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机械预处理对碳纤维增强塑料/环氧树脂接头损伤机制及断裂韧性的影响

Effect of Mechanical Pretreatments on Damage Mechanisms and Fracture Toughness in CFRP/Epoxy Joints.

作者信息

Morano Chiara, Tao Ran, Alfano Marco, Lubineau Gilles

机构信息

Department of Mechanical, Energy and Management Engineering, University of Calabria, 87036 Rende, Italy.

COHMAS Laboratory, Physical Sciences and Engineering Division (PSE), King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.

出版信息

Materials (Basel). 2021 Mar 19;14(6):1512. doi: 10.3390/ma14061512.

Abstract

Adhesive bonding of carbon-fiber-reinforced polymers (CFRPs) is a key enabling technology for the assembly of lightweight structures. Surface pretreatment is necessary to remove contaminants related to material manufacturing and ensure bond reliability. The present experimental study focuses on the effect of mechanical abrasion on the damage mechanisms and fracture toughness of CFRP/epoxy joints. The analyzed CFRP plates were provided with a thin layer of surface epoxy matrix and featured enhanced sensitivity to surface preparation. Various degrees of morphological modification and fairly controllable carbon fiber exposure were obtained using sanding with emery paper and grit-blasting with glass particles. In the sanding process, different grit sizes of SiC paper were used, while the grit blasting treatment was carried by varying the sample-to-gun distance and the number of passes. Detailed surveys of surface topography and wettability were carried out using various methods, including scanning electron microscopy (SEM), contact profilometry, and wettability measurements. Mechanical tests were performed using double cantilever beam (DCB) adhesive joints. Two surface conditions were selected for the experiments: sanded interfaces mostly made of a polymer matrix and grit-blasted interfaces featuring a significant degree of exposed carbon fibers. Despite the different topographies, the selected surfaces displayed similar wettability. Besides, the adhesive joints with sanded interfaces had a smooth fracture response (steady-state crack growth). In contrast, the exposed fibers at grit-blasted interfaces enabled large-scale bridging and a significant R-curve behavior. While it is often predicated that quality composite joints require surfaces with a high percentage of the polymer matrix, our mechanical tests show that the exposure of carbon fibers can facilitate a remarkable toughening effect. These results open up for additional interesting prospects for future works concerning toughening of composite joints in automotive and aerospace applications.

摘要

碳纤维增强聚合物(CFRP)的粘接是轻质结构组装的一项关键使能技术。进行表面预处理以去除与材料制造相关的污染物并确保粘接可靠性。本实验研究聚焦于机械磨损对CFRP/环氧树脂接头损伤机制和断裂韧性的影响。所分析的CFRP板带有一层薄的表面环氧基体,并且对表面处理具有更高的敏感性。通过用砂纸打磨和用玻璃颗粒喷砂处理,获得了不同程度的形态改性和相当可控的碳纤维暴露情况。在打磨过程中,使用了不同粒度的碳化硅砂纸,而喷砂处理则通过改变样品与喷枪的距离和喷砂次数来进行。使用包括扫描电子显微镜(SEM)、接触轮廓仪和润湿性测量在内的各种方法,对表面形貌和润湿性进行了详细的调查。使用双悬臂梁(DCB)粘接接头进行力学测试。实验选择了两种表面条件:主要由聚合物基体构成的打磨界面和具有大量暴露碳纤维的喷砂界面。尽管形貌不同,但所选表面显示出相似的润湿性。此外,具有打磨界面的粘接接头具有平滑的断裂响应(稳态裂纹扩展)。相比之下,喷砂界面处暴露的纤维能够实现大规模桥接并呈现出显著的R曲线行为。虽然通常认为高质量的复合材料接头需要聚合物基体占比高的表面,但我们的力学测试表明,碳纤维的暴露可以促进显著的增韧效果。这些结果为未来关于汽车和航空航天应用中复合材料接头增韧的研究开辟了更多有趣的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/113f/8003795/0f1aa3380a4e/materials-14-01512-g0A1.jpg

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