Optimization on the Flexural Performance of Bio‐Inspired Helicoidal Hybrid Composite Laminates

材料科学 抗弯强度 复合材料 弯曲 有限元法 复合材料层合板 结构工程 数字图像相关 三点弯曲试验 纤维增强塑料 复合数 弯曲模量 应变能 纤维 材料性能 还原(数学) 扫描电子显微镜 混合动力系统 损伤容限 水准点(测量) 优化设计 碳纳米管 混合材料 艾氏冲击强度试验 碳纤维增强聚合物
作者
Xinchao Gao,Linhai Huang,J. Shen J.F. Sun,Diantang Zhang,Meng Han,Yuxiang Zhao,Junhua Zhao
出处
期刊:Polymer Composites [Wiley]
卷期号:47 (S2)
标识
DOI:10.1002/pc.70917
摘要

ABSTRACT Hybrid composites have been widely known for their significant advantages in improving carrying characteristics and balancing cost and performance, and bio‐inspired designs (e.g., helical structures) can also enhance mechanical properties. However, the combined effects of hybrid and bio‐inspired helical ply on mechanical properties remain insufficiently studied. Herein, the hybrid structures and bio‐inspired helical ply angles were employed as design variables. The effects of varying hybrid structures and bio‐inspired designs on flexural properties were systematically investigated via three‐point bending tests, combined with digital image correlation (DIC) and scanning electron microscopy (SEM) to characterize strain distribution and failure modes. The results demonstrate that a specific hybrid layup increased flexural strength and energy absorption by 15.9% and 194% compared with the pure carbon fiber laminate. The double‐helical structure significantly enhanced energy absorption maintaining high modulus/strength in contrast with the benchmark hybrid structure. Based on a progressive damage finite element model, which accurately simulated the flexural responses of laminates, Hybrid structure and helical ply angle were synchronously optimized using the Taguchi‐gray relational analysis method. The optimized architecture exhibited a 33.5% improvement in flexural performance and a 20.1% reduction in material cost compared with the benchmark design.
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