Yan Wang, Xingyu Wei, Zhibin Li, Xiaohan Tang, Jian Xiong
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引用次数: 0
Abstract
This research aims to improve the performance of low-density carbon fiber composite honeycomb structures by optimizing their geometric design. To improve buckling resistance, a curved-wall carbon fiber reinforced polymer (CFRP) honeycomb is designed by substituting the curved walls with circular cross sections for the straight edges of traditional hexagonal honeycomb. The honeycomb was fabricated using the modified tailor-folding method. The deformation and failure modes of curved-wall CFRP honeycomb were investigated by analytical model, experiments and finite element analysis (FEA). The analytical model demonstrated a satisfactory correlation with the experimental results and simulations. The specific strength was employed to investigate the load-weight efficiency of curved-wall CFRP honeycomb under different geometric parameters, aiming to identify the most optimal lightweight structure configuration. The results revealed that the central angle of the circular arc significantly influenced the buckling resistance of honeycomb, and an optimal combination of geometric parameters with specific strength was obtained. This study can serve as a guide for designing and optimizing lightweight structures.
期刊介绍:
The Journal of Sandwich Structures and Materials is an international peer reviewed journal that provides a means of communication to fellow engineers and scientists by providing an archival record of developments in the science, technology, and professional practices of sandwich construction throughout the world. This journal is a member of the Committee on Publication Ethics (COPE).