利用空间塑形飞秒激光快速制作表面图案,加强碳纤维增强聚合物的粘合力

Yanping Yuan, Xiaoran Guo, Huiyu He, Kaihu Zhang, Weina Han
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引用次数: 0

摘要

碳纤维增强聚合物(CFRP)因其出色的强度重量比,已逐渐成为航空航天工业的重要材料。然而,由于碳纤维增强聚合物的各向异性和非均质特性,传统的机械表面处理方法很难应用于碳纤维增强聚合物。飞秒激光在表面处理方面具有独特的优势,因为它的作用时间极短,可以在极低的热负荷下进行处理。本研究探讨了使用飞秒激光进行表面处理所产生的不同表面结构对 CFRP 粘合性能的影响。实验结果表明1) 使用平凸圆柱镜可以实现光束整形,从而提高激光加工质量,大大提高加工效率。完成 1 cm*1 cm 面积的激光加工仅需 20 秒,工作效率提高了 49 倍。2) 预粘接表面处理显著提高了单搭接接头的拉伸剪切强度,低空间频率 LIPSS(LSFL)样品的剪切强度(14.57 ± 1.58 MPa)是未处理样品(US)(4.92 ± 1.34 MPa)的 2.96 倍。3) LSFL 结构的效果最好,因为带有 LSFL 的 CFRP 表面具有相对较高的表面极性和表面能。本研究为 CFRP 的粘接制备提供了一种高效、高精度、低损伤的表面处理方法,可促进飞秒激光技术在难加工复合材料中的应用,为其在航空航天、车辆制造等领域的应用提供新的方法和技术支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid surface patterning to strengthen adhesive bonding of carbon fiber reinforced polymer by spatial shaping femtosecond laser
Carbon fiber reinforced polymer (CFRP) have become gradually important in the aerospace industry due to their outstanding strength-to-weight ratio. However, traditional mechanical surface treatment methods are challenging to apply to CFRP because of their anisotropic and nonhomogeneous properties. Femtosecond laser offers unique advantages for surface treatment, as it allows processing with very low thermal load due to the extremely short interaction time. This study investigates the effect of different surface structures resulting from surface treatment using a femtosecond laser on adhesive properties of CFRP. The experimental results show that: 1) beam shaping can be realized by using the plano-convex cylindrical mirror, which improves the quality of laser processing and greatly improves processing efficiency. It only takes 20 s to complete the laser processing of a 1 cm*1 cm area, which increases the work efficiency by 49 times. 2) pre-bonding surface treatment significantly enhances the tensile shear strength of the single lap joint, and the shear strength of samples with low spatial frequency LIPSS (LSFL) (14.57 ± 1.58 MPa) is 2.96 times higher than that of the untreated sample (US) (4.92 ± 1.34 MPa). 3) LSFL structure exhibits the best results, because the surface of CFRP with LSFL exhibits a relatively higher surface polarity and surface energy. This study provides an efficient, high-precision, and low-damage surface treatment method for preparing CFRP for adhesive bonding, which may promote the application of femtosecond laser technology in difficult-to-process composite materials and provide new methods and technical support for its application in aerospace, vehicle manufacturing, and other fields.
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