• 제목/요약/키워드: Optimum Die

검색결과 217건 처리시간 0.021초

부틸고무의 압출을 위한 압출해석 및 다이설계 (Computer Simulation of Extrusion and Die Design for the Extrusion of Butyl Rubber)

  • 최태균;이희주;류민영
    • Elastomers and Composites
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    • 제49권4호
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    • pp.275-283
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    • 2014
  • 건축용 접착제로 활용되고 있는 부틸고무는 주로 시트의 형태로 사용된다. 본 연구에서는 컴퓨터 해석을 통해 부틸고무 시트 압출용 다이를 설계하였다. 압출용 다이의 내부는 크게 매니폴드와 랜드로 나뉜다. 매니폴드는 다이중앙에서 유입되는 재료가 폭 방향으로 흐름이 이루어 지도록 하는 역할을 한다. 랜드는 재료가 흐름 방향으로 균일하게 흐르게 하여 균일한 두께의 시트가 성형되도록 한다. 다이는 매니폴드와 랜드 외에도 아일랜드를 설치하여 흐름의 안정을 주도록 하는 경우가 많다. 본 연구에서는 컴퓨터 해석을 통하여 다이에서 매니폴드의 각도와 길이, 랜드 길이 그리고 아일랜드를 설계 변수로 하여 다이 출구에서 다이 폭 방향으로 균일한 흐름이 형성되도록 하는 최적의 다이형상을 연구하였다.

펨토초레이저를 이용한 알루미늄 성형다이의 미세가공에 관한 연구 (Die Surface Texturing by Femtosecond Laser for Friction Reduction)

  • 최해운;신현명
    • 한국정밀공학회지
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    • 제26권5호
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    • pp.57-63
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    • 2009
  • Interface friction in blanking dies, cold forging and extrusion of aluminum alloys is a major cause of inefficient process. This paper describes an investigation of femtosecond laser texturing for reduction of interface friction on sliding surfaces in forming process. Femtosecond direct writing technology was used to fabricate a laser micro-machined die and to create microgroove patterns with varying size and density on metal forming dies. A systematic approach to find the optimum parameters and computer simulation comparison of friction coefficients are provided to study the relation of friction coefficients and die profiles. In metal forming tests, the effectiveness of various laser-machined patterns for enhancing interface lubrication is determined.

강소성 유한요소법과 반응표면분석법을 이용한 박판성헝 공정에서의 비드력 및 다이형상의 설계 (Design of the Bead Force and Die Shape in Sheet Metal Forming Processes Using a Rigid-plastic Finite Element Method and Response Surface Methodology)

  • 김세호;허훈
    • 소성∙가공
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    • 제9권3호
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    • pp.284-292
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    • 2000
  • Optimization of the process parameters is carried out for process design in sheet metal forming processes. The scheme incorporates with a rigid-plastic finite element method for the deformation analysis and response surface methodology for the optimum searching of process parameters. The algorithm developed is applied to design of the draw bead force and the die radius in deep drawing processes of rectangular cups. The present algorithm shows the capability of designing process parameters which enable the prevention of the weak part of fracture during processes.

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슬롯다이 코팅의 최적화 조건에 관한 연구 (Study on the Optimized Condition of the Slot-Die Coating Process)

  • 서응수;예정우;황중국;심재술;채영석
    • 대한기계학회논문집A
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    • 제39권9호
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    • pp.937-945
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    • 2015
  • 본 연구에서는 코팅 공정에 사용되는 슬롯다이(slot-die)에 대해 조건에 따른 코팅 성능을 연구하였다. 슬롯다이 코팅은 코팅 되는 필름의 속도, 코팅액의 점도 그리고 슬롯다이로 주입 되는 압력에 따라 코팅 품질이 많이 달라진다. 따라서 본 논문에서는 CFD 코드를 이용하여 안정적인 코팅을 위한 최적의 조건을 찾았다. 다양한 코팅액의 점도와 슬롯다이 입구의 압력 그리고 코팅 필름의 속도에 대해서 해석을 수행하였다. 그 결과로 $5kgf/cm^2$의 압력과 100cps 의 점도 그리고 20m/min 의 속도 조합에서 가장 안정적으로 코팅액이 잘 도포되었다.

Investigation of Galling In Forming Galvanized Steel Sheet

  • Altan, Taylan;Kardes, Nimet;Kim, Hyunok
    • Corrosion Science and Technology
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    • 제10권1호
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    • pp.1-5
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    • 2011
  • The major purpose of the present study is to evaluate the performance of various galvanized (GI) or galvannealed (GA) mild steels and AHSS in stamping applications. Finite Element Analysis (FEA) of selected stamping operations was conducted to estimate the critical pressure boundary conditions that exist in practice. Using this information, laboratory tribotests, e.g. Twist Compression (TCT), Deep Drawing (DDT) and Strip Drawing (SDT) Tests, were developed to evaluate the performance of selected lubricants and die materials/coatings in forming galvanized steels of interest. The sheet materials investigated included mild steels and AHSS (e.g. DP600 GI/GA, DP780 GI/GA, TRIP780 GA and DP980 GI/GA). Experimental results showed that galvanized material resulted in more galling, while galvannealed material showed more powdering and flaking. The surface roughness and chemical composition of galvanized sheet materials affected the severity of galling under the same testing conditions, i.e. lubricants and die materials/coatings. The results of this study helped to determine the critical interface pressure that initiates lubricant failure and galling in stamping selected galvanized sheet materials. Thus, to prevent or postpone the critical interface conditions, the results of this study can be used to select the optimum combination of galvanized sheet, die material, die coating and lubricant for forming structural automotive components.

실험계획법에 의한 자동차용 러버실 금형가공을 위한 총형공구의 최적설계 (Optimum Design of Formed Tool for Die of Bearing Rubber Seal Using Design of Experiments)

  • 이여해;임표;이희관;양균의
    • 한국자동차공학회논문집
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    • 제15권4호
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    • pp.47-53
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    • 2007
  • A bearing is one of core parts in automobile. Rubber seal of the bearing is important to improve performance of bearing, formed by hot-press die of rubber seal for the intricate shape. In this study, formed tools are used to machine die of bearing rubber seal and the machining operation is classified into the several process of high precision. Design of experiments is used to optimize selection of the formed tools for the efficient machining of the hot-press die. The cutting force, tool wear and tool life are determined to characteristics. And, the clearance angle, the rake angle and the length cutting edge are considered as the major factors. Experiments are repeated to use one-way factorial design, and tool life is predicted by regression model.

Effect of Die-upset Process on Magnetic Properties and Deformation Behavior of Nanostructured Nd-Fe-B Magnets

  • Zhao, R.;Zhang, W.C.;Li, J.J.;Wang, H.J.;Zhu, M.G.;Li, W.
    • Journal of Magnetics
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    • 제16권3호
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    • pp.294-299
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    • 2011
  • Nd-Fe-B high performance magnets were prepared by die-upset forging. The effects of the deformation parameters on magnetic properties and flow stress were studied. Deformation temperatures in the range of $600{\sim}900^{\circ}C$ enable to achieve an effective anisotropy and temperature $800^{\circ}C$ proves to be suitable for deformation of Nd-Fe-B magnets. The amount of c-axis alignment along the press direction seems to depend on the amount of deformation and a saturation behavior is shown at deformation ratio of 75%. Magnetic properties are also related to strain rate, and maximum energy product is attained at an optimum strain rate of ${\varphi}=1{\times}10^{-2}s^{-1}$. By analyzing the relationship of stress and strain at different deformation temperature during die-upset forging process, deformation behavior of Nd-Fe-B magnets was studied and parameters for describing plastic deformation were obtained. Nd-rich boundary liquid phase, which is additionally decreasing the flow stress during deformation, is supposed to play the role of diffusion path and enhance the diffusion rate.

미세 홀 어레이 펀칭 가공 (Punching of Micro-Hole Array)

  • 손영기;오수익;임성한
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2005년도 금형가공,미세가공,플라스틱가공 공동 심포지엄
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    • pp.193-197
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    • 2005
  • This paper presents a method by which multiple holes of ultra small size can be punched simultaneously. Silicon wafers were used to fabricate punching die. Workpiece used in the present investigation were the rolled pure copper of $3{\mu}m$ in thickness and CP titanium of $1.5{\mu}m$ in thickness. The metal foils were punched with the dies and arrays of circular and rectangular holes were made. The diameter of holes ranges from $2-10{\mu}m$. The process set-up is similar to that of the flexible rubber pad forming or Guerin process. Arrays of holes were punched successfully in one step forming. The punched holes were examined in terms of their dimensions, surface qualities, and potential defect. The effects of the die hole dimension on ultra small size hole formation of the thin foil were discussed. The optimum process condition such as proper die shape and diameter-thickness ratio (d/t) were also discussed. The results in this paper show that the present method can be successfully applied to the fabrication of ultra small size hole array in a one step operation.

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십자 형상 금형의 디프 드로잉에서 AZ31B 마그네슘 합금판재의 성형 한계 (Forming Limit of AZ31B Magnesium Alloy Sheet in the Deep Drawing with Cross Shaped Die)

  • 황상희;최선철;김헌영;김형종;홍석무;신용승;이근호
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2008년도 춘계학술대회 논문집
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    • pp.374-377
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    • 2008
  • Magnesium alloy sheets are usually formed at temperatures between $150^{\circ}C$and $300^{\circ}C$ because of their poor formability at room temperature. In the present study, the formability of AZ31B magnesium alloy sheets was investigated by the analytical and experimental approaches. First, tensile tests and the limit dome height test were carried out at elevated temperatures to get the mechanical properties and forming limit diagram, respectively. And then deep drawing of cross shaped die was tried to get the minimum corner radius and forming limit at specific temperature. Blank shape, punch velocity, minimum corner radius, fillet size, etc, were determined by finite element analysis physical try-outs. Especially, optimum punch and die temperature were suggested through the temperature-deformation analysis using Pam-stamp.

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두께가 얇은 냉간단조품의 스프링백 거동 및 저감설계 (Behavior and Reduction of Spring-back in a Thin Cold-Forged Product)

  • 김대원;신영철;최호준;윤덕재;이근안;김연구;임성주
    • 소성∙가공
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    • 제21권7호
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    • pp.397-402
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    • 2012
  • The flange hub is a main component in an automotive steering system. In general, the flange hub are fabricated by mechanical machining, which is a process where material waste is inevitable. It is well-known that a net-shape cold forging cannot only reduce material waste but can also improve the mechanical strength of the final product. Thus, a forging process design was conducted for production of a flange hub. Significant spring-back occurs around the flange due to its small thickness in conjunction with the residual stresses after forging. In order to achieve the required dimensional accuracy, a process design with appropriate spring-back control is needed. In this study, a modification of the forging die was designed based on FE analysis with the purpose of spring-back compensation. Four kinds of different die designs were evaluated and the optimum design has two times less spring-back than the initial design. The compensation angle of the optimum design is 0.5 degrees. The results have been experimentally confirmed by cold forging of a flange hub and comparing the amount of spring-back between the actual component and the FE analysis.