Cai Hongda, Lu Wenlong, Ma Jingxuan, Huang Yinyuan, Hu Junfeng
School of Mechanical and Power Engineering, Nanjing Tech University, Nanjing 211800, China.
School of Energy Science and Engineering, Nanjing Tech University, Nanjing 211800, China.
Polymers (Basel). 2024 Mar 24;16(7):890. doi: 10.3390/polym16070890.
Carbon-fiber-reinforced polymer (CFRP) composites are widely used in lightweight structures because of their high specific strength, specific modulus, and low coefficient of thermal expansion. Additionally, the unidirectionally arrayed chopped strand (UACS) laminates have excellent mechanical properties and flowability, making them suitable for fabricating structures with complex geometry. In this paper, the damage process of UACS quasi-isotropic laminates under tensile load was tested using acoustic emission detection technology. The mechanical properties and damage failure mechanism of UACS laminates were studied combined with finite element calculation. By comparing and analyzing the characteristic parameters of acoustic emission signals such as amplitude, relative energy, and impact event, it is found that acoustic emission behavior can accurately describe the damage evolution of specimens during loading. The results show that the high-amplitude signals representing fiber fracture in continuous fiber laminates are concentrated in the last 41%, while in UACS laminates they are concentrated in the last 30%. In UACS laminates, more of the damage is caused by matrix cracks and delamination with medium- and low-amplitude signals, which indicates that UACS laminates have a good suppression effect on damage propagation. The stress-strain curves obtained from finite element analysis agree well with the experiment results, showing the same damage sequence, which confirms that the model described in this research is reliable.
碳纤维增强聚合物(CFRP)复合材料因其高比强度、比模量和低热膨胀系数而广泛应用于轻量化结构中。此外,单向排列短切纤维束(UACS)层压板具有优异的力学性能和流动性,使其适用于制造具有复杂几何形状的结构。本文采用声发射检测技术对UACS准各向同性层压板在拉伸载荷下的损伤过程进行了测试。结合有限元计算研究了UACS层压板的力学性能和损伤失效机制。通过对比分析声发射信号的幅度、相对能量和撞击事件等特征参数,发现声发射行为能够准确描述加载过程中试样的损伤演化。结果表明,连续纤维层压板中代表纤维断裂的高幅度信号集中在最后41%的加载过程中,而在UACS层压板中则集中在最后30%的加载过程中。在UACS层压板中,更多的损伤是由中低幅度信号的基体裂纹和分层引起的,这表明UACS层压板对损伤扩展具有良好的抑制作用。有限元分析得到的应力-应变曲线与实验结果吻合良好,呈现出相同的损伤顺序,证实了本研究中描述的模型是可靠的。