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Effect of surface roughness and chemistry on the adhesion and durability of a steel-epoxy adhesive interface

机译:表面粗糙度与化学对钢 - 环氧粘合界面粘附及耐久性的影响

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This work focuses on the effect of surface roughness and surface chemistry on the initial adhesion strength and corrosive de-adhesion properties of adhesive bonds. The adherend used in this study is a S690 low-alloy steel whereas the adhesive is a 2-component epoxy-amine adhesive (Araldite 2015). The steel surface is subjected to different surface pre-treatment methods such as mechanical abrasion, grit blasting, zirconium conversion treatment and silane treatment. The effect of these different pre-treatments on the surface morphology, roughness and chemistry is addressed. Single-lap joint tests were performed at ambient conditions to assess the initial bond strength of the joint. Static wedge tests were performed in saltwater immersions to study the environmental ageing of the adhesive joints. Unloaded delamination of adhesive films from the steel surface was studied by means of scanning Kelvin probe (SKP) at high relative humidity. This unique combination of different techniques allows thorough evaluations of the bond performance under different environmental and loading conditions. Experimental results indicate that surface roughening plays an important role in the initial adhesion in the single-lap joint test but a minor role in the durability of the bonded steel surfaces. The improved initial adhesion is mainly attributed to the increased interfacial bond area at higher surface roughness. The presence of complex texture or morphology shows a more profound effect than the average roughness on both the initial adhesion and the durability of the interfacial adhesion. The results from the static wedge test show the large contribution of mechanical interlocking, caused by texturing of the surface, on the durability of the interfacial adhesion. In the absence of complex texture, surfaces with altered chemistry by zirconium- or silane treatment exhibit a significant increase of the initial bonding strength due to enhanced physicochemical interactions across the interface. Assessment of the interfacial delamination kinetics by SKP show that despite the absence of any surface topography, chemically altered surfaces prove to have higher resistance to delamination.
机译:这项工作侧重于表面粗糙度和表面化学对粘合剂键初始粘合强度和腐蚀性去粘附性能的影响。本研究中使用的粘物是S690低合金钢,而粘合剂是2组分环氧 - 胺粘合剂(Araldite 2015)。钢表面经受不同的表面预处理方法,例如机械磨损,砂砾喷射,锆转化处理和硅烷处理。这些不同预治疗对表面形态,粗糙度和化学的影响是解决的。在环境条件下进行单圈接头试验,以评估关节的初始粘合强度。在盐水沉浸层中进行静态楔形试验,以研究粘合剂的环境老化。通过在高相对湿度下扫描开尔文探针(SKP)来研究来自钢表面的粘合剂膜的卸载分层。不同技术的这种独特组合允许在不同的环境和装载条件下对债券性能进行全面评估。实验结果表明,表面粗糙化在单圈关节试验中的初始粘附中起重要作用,但在粘合钢表面的耐久性中的次要作用中的次要作用。改进的初始粘附性主要归因于较高表面粗糙度下的界面粘结面积增加。复杂纹理或形态的存在比初始粘合性和界面粘合性的耐久性的平均粗糙度更深刻。静态楔形试验的结果显示了由表面纹理引起的机械互锁的大贡献,在界面粘附的耐用性上。在没有复杂的纹理的情况下,由于界面上增强的物理化学相互作用,锆或硅烷处理具有改变的化学物质的表面显着增加了初始粘合强度。通过SKP评估界面分层动力学表明,尽管没有任何表面形貌,但化学改变的表面证明具有更高的分层抗性。

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