Hydro-forming Process of Automotive Engine Cradle by Computer Aided Engineering (CAE)

컴퓨터 시뮬레이션(CAE)을 이용한 자동차용 엔진 크레들의 하이드로-포밍 공정 연구

  • Kim, Kee-Joo (CAE Team, Ssangyong Motor Co.) ;
  • Choi, Byung-Ik (Micro System & Structural Mechanics Team, Korea Institute of Machinery & Materials) ;
  • Sung, Chang-Won (Department of Mechanical Engineering, Kyung Hee University)
  • 김기주 (쌍용자동차 CAE팀) ;
  • 최병익 (한국기계연구원 마이크로응용역학팀) ;
  • 성창원 (경희대학교 기계공학과)
  • Published : 2008.02.01

Abstract

Recently, the use of tubes in the manufacturing of the automobile parts has increased and therefore many automotive manufactures have tried to use hydro-forming technology. The hydro-forming technology may cause many advantages to automotive applications in terms of better structural integrity of the parts, lower cost from fewer part count, material saving, weight reduction, lower spring-back, improved strength and durability and design flexibility. In this study, the whole process of front engine cradle (or front sub-frame) parts development by tube hydro-forming using steel material having tensile strength of 440MPa grade is presented. At the part design stage, it requires feasibility study and process design aided by CAE (Computer Aided Design) to confirm hydro-formability in details. Effects of parameters such as internal pressure, axial feeding and geometry shape on automotive sub-frame by hydro-forming process were carefully investigated. Overall possibility of hydro-formable sub-frame parts could be examined by cross sectional analyses. Moreover, it is essential to ensure the formability of tube material on every forming step such as pre-bending, preforming and hydro-forming. At the die design stage, all the components of prototyping tools are designed and interference with press is examined from the point of geometry and thinning.

Keywords

References

  1. F. Dohmann and Ch. Hartl, "Tube Hydroforming- Research and Practical Application," J. Mater. Process Tech., Vol.71 pp.174-186, 1997 https://doi.org/10.1016/S0924-0136(97)00166-0
  2. S. Nakamura, H. Sugiura, H. Onoe and K. Ikemoto, Hydro Mechanical Drawing of Automotive Parts, J. Mater. Process. Tech., Vol.46, pp.491-503, 1994 https://doi.org/10.1016/0924-0136(94)90129-5
  3. M. Ahmetoglu and T. Altan, "Tube Hydroforming- State-of-the-art and Future Trends," J. Mater Process Tech., Vol.98, pp.25-33, 2000 https://doi.org/10.1016/S0924-0136(99)00302-7
  4. M. Ahmetoglu, K. Sutter, S. J. Li and T. Altan, Tube Hydroforming: Current Research, Applications and Nee for Training J. Mater Process Tech., Vol.98, pp.224-231, 2000 https://doi.org/10.1016/S0924-0136(99)00203-4
  5. N. Asnafi, "Analytical Modeling of Tube Hydroforming," Thin-Walled Structure, Vol.34, pp.295-330, 1999 https://doi.org/10.1016/S0263-8231(99)00018-X
  6. J. Kim, L. P. Lei, S. Kang and B. Kang, "Bursting Failure Prediction in Tube Hydroforming Process," Transactions of KSAE, Vol.9, No.6, pp.160-169, 2001