Title :
Lightweight Design of B-pillar with TRB Concept Considering Crashworthiness
Author :
Yang, Zhitian ; Peng, Qian ; Yang, Jikuang
Author_Institution :
State Key Lab. of Adv. Design & Manuf. for Vehicle Body, Hunan Univ., Changsha, China
fDate :
July 31 2012-Aug. 2 2012
Abstract :
Lightweight and crashworthiness are two crucial aspects of automobile design. The purpose of this study is to minimize the weight of the B-pillar without compromising the safety performance for the car occupants in side collisions and roof crush. For the purpose a finite element model was developed for modeling of a passenger car in side collision and roof crush. The optimization of the B-pillar was carried out by using tailor rolled blanks (TRB) concept under the constraint of vehicle side impact and roof crush. An integrated approach is applied using uniform design, finite element method, Kriging approximation and genetic algorithm. The B-pillar intrusion, intrusion velocity and the resistant force of roof crush were defined as constraint for determination of the thickness of the B-pillar. Finally, two types of structure TRB I and TRB II are proposed for lightweight design. The results indicated that the weight of the B-pillar can be reduced by 36.43% and 31.57% respectively, while fulfilling the safety requirements.
Keywords :
automotive engineering; design engineering; finite element analysis; genetic algorithms; impact testing; lightweight structures; optimisation; road safety; rolling; roofs; statistical analysis; vehicle dynamics; B-pillar intrusion; B-pillar optimization; Kriging approximation; TRB I structure; TRB II structure; TRB concept; automobile design; car occupants; crashworthiness; finite element model; genetic algorithm; intrusion velocity; lightweight B-pillar design; passenger car modeling; safety performance; side collisions; tailor rolled blanks concept; vehicle roof crush; vehicle side impact; Approximation methods; Computational modeling; Finite element methods; Optimization; Vehicle crash testing; Vehicles; lightweight; optimization; roof crush; side impact; trb;
Conference_Titel :
Digital Manufacturing and Automation (ICDMA), 2012 Third International Conference on
Conference_Location :
GuiLin
Print_ISBN :
978-1-4673-2217-1
DOI :
10.1109/ICDMA.2012.121