 사용하여 제시되었다. 이러한 결과들은 향후 터널굴착으로 인해 유발되는 인접구조물의 손상을 제어하고 최소화하는데 필요한 정보를 제공할 것이다. This paper investigates the effects of tunnelling-induced ground movements on nearby structures, considering soil-structure interactions of different ground (loose sand, dense sand, soft clay, stiff clay) and construction conditions (ground loss). The response of four-story block structures, which are subjected to tunnelling-induced ground movements, has been investigated in different ground and construction conditions (ground loss) using numerical analysis. The structures for numerical analysis has been modelled using Discrete Element Method (DEM) to have real cracks when the shear and tensile stress exceed the maximum shear and tensile strength. The response of four-story block structures has been investigated with a ground movement magnitude and compared in terms of ground and construction conditions (ground loss) considering the magnitude of deformations and cracks in structures. In addition, the damage levels, which are possibly induced in structures, has been provided in terms of ground and construction conditions (ground loss) using the state of strain damage estimation criterion (Son and Cording, 2005). The results of this study will provide a background for better understandings for controlling and minimizing building damage on nearby structures due to tunnelling-induced ground movements.

      • KCI등재

        Effect of the Permeability of Excavation Wall on the Earth Pressure in a Jointed Rock Mass

        Son, Moorak,Adedokun, Solomon Korean Geo-Environmental Society 2018 한국지반환경공학회논문집 Vol.19 No.2

        The magnitude and distribution of earth pressure on the excavation wall in jointed rock mass were examined by considering different wall permeability conditions as well as rock types and joint inclination angles. The study was numerically extended based on a physical model test (Son & Park, 2014), considering rock-structure interactions with the discrete element method, which can consider various characteristics of rock joints. This study focused on the effect of the permeability condition of excavation wall on the earth pressure in jointed rock masses under a groundwater condition, which is important but has not been studied previously. The study results showed that the earth pressure was highly influenced by wall permeability as well as rock type and joint condition. Earth pressure resulted from the study was also compared with Peck's earth pressure in soil ground, and the comparison clearly showed that the earth pressure in jointed rock mass can be greatly different from that in soil ground.

      • KCI등재

        Effect of Joint Spacing on the Earth Pressure Against the Support System in a Jointed Rock Mass

        Son, Moorak,Adedokun, Solomon Korean Geo-Environmental Society 2016 한국지반환경공학회논문집 Vol.17 No.1

        This study examined the magnitude and distribution of earth pressure on the support system in a jointed rock mass due to the different joint spacing as well as varying the rock type and joint condition (joint shear strength and joint inclination angle). Based on a physical model test and its numerical simulation, a series of numerical parametric analyses were conducted using a discrete element method. The results showed that the magnitude and distribution of earth pressure were strongly affected by the different joint spacing as well as the rock type and joint condition. In addition, the study results were compared with Peck's earth pressure for soil ground, which indicated that the earth pressure in a jointed rock mass could be considerably different from that in soil ground. The study suggests that the joint spacing as well as the rock type and joint condition are important factors affecting the earth pressure in a jointed rock mass and they should be considered when designing a support system in a jointed rock mass.

      • KCI등재

        Strength Characteristics of Soil Cement Reinforced by Natural Hair Fiber

        Moorak Son,Jaeyong Lee 한국지반환경공학회 2018 한국지반환경공학회논문집 Vol.19 No.4

        This study systematically examines the changes in the compressive and tensile strength of soil cement reinforced by natural hair fiber, which is regularly produced from human. Extensive experimental tests of various test specimens have been carried out in a laboratory. Several factors are considered, including the soil type, amount of cement, amount of fiber, fiber length, loading type, and curing age. The test results indicate that both the compressive and tensile strengths are significantly affected by the fiber, either increasing or decreasing depending on the conditions. The increase in tensile strength is significant in the sand-based soil cement due to the tensile resistance of the fiber which is interlocked with the surrounding soil or cement particles. The natural fiber provides a larger strain to failure due to its extensibility, which allows greater deformation. Based on the test results, natural hair fibers can be an effective and environmentally friendly way to improve soil ground subjected to tensile loading, such as an embankment slope, road subgrade, or landfill, thus reducing the cost for cement and waste treatment. The study results provide a useful information of better understanding the mechanical behavior of natural hair fiber in soil cement and the practical use of waste materials in civil engineering. The findings can be practically applied for improving earth structures under tensile loading.

      • KCI등재

        Effect of the Permeability of Excavation Wall on the Earth Pressure in a Jointed Rock Mass

        Moorak Son,Solomon Adedokun 한국지반환경공학회 2018 한국지반환경공학회논문집 Vol.19 No.2

        The magnitude and distribution of earth pressure on the excavation wall in jointed rock mass were examined by considering different wall permeability conditions as well as rock types and joint inclination angles. The study was numerically extended based on a physical model test (Son & Park, 2014), considering rock-structure interactions with the discrete element method, which can consider various characteristics of rock joints. This study focused on the effect of the permeability condition of excavation wall on the earth pressure in jointed rock masses under a groundwater condition, which is important but has not been studied previously. The study results showed that the earth pressure was highly influenced by wall permeability as well as rock type and joint condition. Earth pressure resulted from the study was also compared with Peck’s earth pressure in soil ground, and the comparison clearly showed that the earth pressure in jointed rock mass can be greatly different from that in soil ground.

      • KCI등재

        Simple Parametric Analysis of the Response of Buried Pipelines to Micro-Tunneling-Induced Ground Settlements

        Moorak Son 한국지반환경공학회 2014 한국지반환경공학회논문집 Vol.15 No.11

        This paper investigates the effects of micro-tunneling on buried pipelines parametrically. A simplified numerical approach was developed and various parametric studies have been conducted to evaluate the effects of ground settlements on the response of buried pipelines. The controlled parameters included the pipe stiffness, ground loss magnitude, and pipe location with respect to a micro-tunnel. Maximum settlement and curvature along a pipeline have been investigated and compared among others for different conditions. In addition, the numerical results have been compared with a theoretical method by Attewell et al. (1986), which is based on a Winkler type linear-elastic solution. The comparison indicated that the response of buried pipes to micro-tunneling-induced ground settlements highly depends on the soil-pipe interaction including the separation and slippage of pipe from soil with the effects of the investigated parameters. Therefore, rather than using the theoretical method directly, it would be a better assessment of the response of buried pipelines to consider the soil-pipe interaction in more realistic conditions.

      • KCI등재

        Effect of the Earth Pressure Coefficient on the Support System in Jointed Rock Mass

        Moorak Son,Solomon Adedokun,Youngcheol Hwang 한국지반환경공학회 2015 한국지반환경공학회논문집 Vol.16 No.2

        This paper investigated the magnitude and distribution of earth pressure on the support system in jointed rock mass by considering different earth pressure coefficients, rock types and joint inclination angles. The study mainly focused on the effect of the earth pressure coefficients on the earth pressure. Based on a physical model test (Son & Park, 2014), extended studies were conducted considering rock-structure interactions based on the discrete element method, which can consider the joints characteristics of rock mass. The results showed that the earth pressure was highly influenced by the earth pressure coefficients as well as the rock type and joint inclination angles. The effects of the earth pressure coefficients increased when the rock suffered more weathering and has no joint slide. The test results were also compared with Peck’s earth pressure for soil ground, and clearly showed that the earth pressure in jointed rock mass can be greatly different from that in soil ground. This study indicated the earth pressure coefficients considering the rock types and joint inclination angles are important parameters influencing the magnitude and distribution of earth pressure, which should be considered when designing the support systems in jointed rock mass.

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