Light-weight Design with a Simplified Center-pillar Model for Improved Crashworthiness

측면충돌 성능 향상을 위한 고강도 강판의 적용 및 단순 센터필러 모델의 최적경량설계

  • Bae, Gi-Hyun (Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology) ;
  • Huh, Hoon (Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology) ;
  • Song, Jung-Han (Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology) ;
  • Kim, Se-Ho (School of Automotive, Industrial and Mechanical Engineering, Daegu University)
  • 배기현 (한국과학기술원 기계공학과) ;
  • 허훈 (한국과학기술원 기계공학과) ;
  • 송정한 (한국과학기술원 기계공학과) ;
  • 김세호 (대구대학교 자동차.산업.기계공학부)
  • Published : 2006.11.01

Abstract

This paper is concerned with the light-weight design of a center-pillar assembly for the high-speed side impact of vehicle using advanced high strength steels(AHSS). Steel industries continuously promote the ULSAB-AVC project for applying AHSS to structural parts as an alternative way to improve the crashworthiness and the fuel efficiency because it has the superior strength compared to the conventional steel. In order to simulate deformation behavior of the center-pillar assembly, a simplified center-pillar model is developed and parts of that are subdivided employing tailor-welded blanks(TWB) in order to control the deformation shape of the center-pillar assembly. The thickness of each part which constitutes the simplified model is selected as a design parameter. Factorial design is carried out aiming at the application and configuration of AHSS to simplified side-impact analysis because it needs tremendous computing time to consider all combinations of parts. In optimization of the center-pillar, S-shaped deformation is targeted to guarantee the reduction of the injury level of a driver dummy in the crash test. The objective function is constructed so as to minimize the weight and lead to S-shape deformation mode. Optimization also includes the weight reduction comparing with the case using conventional steels. The result shows that the AHSS can be utilized effectively for minimization of the vehicle weight and induction of S-shaped deformation.

Keywords

References

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