• Title/Summary/Keyword: Forming simulation

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Plastic Forming of Rolling Bearing Steel Components (구름 베어링 부품의 소성가공)

  • 송복한;박창남
    • Transactions of Materials Processing
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    • v.12 no.2
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    • pp.83-87
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    • 2003
  • Current state of plastic processes of steel bearing parts is surveyed. According to the advances in plastic forming technologies and their great advantage to mass production, plastic processes are adopted in manufacturing majority of bering parts. The rings are forged or ring rolled and the rolling elements, i.e, balls or rollers are cold formed before fine machining. Bearing's steel retainers are mainly press formed using cold rolled seel strips. Including the general explanation about above processes, some details of forging technology, control of forging temperature and after cooling process, and examples of computer simulation are described.

Active Noise Cancelling Headphone using Adaptive Beam-forming Techniques (적응 빔 포밍 기법을 적용한 능동 소음 제거 헤드폰)

  • Moon, Sung-Kyu;Nam, Hyun-Do
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.59 no.9
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    • pp.1699-1701
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    • 2010
  • The Active Noise Cancelling(ANC) headphone is now becoming commercially available. But it reduces not only noise but also information signals such as speech or some signals including audible information in particular situation. In this paper, we propose an ANC headphone using adaptive beam-forming techniques which cancels signals except the headphone wearer's look direction signal. It enables workers working in noisy condition to talk with their coworkers. Computer simulation is performed to show the effectiveness of a proposed algorithm.

Optimal Blank Design for Sheet Metal Stamping (박판성형공정의 블랭크 최적설계)

  • 김용환
    • Proceedings of the Korean Society for Technology of Plasticity Conference
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    • 2000.04a
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    • pp.141-145
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    • 2000
  • A systematic method to find the optimal blank shape for sheet forming is proposed by coupling the numerical simulation technique. A weighted parameter was introduced in order to simplify the multi-variable optimization problem to a single-variable problem. The proposed method has been applied to the blank design of drawing processes to obtain the near-net shape within the required error bound after forming, Excellent results have been obtained between the numerical results and the target contour shapes. Through the investigation the proposed systematic method for optimal blank design is found to be effective in the practical forming processes

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Numerical Study of Aircraft Winglet Mold Manufacturing using Flexible Forming (가변성형기술을 활용한 항공기 윙렛용 몰드 제작에 관한 수치적 연구)

  • Park, J.W.;Ku, T.W.;Kim, J.;Kang, B.S.
    • Transactions of Materials Processing
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    • v.23 no.8
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    • pp.482-488
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    • 2014
  • Flexible forming technology has advantages in sheet metal forming, because it can be implemented to produce various shaped molds using a single apparatus. Due to this advantage, it is possible to apply it to the manufacture of an aircraft winglet mold. Presently, most aircraft winglets are manufactured from composite materials. Therefore, the mold for the curing process is an essential element in the fabrication of such composite materials. Compared to conventional mold forming, flexible forming has some advantages such as reduced manufacturing cost and uniformity of mold thickness. If the thickness of the mold is consistent, then the heat transfer will occur uniformly during the curing process leading to improved formability of the composite material. In the current study, numerical simulations were performed to investigate the possibility of flexible forming for manufacturing of the winglet mold. In order to match the size of the actual product, the shape of objective surface was divided to fit the dimensions of the apparatus. The results from the numerical simulations are compared with the objective surface to verify the accuracy. In conclusion, the current study confirms the feasibility and the potential to manufacture winglet molds by flexible forming.

Forming process design for the twist reduction of an automotive front side member (프론트 사이드 멤버의 비틀림 저감을 위한 성형공정 설계)

  • Yin, Jeong-Je
    • Journal of the Korean Society of Mechanical Technology
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    • v.13 no.1
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    • pp.105-112
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    • 2011
  • Increasing needs for light weight and high safety in modern automobiles induced the wide application of high strength steels in automotive body structures- The main difficulty in the forming of sheet metal parts with high strength steel is the large amount of springback including sidewall curl and twist in channel shaped member parts- Among these shape defects, twist occurs frequently and requires numerous reworks on the dies to compensate the shape deviation- But until now, it seems to be no effective method to reduce the twist in the forming processes- In this study, a new forming process to reduce the twist deformation during the forming of automotive structural member was suggested- This method consists of forming and restriking of embosses on the sidewall around the stretch flanging area of the part- and was applied in the forming process design of an automotive front side inner member with high strength steel- To evaluate the effectiveness of the method, springback analysis using $Pamstampa^{tm}$ was done- Through the analysis results, the suggested method was proven to be effective in twist reduction of channel shaped parts with stretch flanging area.

A Study on the Forming Process of High-strength Aluminum Sheet for Electric Vehicle Heat Exchanger Separator Through Parametric Analysis (인자 분석을 통한 전기차 열교환기 분리판용 고강도 알루미늄 판재 성형 연구)

  • Jung, S.H.;Yang, J.H.;Kim, Y.B.;Lee, K.J.;Kim, B.H.;Lee, J.S.;Bae, G.H.
    • Transactions of Materials Processing
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    • v.31 no.2
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    • pp.57-63
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    • 2022
  • The current study performed formability analysis of a heat exchanger separator for an electric vehicle to apply a high-strength aluminum sheet based on parametric analysis. Mechanical properties for sheet metal forming simulation were evaluated by tensile test, bulge test, and Nakajima test. Two-stage crash forming was established by considering the mass production process using conventional low-strength aluminum sheets. In this study, FEM for the two-stage forming process was conducted to optimize the corner radius and height for improving the formability. In addition, the possibility of a one-stage forming process application was confirmed through FEM. The prototype of the sample was manufactured as FEM results to validate the parametric analysis. Finally, this result can provide a one-stage forming process design method using the high-strength aluminum sheet for weight reduction of a heat exchanger separator for an electric vehicle.