4.7 Article

Experimental and numerical study on the crashworthiness performance of a hybrid energy absorber with expanding-splitting-bending process

期刊

THIN-WALLED STRUCTURES
卷 181, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.tws.2022.110122

关键词

Crashworthiness; Hybrid energy absorber; Splitting; Circular tube

资金

  1. National Natural Science Foundation of China [51975588]
  2. Na-tional Key R&D Program of China [2016YFB1200403]
  3. Strate-gic Leading Science and Technology Project of Central South Uni-versity [ZLXD2017002]
  4. Postgraduate Innovative Project of Central South University

向作者/读者索取更多资源

In this paper, a new hybrid absorber is proposed to address the limited energy absorption capability of splitting tube. Experimental results show that the hybrid tube significantly improves the crushing force and is well validated by finite element simulations.
The single deformation mode of splitting tube significantly restricts its energy absorption capability. To address this limitation, in this paper we propose a new hybrid absorber with an external die added to the outside of the expanding-splitting tube, thus the circular tube undergoes sequential expanding, splitting, and bending deformations. We fabricate samples and perform quasi-static compressive experiments on the splitting tube, expanding-splitting tube, and proposed hybrid splitting tube. Experimental results show that the hybrid tube deforms in a controlled and ordered way as designed. Remarkably, the steady crushing force of the hybrid tube is 52.1% and 221.6% higher in comparison to that of the same tube with splitting mode, and expanding- splitting mode, respectively. The crushing force responses and deformation processes are well captured by finite element simulations. The relative errors of the steady crushing forces and energy absorption are within 5.0%. A parametric analysis is performed. We show that the structure parameters play an important role in the crashworthiness performance. In particular, the tube with thicker walls has a larger crushing force and a higher specific energy absorption. The small cracking number and spacing between the inner and outer die can trigger unstable deformation. Our results can advance the engineering application of splitting tubes and the lightweight design of energy absorbers.

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