• 제목/요약/키워드: Axisymmetric Deformation

검색결과 142건 처리시간 0.023초

중공소재에 의한 스퍼어기어의 냉간단조에 관한 연구 (A Sudy on the Cold Forging of Spur Gears form Hollow Cylindrical Billets)

  • 최재찬;김창호;허관도;최영
    • 한국정밀공학회지
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    • 제12권8호
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    • pp.63-72
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    • 1995
  • Closed-die forging of spur gears with hollow cylindrical billet has been analysed by using the upper-bound method. A kinematically admissible velocity field has been developed, wherein, an involute curve has been introduced to represent the forging die profile. In the analysis, the deformation region has been divided into nine zones. A constant frictional stress has been assumed on the contacting surfaces. Utilizing the formulated velocity field, numerical calculations have been carried out to investigate the effects of various parameters, such as module, number of teeth and friction factor, on the forging of spur gears. Hardness and accuracy of forged gears are measured. The following results have been obtained: (1) It is verified that an axisymmetric deformation zone exists between root circle and center of gear through forged gears. (2) The average relative forging pressure is predominantly dependent on the number of teeth and increases near the final filling stage as the addendum modification coefficient increases. (3) Close agreement was found between the predicted values of forging load and those obtained from experimental results.

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축대칭 변형체의 마찰 접촉문제에 관한 유한요소 해석 (Finite Element Analysis for Frictional Contact Problems of Axisymmetric Deforming Bodies)

  • 장동환;조승한;황병복
    • 소성∙가공
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    • 제12권1호
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    • pp.26-33
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    • 2003
  • This paper is concerned with the numerical analysis of frictional contact problems in axisymmetric bodies using the rigid-plastic finite element method. A contact finite element method, based on a penalty function, are derived from variational formulations. The contact boundary condition between two deformable bodies is prescribed by the proposed algorithm. The program which can handle frictional contact problem is developed by using pre-existing rigid-plastic finite element code. Some examples used in this paper illustrate the effectiveness of the proposed formulations and algorithms. Efforts focus on the deformation patterns, contact force, and velocity gradient through the various simulations.

플래시 없는 비축대칭 단조에 관한 연구 (A Study on Flashless Non-Axisymmetric Forging)

  • 배원병;김영호;최재찬;이종헌;김동영
    • 한국정밀공학회지
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    • 제12권3호
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    • pp.42-52
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    • 1995
  • An UBET(Upper Bound Elemental Techniquel) program has been developed to analyze forging load, die-cavity filling and effective strain distribution for flashless non-axisymmetric forging. To analyze the process easily, it is suggested that the deforma- tion is divided into two different parts. Those are axisymmetric part in corner and plane- strain part in lateral. The total power consumption is minimized through combination of two deformation parts by building block method, form which the upper-bound forging load, the flow pattern, the grid pattern, the velocity distribution and the effective strain are deter- mined. To show the merit of flashless forging, the results of flashless and flash-forging processes are compared through theory and experiment. Experiments have been carried out with plasticine billets at room temperature. The theoretical predictions of the forging load and the flow pattern are in good agrement with the experimental results.

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Deformation of multiple non-Newtonian drops in the entrance region

  • Kim, See-Jo;Kim, Sang-Dae;Youngdon Kwon
    • Korea-Australia Rheology Journal
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    • 제15권2호
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    • pp.75-82
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    • 2003
  • In this study, with the finite element method we numerically investigate the deformation of liquid drops surrounded by Newtonian or non-Newtonian viscous medium in the axisymmetric contraction flow. 1, 2 or 4 Newtonian or non-Newtonian drops are considered and the truncated power-law model is applied In order to describe non-Newtonian viscous behavior for both fluids. In this type of flow the drop exhibits considerably large deformation, and thus techniques of unstructured mesh generation and auto-remeshing are employed to accurately express the fluid mechanical behavior. We examine the deformation pattern of liquid drops with viscosity dependence different from that of the surrounding medium and also explain their interactions by comparing relative position or speed of drop front.

줄-톰슨 마이크로 냉각기용 소형 금속 벨로우즈의 구조적 특성에 관한 연구 (A Study on the Structural Characteristics of Miniature Metal Bellows in Joule-Thomson Micro-Cryocooler)

  • 이승하;이태원
    • 한국정밀공학회지
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    • 제25권9호
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    • pp.95-102
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    • 2008
  • A miniature metal bellows is used to minimize the excessive flow of the cryogenic gas in Joule-Thomson micro cryocooler. It is made of metal alloy and its geometry is axisymmetric. The bellows is filled with high pressure gas. It contracts or expands in the axial direction for a wide change of temperature, because the pressure and volume inside the bellows must be satisfied with state equation of the gas. Therefore, in order to design the bellows in Joule-Thomson micro-cryocooler, it is important to evaluate deformation of the bellows under internal pressure exactly. Considering geometric nonlinearity, deformations analysis of the bellows were obtained by a commercial finite element code ANSYS, The bellows was modeled by 3-node axisymmetric shell elements with reduced integration. Experiments were also performed to prove the validity of proposed numerical analysis. The results by numerical analysis and experiments were shown in good agreements.

평금형을 이용한 축대칭 열간 압출의 유한요소해석 (Finite Element Analysis of Axisymmetric Hot Extrusion Through Square Dies)

  • 강연식;박치용;양동열
    • 대한기계학회논문집
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    • 제16권2호
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    • pp.207-225
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    • 1992
  • The study is concerned with the thermo-viscoplastic finite element analysis of axisymmetric forward hot extrusion through square dies. The problem is treated as a nonsteady state problem because the distribution of temperature and material properties are continuously changing with the punch travel. In square die extrusion, difficulties arise from the severe distortion and die interference of elements at the aperture rim of the die even with a small punch travel. And finite element computation is impossible without intermittent remeshing. Accordingly, an automatic remeshing technique is proposed by employing specially designed mesh structure near the aperture rim. The analysis of temperature distribution includes heat conduction through material interfaces, heat convection and radiation to the atmosphere and is carried out by decoupling the heat analysis from the analysis of the deformation. The extrusion load and the distributions of strain rate and temperature are computed for the given cases rendering reasonable results. Computed grid distortions are found to be in good agreement with the experimental results. It has been thus shown that the proposed method of analysis can be effectively applied to the axisymmetric hot extrusion through square dies.

강소성 유한요소법 을 이용한 축대칭 전방 압출 해석 (Rigid-Plastic Finite Element Analysis of Axisymmetric Forward Extrusion)

  • 양동열;오병수;이중홍
    • 대한기계학회논문집
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    • 제9권4호
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    • pp.452-462
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    • 1985
  • 본 논문에서는 금형의 형상과 단면 감소율등이 이에 미치는 영향을 조사하였 다. 이론과의 비교를 위해서 풀림처리된 특수강 소재인 SCM4로 실험을 행하였다. 압출하중은 로드셀(loadcell)로 측정하였으며 수치계산에서 구해진 속도장과 실제속도 장의 차이를 살펴보기 위해서 시편단면에 포토에칭(photoetching)한 압출시킬 시편의 그리드변형을 강소성유한요소법으로 계산한 그리드패턴과 비교 검토하였다.

결정립 성장을 고려한 초소성 성형공정의 유한요소해석(I) (Finite Element Analysis of Superplastic Forming Processes Considering Grain Growth (I))

  • 김용관;송재선;김용환
    • 소성∙가공
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    • 제21권3호
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    • pp.151-159
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    • 2012
  • Finite element simulations were conducted to investigate the influence of grain growth in the superplastic blow forming process. A microstructure-based constitutive model considering grain growth effects is proposed and used in the simulations. Also, a grain growth rate equation accounting for both static and dynamic grain growth is implemented. The simulations were made using a 2D plane-strain model for constrained blow forming and an axisymmetric model for free bulging. These two models showed different features during the forming stages. However, the forming pressure-time curve and the thickness distribution obtained by both simulations explained well the deformation hardening induced by the grain growth during superplastic forming. This study shows that grain growth is an important factor in determining the material behavior during superplastic deformation.

굴곡의 표면을 가진 금속의 레이저 용융에 대한 열 및 유체유동 해석 (An Analysis of Heat and Fluid Flow in the Laser Surface Melting with a Deformed Surface.)

  • 김영득;심복철;김우승
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2003년도 추계학술대회
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    • pp.139-144
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    • 2003
  • Laser melting problems with deformed substrates are investigated by axisymmetric numerical simulations. Source-based method is used to solve the energy equation, and the momentum equations are solved in the liquid domain with SIMPLER algorithm. Using a laser beam with a top-hat heat flux distribution, this study is performed to examine the effect of surface deformation, beam power density and surface tension force on the melt pool during laser melting. Surface temperature decreases with increasing surface deformation, while surface velocity increases. It is found that surface deformation, beam power density and surface tension force have a very significant effect on heat transfer and fluid flow during laser melting.

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굴곡의 표면을 가진 금속의 레이저 용융에 대한 열 및 유체유동 해석 (An Analysis of Heat and Fluid Flow in the Laser Surface Melting with a Deformed Surface)

  • 김영득;심복철;김우승
    • 대한기계학회논문집B
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    • 제29권1호
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    • pp.1-8
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    • 2005
  • Laser melting problems with deformed substrates are investigated by axisymmetric numerical simulations. Source-based method is used to solve the energy equation, and the momentum equations are solved in the liquid domain with SIMPLER algorithm. Using a laser beam with a top-hat heat flux distribution, this study is performed to examine the effect of surface deformation, beam power density and surface tension force on the molten pool during laser melting. Surface temperature decreases with increasing surface deformation, while surface velocity increases. It is found that surface deformation, beam power density and surface tension force have a very significant effect on heat transfer and fluid flow during laser melting.