• Title/Summary/Keyword: 지지 모멘트

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Cross-Sectional Compactness for Negative Moment Region of I-girder with High-Performance Steel (고강도강 적용 I-거더 부모멘트부의 조밀단면 기준 평가)

  • Cha, Sang-Ho;Joo, Hyun-Sung;Choi, Hyung-Ho;Lee, Hak-Eun
    • 한국방재학회:학술대회논문집
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    • 2010.02a
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    • pp.84.2-84.2
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    • 2010
  • 본 연구는 소수주거더 교량에 적용된 I-거더에 고강도 강재인 HSB800 강재를 사용하였을 때, 휨 연성 R값을 이용하여 AASHTO LRFD(2007)의 조밀단면기준에 대한 경향성에 대해 수치해석적으로 수행되었다. 복부판 세장비, 플랜지 세장비, 비지지 길이를 변수로 하여 휨 연성 R값을 구해서 기존의 AASHTO LRFD(2007)의 조밀단면기준에 적용하여 휨 연성에 대한 경향성을 나타내었다.

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A Study on Improvement of Formula for Strength of Anchor Guy (보통지선 강도계산식 개선방안 연구)

  • Wong, Yoon-Chan
    • Proceedings of the KIEE Conference
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    • 2007.07a
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    • pp.394-395
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    • 2007
  • 가공배전선로에 시설되는 지선은 지선이 분담해야 하는 하중에 충분히 견디도록 설계 및 시공되어져야 한다. 따라서 본 논문에서는 전선의 불평형장력을 지지하는 보통지선의 기존 강도계산식의 문제점을 분석하였으며, 이를 개선하기 위하여 지선의 종류에 관계없이 공통적으로 적용 가능한 보통지선 강도계산 기본공식과, 양횡지선, 양종지선, 인류지선 및 각도지선의 분담하중 종류에 따라 각각의 굽힘모멘트 계산식을 개발하여 제시하였다.

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선반용 고속주축계의 동특성 해석

  • 조정준;김석일;최대봉
    • Journal of the Korean Society for Precision Engineering
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    • v.11 no.4
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    • pp.5-12
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    • 1994
  • 고속절삭을 통해서 가공능률과 가공정밀도의 향상을 도모할 수 있기 때문에, 최근에는 공작기계용 고속주축계가 많은 주목을 받고 있다. 본 연구에서는 주축 선단부에 무거운 척과 공작물이 위치하는 선반용 고속주축계의 동특성을 해석하기 위해서 유한요소법을 도입하였다. 특히 세장비가 비교적 작은 주축은 Timoshenko 이론으로, 폭이 유한한 베어링은 반경방향 외에도 모멘트방향의 강성 및 감쇠특성을 가지고 있는 것으로 모델화하였다. 그리고 선반용 고속주축계의 고유진동수와 감쇠비에 대한 주축회전수, 베어링의 지지특성, 베어링의 간격, 주축재료의 내부감쇠율 등의 영향을 고찰하였다.

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Effect of Lateral Load-Moment Combination on p-y Curves of Large Diameter Monopile for Offshore Wind Turbine: Centrifuge Model Tests (해상풍력 대구경 모노파일의 p-y 곡선에 대한 수평-모멘트 조합의 영향: 원심모형실험)

  • Lee, Min Jy;Yun, Jong Seok;Choo, Yun Wook
    • Journal of the Korean Geotechnical Society
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    • v.36 no.2
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    • pp.29-42
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    • 2020
  • In this study, centrifuge tests were performed to investigate the effect of the lateral load-moment combination on the p-y curves for 7 m-diameter monopiles installed in sand for offshore wind turbine. For the objectives, a centrifuge testing system was developed and tests were conducted at an acceleration of 68.83 g using well-instrumented model monopiles under two different lateral load-moment combinations simulated by different loading heights: 1 and 5 times monopile diameter from the ground surface. The sand was prepared as medium loose sand. Based on the centrifuge test results, the experimental p-y curves were evaluated and compared with previous literatures including API codes. The experimental results reveal that the p-y curves were little influenced by the combination of lateral load and moment. It was also found that the embedded length affects p-y curves.

A Study on the Evaluation of Design Moments of R/C Slab by the Finite Element Method (유한요소법(有限要素法)을 이용한 철근(鐵筋)콘크리트 슬래브의 설계(設計)모멘트 산정에 관한 소고(小考))

  • Lee, Sung Woo
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.8 no.3
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    • pp.21-29
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    • 1988
  • Evaluation of accurate design moments in two directions is a primary concern in designing R/C Slab. For this purpose, the use of finite element method utilizing isoparametric plate element is proposed. An example of the simply supported slab shows that the results agree well wth those from elastic plate theory throughout the span. The finite element solutions are also compared with those from equivalent frame method in a flat plate example. It is indicated that the distribution of total moment through the width of design strip using the ACI coefficients is unreasonable. In contrary to this, for the same strip model, the finite element method gives accurate moments in two directions. The proposed method can be applied to any geometric configuration of the slab system, thus the approach is considered to be much advantageous and improved one compared with existing methods.

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A Study on Prediction of Moment Developed in Bottom of Foundations between Pile and Heterogeneous Soils (말뚝기초와 이질지반 경계부 기초저판에서의 발생모멘트 예측에 관한 연구)

  • Lim, Hae-Sik;Park, Yong-Boo
    • Land and Housing Review
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    • v.2 no.3
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    • pp.277-285
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    • 2011
  • To reinforce bearing capacity-changed section or different foundation in the same building, empirical or simple tools have been used. To solve this problem, an analytical solution which can evaluate and reinforce the stability of foundation is introduced. To suggest a clue for the problems, current foundation reinforcing method is studied through recent literature studies and the structural analyses of foundation slab are performed on the pile foundation of 49$m^2$, 59$m^2$ and 84$m^2$ I type apartments in 15 story building. The analyses are conducted with SAP 2000, a computer program for ordinary structural analysis. To predict the moments of slab by ground non-uniformity, the structural analysis results for the foundation slab of 3 types 15 story apartment buildings in 49$m^2$, 59$m^2$ and 84$m^2$ I type on non-uniformity ground are shown in the diagrams.

Loads of NREL Phase VI Rotor at Hub in Yawed Conditions (요 상태에서 NREL Phase VI 로터의 허브 중심 하중 예측)

  • Ryu, Ki-Wahn
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.47 no.12
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    • pp.841-847
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    • 2019
  • Time series data of 6-component loads were computed for a horizontal axis wind turbine rotor in yawed operating conditions with both rotating and non-rotating coordinate systems fixed at a center of a rotor hub. In this study, a well-known 20 kW class of the NREL Phase VI rotor was used for a model wind turbine, and this paper focuses on the yaw moments and over-turning moments for the operating wind speed range between 6 to 25 m/s. Unsteady blade element momentum theorem was adopted to get the aerodynamic loads acting on the wind turbine rotor. Computed 6-component loads using the developed UBEM code were compared with those using the NREL FAST program. From the computed results, both yaw and over-turning moments would be basic inputs to determine not only the specification of yawing mechanism but also the design condition of foundation.

Numerical Analyses on Moment Resisting Behaviors of Electric Pole Foundations According to Their Shapes (기초형상에 따른 전철주기초 모멘트 저항거동에 관한 수치해석 연구)

  • Lee, Su-Hyung
    • Journal of the Korean Geotechnical Society
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    • v.29 no.11
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    • pp.85-97
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    • 2013
  • Electric pole foundations for overhead catenary system of railroad should be designed so that they may resist significant overturning moment but relatively small vertical forces. Also they should have proper shapes to be installed at restricted narrow areas adjacent to railroad track. In this paper the moment responses of rectangular pole foundations according to their shapes were investigated numerically. A three-dimensional finite element method was developed and verified so that the numerical behaviors of the foundation resisting the overturning moments were compared reasonably well with those from an existing real-scale load test. The influences of aspect ratio, varying section with depth and loading directions for rectangular section were investigated using the developed numerical method. From the numerical results, the optimized shapes of pole foundation for more effective and economic installation adjacent to railroad track are proposed.

Torsional moment of orthodontic wires (교정용 와이어의 비틀림 모멘트)

  • Choy, Kwangchul;Kim, Kyung-Ho;Park, Young-Chel;Kang, Chang-Soo
    • The korean journal of orthodontics
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    • v.30 no.4 s.81
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    • pp.467-473
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    • 2000
  • As a rectangular wire Is inserted into edgewise brackets the wire exerts a force system three-dimensionally. The force system may include bending force in first and second orders and a torsional force in third order Analytical and experimental studies on bending force have been Introduced, but information about torsion is still lack. The purpose of this study was to estimate the torsional moment in the force system of rectangular arch wires through theoretical and experimental studies. Wires most frequently used for third order control were selected as study materials. Cross sections of 0.016x0.022, 0.017x0.025, 0.019x0.025 inch rectangular wires in foot different materials such as stainless steel(Ormco), TMA(Ormco), NiTi(Ormco), and braided stainless steel (DentaFlex, Dentaurum) were used. The torque/twist rate of each test material was calculated using the torsion formula. Torque/twist rate, yield torsional moment, and ultimate torsional moment were measured with a torque gauge. The torsion formula assesses that the torque/twist rate (T/$\theta$) is proportional to the characteristics of material (G) and cross section (J), and is inversely proportional to the length of wire (L). Most experimental results corresponded with the formula. The relative stiffness was calculated for reference to a logical sequence of wire changes.

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RC Wall under Axial Force and Biaxial Bending Moments (축력과 면내 및 면외 휨모멘트를 받는 철근콘크리트 벽체)

  • 박홍근
    • Magazine of the Korea Concrete Institute
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    • v.10 no.4
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    • pp.113-124
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    • 1998
  • Numerical study using nonlinear finite element analysis is done for investigating behavior of isolated reinforced concrete walls subject to combined in-plane and out-of-plane bending moments and axial force. A method for estimating the ultimate strength of wall is developed, based on the analytical results. For the nonlinear finite element analysis, a computer program addressing material and geometric nonlinearities is developed. An existing unified method combining plasticity theory and damage model is used for material model of reinforced concrete. By numerical studies, the internal force distribution in the cross section is idealized, and a new method for estimating the ultimate strength of wall is developed. According to the proposed method, variation of the interaction curve of in-plane bending moment and axial force depends on the range of the permissible axial force per unit length that is determined by the given amount of out-of-plane bending moment. As the out-of-plane bending moment increases, the interaction curve shrinks, which indicates a decrease in the ultimate strength. The proposed method is compared with an existing method using the general assumption that strain shall be directly proportional to the distance from the neutral axis. Compared with the proposed method, the existing method overestimates the ultimate strength for walls subject to low out-of-plane bending moments, and it underestimates the ultimate strength for walls subject to high out-of-plane bending moments.