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添加铜纳米颗粒对环氧基胶粘剂及其粘附性能的影响。

The effect of Cu nanoparticle adding on to epoxy-based adhesive and adhesion properties.

机构信息

Mechanical Engineering Department, Necmettin Erbakan University, Konya, Turkey.

出版信息

Sci Rep. 2020 Jul 6;10(1):11038. doi: 10.1038/s41598-020-68162-4.

Abstract

Epoxy-based adhesives are widely used for repairing or jointing the metal sheets in the industry. Because of their superior mechanical properties, the metallic nanoparticles can be selected as the additive of the epoxy adhesive. The strength of the Cu nanoparticles (CuNPs) can be expected to improve the mechanical properties of neat epoxy. In this study, CuNPs were added at various weight ratios, such as 1, 2, 5, 10, 15, and 20% into the epoxy resin adhesive. Tensile tests of the dog-bone specimens and the lap-shear tensile tests of the single lap joints were performed for obtaining the mechanical properties. In order to investigate the failure mechanisms, the fractured surfaces of the tensile test samples and adhesively joined sheets were imaged by using a Scanning Electron Microscope. The thermal properties of the adhesives were obtained by using Thermo Gravimetric Analysis and Differential Thermal Analysis. The mechanical and thermal properties of epoxy resin adhesive were improved by adding the CuNPs. The best adding ratios of CuNPs into epoxy were obtained by both mechanical and thermally point of views. As a result of this study, 15 wt% the ratio of Cu nanoparticle adding into the epoxy-based adhesive is suitable for improving the mechanical properties. On the other hand, 20% is the proper Cu nanoparticle adding ratio for the thermal properties improving.

摘要

环氧基胶粘剂在工业上广泛用于修复或连接金属板材。由于其优异的机械性能,可以选择金属纳米颗粒作为环氧胶粘剂的添加剂。预计铜纳米颗粒(CuNPs)的加入能提高纯环氧树脂的机械性能。在本研究中,将CuNPs以1%、2%、5%、10%、15%和20%等不同重量比添加到环氧树脂胶粘剂中。对狗骨形试样进行拉伸试验,并对单搭接接头进行搭接剪切拉伸试验,以获得其机械性能。为了研究失效机理,使用扫描电子显微镜对拉伸试验样品和粘结板材的断裂表面进行成像。通过热重分析和差热分析获得胶粘剂的热性能。添加CuNPs提高了环氧树脂胶粘剂的机械和热性能。从机械和热性能两个角度都得出了CuNPs在环氧树脂中的最佳添加比例。本研究结果表明,向环氧基胶粘剂中添加15 wt%的铜纳米颗粒适合于提高机械性能。另一方面,20%是提高热性能的合适铜纳米颗粒添加比例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b8f/7338459/b8f64738e035/41598_2020_68162_Fig1_HTML.jpg

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