Study on Crashworthiness of Hybrid Gradient Negative Poisson's Ratio Structure Under Multi-conditions

被引:1
|
作者
Ma F. [1 ]
Wang Q. [1 ]
Ma W. [2 ,3 ]
Liang H. [1 ]
Pu Y. [1 ]
机构
[1] State Key Laboratory of Automotive Simulation and Control, Jilin University, Jilin
[2] China FAW Group Co., Ltd., Jilin
[3] State Key Laboratory of Comprehensive Technology on Automobile Vibration and Noise & Safety Control, Jilin
关键词
Energy absorption; Function gradient; Multiple working conditions; Negative Poisson's ratio; Vehicle collision;
D O I
10.12141/j.issn.1000-565X.210696
中图分类号
学科分类号
摘要
In order to meet the requirements of actual vehicles collision and improve the crashworthiness of vehicle energy absorbing components, this paper proposed a hybrid gradient negative Poisson's ratio structure based on the bionic principle, and established a finite element model. At the same time, the test sample was made for axial compression test to verify the accuracy of the finite element model. Using LS-DYNA, the mixed gradient structures with nine different arrangement modes were simulated under different impact angles and impact speeds. The comparison results of comprehensive crashworthiness indexes show that the optimal arrangement mode under multiple working conditions is the combination of transverse negative gradient and longitudinal positive gradient. Compared with the uniform gradient structure, its comprehensive energy absorption is increased by 19.2%, energy absorption stability is improved by 30.6%, and the improvement is obvious. Through the comparative analysis of the deformation modes of hybrid gradient structures with different arrangement modes, it finds that a single transverse gradient can improve the energy absorption stability of the structure, while a single longitudinal gradient can improve the comprehensive energy absorption performance of the structure. Because of the reasonable material distribution, the optimal hybrid gradient structure takes into account the comprehensive energy absorption and energy absorption stability and explains the reason of the excellent comprehensive performance of the optimal arrangement from the internal mechanism, which is conducive to the engineering of the mixed gradient negative Poisson's ratio structure. © 2022, Editorial Department, Journal of South China University of Technology. All right reserved.
引用
收藏
页码:85 / 97
页数:12
相关论文
共 17 条
  • [1] REN Xin, ZHANG Xiangyu, XIE Yimin, Research progress in auxetic materials and structures, Chinese Journal of Theoretical and Applied Mechanics, 51, 3, pp. 656-687, (2019)
  • [2] YANG Zhichun, DENG Qingtian, Mechanical property and application of materials and structures with negative Poisson's ratio, Advances in Mechanics, 41, 3, pp. 35-350, (2011)
  • [3] LI D, YIN J H, DONG L, Et al., Strong re-entrant cellular structures with negative Poisson's ratio[J], Journal of Materials Science, 53, 5, pp. 3493-3499, (2018)
  • [4] WANG Y L, ZHAO W Z, ZHOU G, Et al., Parametric design strategy of a novel cylindrical negative Poisson's ratio jounce bumper for ideal uniaxial compression load-displacement curve[J], Science China-Technological Sciences, 61, 10, pp. 1611-1620, (2018)
  • [5] QIAO J X, CHEN C Q., Analyses on the in-plane impact resistance of auxetic double arrowhead honeycombs[J], Journal of Applied Mechanics, 82, 5, (2015)
  • [6] QIAO J X, CHEN C Q., Impact resistance of uniform and functionally graded auxetic double arrowhead honeycombs [J], International Journal of Impact Engineering, 83, 9, pp. 47-58, (2015)
  • [7] WANG H, LU Z X, YANG Z Y, Et al., In-plane dynamic crushing behaviors of a novel auxetic honeycomb with two plateau stress regions[J], International Journal of Mechanical Sciences, 151, 2, pp. 746-759, (2019)
  • [8] LU Zixing, WU Wenbo, Numerical simulations for the in-plane dynamic crushing of honeycomb material with negative Poisson's ratio based on rotating triangle model, Acta Armamentarii, 39, 1, pp. 153-160, (2018)
  • [9] XIAO D B, DONG Z C, LI Y, Et al., Compression behavior of the graded metallic auxetic reentrant honeycomb: experiment and finite element analysis[J], Materials Science & Engineering A, 758, 6, pp. 163-171, (2019)
  • [10] WU X, SU Y T, SHI J., In-plane impact resistance enhancement with a graded cell-wall angle design for auxetic metamaterials, Composite Structures, 247, 9, (2020)