• Title/Summary/Keyword: 구조 마찰

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Bending Behavior of the Mooring Chain Links Subjected to High Tensile Forces (강한 인장 상태에서의 계류 체인 링크의 휨 거동)

  • Kim, Seungjun;Won, Deok-Hee
    • Journal of Korean Society of Steel Construction
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    • v.29 no.2
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    • pp.99-110
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    • 2017
  • This paper presents the study of the bending behavior of mooring chain links for keeping the position of the offshore floating structures. In general, chain links have been thought as the axial members due to the fundamental boundary condition. But, the flexural stiffness can be induced to the contact surface between chain links when friction occurs at the surface of the chain links due to high tensile force. Especially, the mooring chains for offshore floating platforms are highly tensioned. If the floater suffers rotational motion and the mooring chain links are highly tensioned, the rotation between contact links, induced by the floater rotation, generates the bending moment and relevant stresses due to the unexpected bending stiffness. In 2005, the mooring chain links for the Girassol Buoy Platform were failed after just 5 months after facility installation, and the accident investigation research concluded the chain failure was mainly caused by the fatigue due to the unexpected bending stress fluctuation. This study investigates the pattern of the induced bending stiffness and stresses of the highly tensioned chain links by nonlinear finite element analysis.

A Preliminary Study on Developing a Trafficability Index of Vehicles in Wintertime (동절기 차량의 등판가능성 지표 구축 방안)

  • Chung, Younshik;Shin, Kangwon
    • KSCE Journal of Civil and Environmental Engineering Research
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    • v.33 no.4
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    • pp.1611-1617
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    • 2013
  • Information about trafficability or the condition of road with regard to its being traveled over by vehicles is one of the most critical factors for roadway operation in winter. Specifically, when traveling on snowy or icy surfaces, the traction force varies per vehicle type including tire types, geometric characteristics of roads, and conditions of road surfaces. In general, front-wheel drive or four-wheel drive vehicles have better traction performance on snowy or icy surface than rear-wheel drive vehicles, and the latter type vehicle causes more serious traffic congestion when there is unexpected snowfall. Thus, traffic information regarding trafficability with respect to vehicle types, geometric characteristics of roadway sections, and roadway surface conditions can provide a foundation to make a decision whether to use the associated roadway sections for roadway operators as well as users. Based on the preceding premise, the objective of this study is to present a methodology for developing a trafficability index with respect to vehicle types, geometric characteristics of roadway sections, and roadway surface conditions.

Solid State Joining of Iron and Steels (철강재료의 고상접합기술)

  • 김영섭;권영각;장래웅
    • Journal of Welding and Joining
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    • v.10 no.2
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    • pp.1-10
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    • 1992
  • 저탄소강은 일반적으로 용접성이 우수하지만 완전한 접합 강도와 용접부에서의 결함을 방지하기 위해서는 많은 주위가 필요하다. 용접부의 기계적 성질은 그 미세구조에 따라 좌우되는데, 이 구조는 모재의 화학조성, 용접 조건 그리고 후열처리에 의하여 결정이 된다. 이와 같이 용융용 접에 의한 저탄소강의 접합부는 저탄소함량으로 응고 균열에 대한 저항이 높다. 그러나 탄소의 함량이 증가하므로서 용접성은 저하하여, 0.3% 이상에서 용접부는 과열, 과냉, 저온 균열과 porosity에 취약하게 된다. 구조용강애 있어서는 용접성에 대한 일반적인 기준이 없으므로 이 러한 재료는 모재와 용접부의 기계적 성질, 고온 및 저온 균열성, 열간 및 냉각가공성등을 고려 하게 된다. 그러나 가장 중요한 것은 용접부의 신뢰도이다. 탄소강과 저합금강에 있어서 용접은 높은 강도를 얻을 수 있어야 하며 접합부에서 모재의 원래의 특성을 유지하여야 하고 결함이 없어야 할 것이다. 이와 같은 결함은 모재의 융접 이하에서 접합을 실시하는 고상접합으로 충 분히 억제할 수가 있다. 고상접합에서는 근본적인 미세조직의 결정화도 피할 수 있으며 고온균 일과 같은 결함의 위험도 배제할 수 있다. 고상접합은 용융용접과는 달리 모재를 용융시키지 않고 고체상태에서 접합을 하는데, 신금속 및 신소재의 개발과 첨단산업의 발달로 고상접합 기 술이 크게 각광을 받고 발전하게 되었다. 이와 같은 접합기술의 발전으로 기존의 용접으로는 접합이 불가한 소재, 용접기술의 적용이 곤란한 복잡한 형상, 복합기능 소재, 고품질 및 고정밀 성이 요구되는 소재등이 접합이 가능하게 되었다. 이러한 접합기술로는 brazing, 확산접합, 마찰 용접 등이 주로 많이 이용되고 있다. Brazing은 융점이 낮은 filler metal이 모재의 사이에서 용 융상태로 유입되어 냉각되면서 접합되는 방식이고 확산접합은 모재의 접합계면에서 원자의 상호 확산으로 접합을 하게 된다. 한편 마찰용접은 계면에서 회전에 의한 마찰열고 접합하는 방식 이다. 본 기술해설에서는 이러한 고상접합 기술을 이용한 철강재료의 접합에 대하여 고찰하도록 하겠다.

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Flexural Behavior of Steel Composite Beam with Built-up Cross-section Considering Bolt Deformation (볼트의 변형을 고려한 강재 조립 합성보의 휨거동)

  • Kim, Sung-Bo;Kim, Hun-Kyom;Jung, Kyoung-Hwan;Han, Man-Yop;Kim, Moon-Young
    • Journal of the Computational Structural Engineering Institute of Korea
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    • v.21 no.1
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    • pp.43-50
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    • 2008
  • The analysis and results of flexural behavior for steel composite beam with built-up cross-section considering bolt deformation are presented in this paper. The bolt deformation and the restrict effect due to bolt-connection and friction are considered to investigate the flexural behavior of steel composite beam. Nonlinear spring element in ABAQUS is used to consider bolt deformation, also the results are compared with those in case bolt deformations are ignored. The displacement, bending stresses and shear stresses are calculated by F.E. model, and these results are compared with the analytical value of no interaction beam, partial interaction beam and full interaction beam. As a result of analysis, the behavior of composite beam is more dependant on the composite rate than the friction of the steel. When the composite rate is more than 50%, the behavior of composite beam considering the effects of bolt deformation is similar to that of fully composite beam.

The Seismic Behavior of the Truss-Arch Structure with Seismic Isolation (면진 트러스-아치 구조물의 지진거동 분석)

  • Kim, Gee-Cheol;Kim, Kwang-Il;Kang, Joo-Won
    • Journal of Korean Association for Spatial Structures
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    • v.8 no.2
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    • pp.73-84
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    • 2008
  • The various systems as the seismic resistance systems are used to reduce the seismic response of structure. And the seismic isolation system among them is the system that reduces the seismic vibration to be transmitted from foundation to upper structure. The purpose of isolation system is to lengthen the period of structure and make its period shift from the dominant period of earthquake. In this study, the seismic behavior of arch structure with lead rubber bearing(LRB) and friction pendulum system(FPS) is analyzed. The arch structure is the simplest structure and has the basic dynamic characteristics among large spatial structures. Also, Large spatial structures have large vertical response by horizontal seismic vibration, unlike seismic behavior of normal rahmen structures. When horizontal seismic load is applied to the large spatial structure with isolation systems, the horizontal acceleration response of the large spatial structure is reduced and the vertical seismic response is remarkably reduced.

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An Evaluation on Thermal-Structural Behavior of Nozzle Assembly during Burning Time (연소시간 중 노즐조립체의 열-구조적 거동분석에 관한 연구)

  • Ro, Younghee;Seo, Sanggyu;Jeong, Seongmin
    • Proceedings of the Korean Society of Propulsion Engineers Conference
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    • 2017.05a
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    • pp.536-542
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    • 2017
  • A great deal of difficulty is encountered in the thermo-mechanical analyses of nozzle assembly for solid propellant rocket motors. The main issue in this paper is the modeling of the boundary conditions and the connections between the various components-gaps, relative movements of the components, contacts, friction, etc. This paper evaluated the complex phenomena of nozzle assembly during burning time with co-simulation which include fluid, thermal surface reaction/ablation and structural analysis. The validity of this approach was verified by comparison of analysis results with measured strains.

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An Evaluation on Thermal-structural Behavior of Nozzle Assembly during Burning Time (연소시간 중 노즐조립체의 열-구조적 거동분석에 관한 연구)

  • Ro, Younghee;Seo, Sangkyu;Jeong, Seongmin
    • Journal of the Korean Society of Propulsion Engineers
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    • v.22 no.4
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    • pp.36-43
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    • 2018
  • A great deal of difficulty is encountered in the thermo-mechanical analyses of nozzle assemblies for solid propellant rocket motors. The main issue in this paper is the modeling of the boundary conditions and the connections between the various components-gaps, relative movements of the components, contacts, friction, etc. This paper evaluates the complex phenomena of nozzle assemblies during burning time with co-simulations that include fluid, thermal surface reaction/ablation, and structural analysis. The validity of this approach is verified via comparison of analysis results with measured strains.