Ciardiello Raffaele, Boursier Niutta Carlo, Tridello Andrea
Department of Mechanical and Aerospace Engineering, Politecnico di Torino, 10129 Turin, Italy.
Polymers (Basel). 2025 Jan 8;17(2):141. doi: 10.3390/polym17020141.
This paper experimentally investigates the impact response of composite laminates made with conventional and bio-based epoxy resin. Drop tower impact tests were conducted at varying energy levels, including repeated low-energy impacts, to evaluate perforation resistance. The laminates' residual strength and damage tolerance were assessed using the Damage Index (DI) and by analysing the resonance frequency variations through the Impulse Excitation Technique (IET). The study demonstrates a strong correlation between the DI and the resonance frequencies of the specimens, suggesting that IET can effectively track damage progression in composite laminates. Bio-based resin laminates exhibited higher energy absorption at perforation and lower damage progression during repeated impacts due to the higher ductility of the resin. This method of using resonance frequencies to assess impact damage progression directly in composite laminates throughout the IET technique has not been previously reported in the literature.
本文通过实验研究了由传统环氧树脂和生物基环氧树脂制成的复合层压板的冲击响应。在不同能量水平下进行了落塔冲击试验,包括重复低能量冲击,以评估抗穿孔性能。使用损伤指数(DI)并通过脉冲激励技术(IET)分析共振频率变化来评估层压板的残余强度和损伤容限。研究表明,DI与试样的共振频率之间存在很强的相关性,这表明IET可以有效地跟踪复合层压板中的损伤进展。由于树脂具有较高的延展性,生物基树脂层压板在穿孔时表现出更高的能量吸收,并且在重复冲击期间损伤进展较低。此前文献中尚未报道过通过IET技术直接在复合层压板中使用共振频率来评估冲击损伤进展的这种方法。