4.7 Article

Multiobjective optimization for foam-filled multi-cell thin-walled structures under lateral impact

期刊

THIN-WALLED STRUCTURES
卷 94, 期 -, 页码 1-12

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.tws.2015.03.031

关键词

Foam-filled structure; Multi-cell thin-walled structures; Finite element method; Crashworthiness; Multiobjective optimization

资金

  1. National Science Foundation for Young Scientists of China [11302075]
  2. National Science Fund for Distinguished Young Scholars of China [11225212]
  3. National Science and Technology Support Program of China [2012BAH09B02]
  4. Specialized Research Fund for the Doctoral Program of Higher Education of China [20120161120009, 20120161130001]
  5. Natural Science Foundation of Hunan Province of China [14JJ3061]
  6. Hunan Provincial Natural Science Foundation for Creative Research Groups of China [12JJ7001]
  7. State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body of China [31275006]
  8. Science Fund of State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body of China [71275003]
  9. Young Teacher Development Plan of Hunan University of China [227201401204]

向作者/读者索取更多资源

Nowadays, foam-filled multi-cell thin-walled structure (FMTS) has been widely used in the field of automotive due to their extraordinary energy absorption capacity and light weight. In this study, nine kinds of FMTSs with different cross-sectional configurations under lateral crushing load conditions were investigated using nonlinear finite element method through LS-DYNA. The complex proportional assessment (COPRAS) method was used to make clear which kind of FMTSs has the most excellent crashworthiness. According to this method, it can be found that FMTSs with 2,3 and 9 cells are the top-3 excellent structures in our considered cases. In order to improve the crashworthiness of the three FMTSs, they were optimized by metamodel-based multiobjective optimization method which was developed by employing polynomial regression (PR) metamodel and multiobjective particle swarm optimization (MOPSO) algorithm. In the optimization process, we aimed to achieve maximum value of specific energy absorption (SEA) and minimum value of maximum impact force (MIF). Based on the comparison of the Pareto fronts obtained by multiobjective optimization, we can find that FMTS with 9 cells (FTMT9) performs better than FMTSs with 2 and 3 cells. Thus, the optimal design of FMTS9 is exactly an excellent energy absorption candidate under lateral impact and can be used in the future vehicle body. (C) 2015 Elsevier Ltd. All rights reserved.

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