Gohel Goram, Soh Chun Zhi, Leong Kah Fai, Gerard Pierre, Bhudolia Somen K
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.
Groupement de Recherche de Lacq, Arkema, Route Départementale 817, BP 34, 64170 Lacq, France.
Polymers (Basel). 2022 May 2;14(9):1862. doi: 10.3390/polym14091862.
The joining of composites can be performed in an extremely short time with more energy-efficient ultrasonic welding techniques. The current research investigated the performance optimization of ultrasonic welding of carbon/Elium composite to carbon/epoxy composite using a polymethyl methacrylate (PMMA) coupling interlayer. The weld strength was quantified by static lap shear strength (LSS) testing. A new methodology was used by creating a PMMA coupling layer on the epoxy composite adherend to achieve an improved interphase and thus enhance the weld properties. The LSS of Elium (EL)-Epoxy (EP) _0.25_0.25 was found to be 190% higher compared to that of EL-EP, confirming the effectiveness of the strategy used for creating an interlayer thermoplastic coupling layer. The time required for welding was optimized to be 2s as compared to 10 min required for adhesive bonding. Scanning electron microscopic images of epoxy and PMMA/Elium matrix interphase were observed to have a rough surface and remained largely unaffected by welding. There was an interphase change further away from the interphase to a rougher texture. There was little to no effect on the penultimate layer on the weld strength, as no interphase change could be observed after welding. Fractography investigation revealed shear cusps, matrix plastic deformation, fiber imprints, fiber pull-out, and good adhesion between matrix and fiber, features seen for configuration with maximum LSS. The current research findings present a way to join Elium with epoxy composites that could be used in applications that require a selective strengthening, such as in sporting goods and consumer products. Furthermore, a detailed investigation is ongoing to use different filler particles and coupling layers to reach the maximum welding performance.
采用更节能的超声波焊接技术,复合材料的连接可在极短时间内完成。当前研究使用聚甲基丙烯酸甲酯(PMMA)耦合中间层,对碳/埃lium复合材料与碳/环氧树脂复合材料的超声波焊接性能优化进行了研究。通过静态搭接剪切强度(LSS)测试对焊接强度进行了量化。采用了一种新方法,即在环氧树脂复合材料被粘物上创建一个PMMA耦合层,以实现改善的界面相,从而提高焊接性能。发现埃lium(EL)-环氧树脂(EP)_0.25_0.25的LSS比EL-EP的LSS高190%,证实了用于创建中间层热塑性耦合层的策略的有效性。与胶粘剂粘结所需的10分钟相比,焊接所需时间优化为2秒。观察到环氧树脂和PMMA/埃lium基体界面相的扫描电子显微镜图像表面粗糙,且在很大程度上未受焊接影响。从界面相进一步向外有一个界面相变化,变为更粗糙的纹理。对倒数第二层对焊接强度几乎没有影响,因为焊接后未观察到界面相变化。断口分析显示有剪切尖点、基体塑性变形、纤维印记、纤维拔出以及基体与纤维之间良好的粘附,这些特征在具有最大LSS的配置中可见。当前的研究结果提出了一种将埃lium与环氧树脂复合材料连接的方法,该方法可用于需要选择性强化的应用中,如体育用品和消费品。此外,正在进行详细研究,以使用不同的填料颗粒和耦合层来达到最大焊接性能。