• 제목/요약/키워드: Vertical Stress

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고결모래의 콘선단저항과 미소변형전단탄성계수 관계 (Relationship between Cone Tip Resistance and Small-Strain Shear Modulus of Cemented Sand)

  • 이문주;이우진;김재정;최영민
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.331-340
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    • 2009
  • This study evaluates the relationship between cone tip resistance ($q_c$) and small-strain shear modulus ($G_{max}$) of cemented sand. For this purpose, a series of miniature cone penetration and bender element tests are performed in calibration chamber specimens with various gypsum contents. Experimental results show that both $q_c$ and $G_{max}$ of sand increase with increasing cementation level as well as relative density and vertical confining stress. However, the relative density and vertical confining stress has more significant influence on $G_{max}$ and $q_c$ of uncemented sand than those of cemented sand. It is observed that the $G_{max}/q_c$ ratio of cemented sand decreases with increasing relative density. This result means that state variables have more affect on $q_c$ than $G_{max}$ of cemented sand. Test results also show that the effect of vertical stress on $G_{max}-q_c$ relation is reduced by cementation effect.

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임프란트와 지대주 간 내측 연결을 갖는 2종의 임프란트에서 저작압이 임프란트 주위골 내응력 분포에 미치는 영향에 관한 연구 (Study on the stress distribution around two types of implants with an internal connection by finite element analysis)

  • 유미경;임성빈;정진형;홍기석
    • Journal of Periodontal and Implant Science
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    • 제36권2호
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    • pp.473-488
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    • 2006
  • Adequate bone quality and stress distribution to the bone are of decisive importance for implant success. Even though the success rates of dental implants have been high, implant failures do occur. Overloading has been identified as a primary factor behind dental implant failure. The purpose of this study was to theoretically investigate the effect of two types of implants on the stress distribution in poor bone quality. Employing the finite element method, the study modeled a 4.1 mm diameter, 12.0 mm length implant placed in cortical or spongeous bone. A static loading of lOON was applied at the occlusal surface at 0, 30 degrees angle to the vertical axis of the implant. von Mises stresses concentrations in the supporting bone were analyzed with finite element analysis program. The results were as follows; 1. The stresses at the marginal bone were higher under buccal oblique load(30 degrees off of the long axis) than under vertical load. 2. Under buccal oblique load, the stresses were higher at the lingual marginal bone than at the buccal marginal bone, and the differences were almost the same. 3, Under vertical and oblique load, the stress was the highest at the marginal bone and lowest at the bone around apical portions of implant in cortical bone. 4, Under vertical load, Model 1 showed more effective stress distribution than Model 2 irrespective of bone types. On the other hand, Model 2 showed lower stress concentration than Model 1 under buccal oblique load.

Computation of a Turbulent Natural Convection in a Rectangular Cavity with the Low-Reynolds-Number Differential Stress and Flux Model

  • Choi, Seok-Ki;Kim, Eui-Kwang;Wi, Myung-Hwan;Kim, Seong-O
    • Journal of Mechanical Science and Technology
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    • 제18권10호
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    • pp.1782-1798
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    • 2004
  • A numerical study of a natural convection in a rectangular cavity with the low-Reynolds-number differential stress and flux model is presented. The primary emphasis of the study is placed on the investigation of the accuracy and numerical stability of the low-Reynolds-number differential stress and flux model for a natural convection problem. The turbulence model considered in the study is that developed by Peeters and Henkes (1992) and further refined by Dol and Hanjalic (2001), and this model is applied to the prediction of a natural convection in a rectangular cavity together with the two-layer model, the shear stress transport model and the time-scale bound ν$^2$- f model, all with an algebraic heat flux model. The computed results are compared with the experimental data commonly used for the validation of the turbulence models. It is shown that the low-Reynolds-number differential stress and flux model predicts well the mean velocity and temperature, the vertical velocity fluctuation, the Reynolds shear stress, the horizontal turbulent heat flux, the local Nusselt number and the wall shear stress, but slightly under-predicts the vertical turbulent heat flux. The performance of the ν$^2$- f model is comparable to that of the low-Reynolds-number differential stress and flux model except for the over-prediction of the horizontal turbulent heat flux. The two-layer model predicts poorly the mean vertical velocity component and under-predicts the wall shear stress and the local Nusselt number. The shear stress transport model predicts well the mean velocity, but the general performance of the shear stress transport model is nearly the same as that of the two-layer model, under-predicting the local Nusselt number and the turbulent quantities.

반복단순전단 시험에 의한 패각질 모래의 액상화 강도 (Liquefaction Strength of Shelly Sand in Cyclic Simple Shear Test)

  • 윤여원;윤길림;최재권
    • 한국지반환경공학회 논문집
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    • 제8권6호
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    • pp.69-76
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    • 2007
  • 해안 연약지반 개량공사에 사용되는 모래는 대부분 다소간의 패각을 함유하게 된다. 본 연구에서는 패각 함유량이 패각질모래의 액상화 저항에 미치는 영향을 연구하기 위하여 중량비에 의해 0%, 5%, 10%, 20%, 30%의 패각을 함유한 모래의 입도를 조성하고 건조퇴적 방법으로 상대밀도가 40%와 55%인 공시체를 성형하여 50kPa, 100kPa, 150kPa의 압밀유효연직응력으로 NGI형 직접단순전단시험기를 이용해서 반복단순전단시험을 수행하였다. 연구 결과, 압밀유효연직응력이 낮을 경우에는 상대밀도가 40%, 55% 모두 패각 함유량이 많아질수록 액상화강도가 크게 증가하는 경향을 보였다. 그러나 압밀유효연직응력이 높을 경우에는 상대 밀도가 40%일 경우 약간 증가하는 경향을 얻었으나 상대밀도가 55%일 경우에는 거의 일정한 값으로 수렴하는 결과를 얻었다. 그리고 상대밀도에 관계없이 압밀유효연직응력이 증가하면 액상화 저항이 감소하는 경향을 보였다. 또한 같은 압밀유효연직응력과 패각함유량에서 상대밀도가 높아질수록 액상화강도가 증가하는 것으로 나타났다.

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피로하중을 받는 테이블 라이너의 파손응력예측에 관한 연구 (A Study on the Prediction of Failure Stress for Table Liner under Fatigue Load)

  • 이동우;주원식
    • 한국정밀공학회지
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    • 제21권8호
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    • pp.97-105
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    • 2004
  • The vertical roller mill is the important machine grinding and mixing various crude materials in the manufacturing process of portland cement. Table liner is one of grinding elements of vertical roller mill and is subjected to the cyclic bending stress by rollers and the centrifugal force by rotation of table. It demands $4{\times}10^7$ expense of life but has $4{\times}10^6~-8{\times}10^6$ cycle. It fractures at the edge of grinding path of outside roller The repair expense fur it amounts to 30% of total maintenance of vertical roller mill. Therefore, this study shows the fracture mechanism of table liner of vertical roller mill using HDM and fatigue analysis

유한요소분석법을 이용한 치근형 임플랜트의 응력분포에 관한 연구 (A STUDY ON THE STRESS ANALYSIS OF THREE ROOT-FORM IMPLANTS WITH FNITE ELEMENT ANALYSIS)

  • 문병화;양재호
    • 대한치과보철학회지
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    • 제31권1호
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    • pp.129-150
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    • 1993
  • Since the restoration or masticatory function is the most important aim of implants, it should be substituted for the role of natural teeth and deliver the stress to the bone under the continous load during function. In natural teeth, stress distribution can be obtained through enamel, dentin and cementum and the elasticity of the periodontal ligament play a role of buffering action. In contrast, implant prosthesis has a very unique characteristics that it delvers the load directly to bone through the implant and superstructure. This fact arise the needs to evaluate the stress distribution of the implant in the mechnical aspects, which has a similar role of natural teeth but different pathway of stress. With 3 kinds of implant in prevalent use, 2 types of experimental PEA implant models were made, axisymmetric and 2-dimensional type. In axisymmetric model, the stiffness of the part including the prosthesis and implant which extrude out of bony surface could be calculated with displacement of the superstructure un er 100N vertical load and then damping effects could be determined through this stiffness. In axisymmetric FEA model, load to the bone could be deduced by evaluation the stress distribution of the designed surface under the 100N vertical force and in 2-dimensional model, 100N eccentric vertical load and 20N horizontal loda. The result are as follows. 1. In every implant, stress to the bone tends to be concenturated on the cortical bone. 2. Though the stress of the cancellous bone is larger at the apex of implants, it is less compared with cortical bone. 3. Under 20N horizontal load, stress of the left and right sides of implant shows a symmetrical pattern. But under 100N eccentric vertical load, loaded side shows much larger stress value. 4. In the 1mm interface, stress distribution among implants tend to have a similar pattern. But under 20N horizontal load apposite side of being loaded shows less stress in IMZ. 5. In the case of screw type implant, stress tends to vary along with screw shape. 6. According to the result determined with microstrain, cancellous bone id generally under the condition of overload, while cortical bone is usually within the limitation of physiologic load. 7. In the Branemark implant, maximum stress to the cortical bone is larger than any other implant except for the condition of 20N horizontal force and 0.05mm interface. 8. Damping effects of implants is maximum in IMZ.

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임프란트를 이용한 고정성 계속가공의치의 FRAMEWORK 형태에 관한 연구 (A SUTDY ABOUT THE SHAPE OF THE FRAMEWORK OF THE FIXED BONE ANCHORED BRIDGE USING DENIAL IMPLANTS)

  • 김태균;이영수;유광희
    • 대한치과보철학회지
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    • 제36권1호
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    • pp.104-119
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    • 1998
  • The purpose of this study was pertinent design of the framework of the fixed bone anchored bridge using implants in the edentulous mandible through analysis of stress distribution by the three dimensional finite element analysis method. The results were as follows: 1. The L-shaped framework was favorable in restoring the edentulous mandible by implants and fixed bone anchored bridge. 2. The structure of the framework should be designed to endure the occlusal load because of stress concentration at the most distal abutment of the framework. 3. The stress at the distal implant where cantilever starts was twice as much as that of other portions. 4. Compressive stress was generated on the framework of the mesial side of the distal implant and extrusive force was induced to the mesially positioned implants. 5. The height of vertical plate was high as possible as can be to distribute stresses concentrating bucco-lingually and labio-lingually in the framework between abutments, 6. Reinforcement of the horizontal plate thickness was needed because stress was loaded more on the horizontal plate than on the vertical plate of the framework. 7. Lengthening of the vertical plate can compensate for any limitations in horizontal plate width.

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추가성토에 의한 성토체 하부에서의 연직응력 산정 (Estimation of Vertical Stress Developed in Subsurface due to Additional Embankment)

  • 이승현;한진태
    • 한국산학기술학회논문지
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    • 제12권5호
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    • pp.2410-2415
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    • 2011
  • 매년 증가하는 교통량과 물동량으로 인해 기존 도로의 성토폭을 넓혀야 하는 경우가 빈번하게 발생한다. 본 연구에서는 추가 성토로 인해 기존 성토체 하부지반에 전달되는 연직응력 산정식을 유도하고자 하였다. 유도과정을 통해 평면변형률 지반조건에 대한 이론적 배경을 검토하여 보았다. 해석에서 고려한 응력함수는 적합조건 및 경계조건을 만족함을 알 수 있었다. 유도된 연직응력 산정식을 적용함에 있어 주의점을 살펴보았고 계산예를 통해 산정식의 신뢰성을 확인하였다.

고결모래의 콘선단저항에 대한 영향요인 분석 (Analysis of Influencing Factors on the cone resistance in Cemented Sand)

  • 이문주;최성근;조용순;이우진;김태준
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2008년도 춘계 학술발표회 초청강연 및 논문집
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    • pp.628-635
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    • 2008
  • A series of cone penetration tests in large calibration chamber were performed to investigate the effect of cementation level, relative density and vertical confining stress on cone resistance. From the experimental results, it was observed that the cone resistance is increased with increasing gypsum content, relative density, and confining stress. The increasing ratio on cone resistance of cemented sand compared with that of uncemented sand, that is IR($q_c$), was increased with increasing gypsum content and relative density, whereas it was decreased as the vertical confining stress increases. It was also observed that the cementation of granular soil influences the behavior of ground at low level of confining stress and its effect is diminished with depth.

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지하공간 굴착에 따른 수직파이프 구조물의 안정성해석 (Stability Analysis of Vertical Pipeline Subjected to Underground Excavation)

  • 김종우
    • 터널과지하공간
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    • 제10권4호
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    • pp.533-543
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    • 2000
  • 본 연구에서는 지하공간의 굴착에 따른 수직파이프 구조물의 변형거동 및 안정성을 수치해석적으로 검토하였다. 지반의 수직거동은 파이프의 압축변형 및 압축응력을 발생시키며, 수평거동은 파이프의 굴곡변형 및 쉽응력을 발생시킨다. 또한, 지반의 수평응력은 파이프를 압착시켜 접선응력을 발생시킨다. 본 연구의 해석대상 구조물은 지하 천연가스의 생산정으로 서, 인접 지반의 굴착이 파이프에 미치는 영향과 최대 영향 요소를 고찰하였다. 이를 위해 보안탄주의 폭과 가스생산정의 위치가 서로 다른 세 가지 사례를 해석하고 비교하였다. 두께 2.5m인 탄층이 심도 237.5m에 위치할 때 45.8m 폭의 보안탄주는 외경 10$\frac{3}{4}$ in., 두께 0.4 in.인 API-55 강철 파이프 구조물을 안전하게 보호할 수 있다. 또한, 실제로 파괴가 발생한 가스생산정을 검토한 결과, 발생된 전단음력이 강철 재료의 허용음력을 초과하였다.

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