• 제목/요약/키워드: finite element analaysis

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유한요소법을 이용한 하이드로포밍 알루미늄 범퍼빔의 성형공정 최적화 (Optimization of the Hydro-Forming Process for Aluminum Bumper Beams by Using Finite Element Analysis)

  • 손원식;염상혁;이지훈;김승모
    • 한국생산제조학회지
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    • 제26권4호
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    • pp.410-417
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    • 2017
  • Hydro-forming is being employed increasingly to realize lightweight vehicular parts. The bumper beam produced by this process weighs 30% less than the conventional products with equal stiffness. However, hydro-forming involves complex parameters to obtain the target geometry and low residual stress. Parametric studies are conducted using finite element analysis to obtain optimized process conditions. Through these numerical approaches, the internal and holding pressures and feeder forward stroke along the extruded direction are optimized to achieve low residual stress and to minimize springback. The numerical results are verified by experimental observations made by employing a three-dimensional laser scanner. The numerical and experimental results are compared in terms of the springback. Both results show similar tendencies.

링압축시험에서 역해석을 이용한 유동응력과 마찰상수 결정법 (A method of determining flow stress and friction factor using an inverse analaysis in ring compression test)

  • 최영;김호관;조해용;김병민;최재찬
    • 대한기계학회논문집A
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    • 제22권3호
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    • pp.483-492
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    • 1998
  • An inverse analysis been applied to obtain the flow stress of the material. In this method, a ring-shaped specimen is compressed between two flat tools. This procedure employs, as the object function of inverse analysis, the balance of measured loads and reaction forces calculated by using rigid-plastic finite element method. The balance is explicit scalar function of flow stress which is a function of some unknown constants. For minimizing the balance, Newton-Raphon scheme is used. The friction factor, m, between flat tools and the specimen is determined by using friction area-divided method. The proposed method allows an accurate identification by avoiding the usual assumptions made in order to convert experimental measures into stress-strain relation. In this paper, the proposed method is numerically tested. A commercial pure aluminum was selected, as an example, to apply the method and the results are compared with stress-strain relation obtained by experiments.