材料科学
复合材料
复合数
层压
刚度
环氧树脂
热塑性塑料
弹簧(装置)
板簧
有限元法
热塑性复合材料
汽车工业
消散
聚酰胺
纤维增强塑料
热的
变形(气象学)
转移模塑
应变率
工作(物理)
结构工程
比强度
拉伤
制造工艺
压力(语言学)
比模量
先进复合材料
电子设备和系统的热管理
应变能
作者
Jun Ke,Xiaojun Dong,Yuecheng Wu,Shengtao Ma,Zihao Zhang,Yongchang Jin,Shuaixun Xiao,Min Wang
标识
DOI:10.1177/08927057261425183
摘要
The growing demand for automotive lightweighting and eco-efficient manufacturing calls for high-performance structural composites that also offer reparability. This study introduces a repairable composite leaf spring made from a bio-based thermoplastic polyamide (PA56), leveraging its intrinsic thermal repair capability to enable damage recovery through hot-pressing. A rapid hot-press forming process was developed by integrating Classical Lamination Theory (CLT) with Finite Element Analysis (FEA) for stiffness prediction, supported by experimental validation. This approach reduced processing time by 90% compared to conventional thermosets, implying a significant potential for reducing manufacturing energy consumption. The resulting leaf springs retained 93.3% of the quasi-static stiffness and 83.5% of the strength of epoxy-based counterparts. Regarding rate-dependent response, they exhibited a 58% higher strain rate sensitivity and reduced hysteretic energy dissipation to just one-sixth of that observed in epoxy springs at high rates. Following hot-press repair, the springs recovered 94.3% of stiffness, 88% of strength, 80% of strain rate sensitivity, and nearly identical hysteretic behavior. This work demonstrates the potential of bio-thermoplastics in creating a repairable and more sustainable pathway for next-generation automotive composite structures.
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