4.7 Article

On the structural parameters of honeycomb-core sandwich panels against low-velocity impact

期刊

COMPOSITES PART B-ENGINEERING
卷 216, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.compositesb.2021.108881

关键词

Sandwich structure; Honeycomb core; Impact behavior; Energy absorption; Finite element analysis; Cost efficiency analysis

资金

  1. National Natural Science Foundation of China [52075157]
  2. Open Fund of the State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body [31715001]
  3. Hunan Provincial Innovation Foundation for Postgraduate [CX20200396]

向作者/读者索取更多资源

This study investigated the low-velocity impact behavior of honeycomb-core sandwich panels through experimental and numerical analysis, identifying two distinct failure modes. Structural parameters such as facesheet thickness, core height, honeycomb cell size, and cell wall thickness were found to significantly influence the impact performance of the sandwich panels. Optimizing the structural design by controlling these parameters can enhance perforation resistance and energy absorption capacity.
This paper presents a combined experimental and numerical study on the low-velocity impact behavior of honeycomb-core sandwich panels with different structural parameters, including facesheet thickness, core height, honeycomb cell size, and cell wall thickness. Impact tests were conducted at four different energies using a drop-weight impact facility, and the deformation and damage characteristics of the tested sandwich panels were analyzed by microscopic X-ray computed tomography. The experimental results revealed two distinct failure modes of sandwich panels: namely mode A, with localized damage in both facesheets and core, which is dominated by indentation; and mode B, which is characterized by global bending deflection of the facesheets and overall core crushing. It was found that a sandwich panel with thin facesheets and a high-density honeycomb core (e.g. with a small cell size and/or a thick cell wall) tended to fail in mode A, but core height did not influence the failure mechanism notably. Furthermore, finite element modeling was carried out to gain further understanding of the effects of these structural parameters. The perforation resistance and energy absorption capacity were significantly enhanced with increasing facesheet thickness. Whereas reducing the cell size and/or thickening the cell wall resulted in lower perforation resistance. When the total thickness of facesheets remained a constant, the impact behavior of the sandwich structure could be optimized by controlling the thickness ratio of the front to back facesheets. Finally, cost efficiency analysis was performed to achieve a rational design of the sandwich structure considering both the impact performance and cost.

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