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Rotary ultrasonic machining of carbon fiber reinforced plastic composites: a study on fiber material removal mechanism through single-grain scratching

机译:碳纤维增强塑料复合材料的旋转超声波加工:通过单粒划痕的纤维材料去除机理研究

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摘要

Rotary ultrasonic machining (RUM) has become an effective process for both hole making and surface grinding of carbon fiber reinforced plastic (CFRP) composites. Unlike other brittle materials such as ceramic, glass, silicon, etc., CFRP composites exhibit inhomogeneous and anisotropic properties, thereby resulting in different material removal mechanisms. However, the material removal mechanism in RUM of CFRP is still not clearly recognized in the literature. The lack of such knowledge would significantly limit the optimization and practical applications of RUM technique. In this work, single-grain diamond scratching tests without and with ultrasonic vibration are conducted to study the material removal mechanism in RUM of CFRP. Morphology of scratched groove, cross-sectional profiles, and scratching forces are analyzed. The results indicate that CFRP workpiece is extensively removed by the brittle removal mode, causing matrix damage, severe fiber pull-out, and macro-cracks in the conventional scratching test. Whereas, ultrasonic vibration-assisted scratching of CFRP leads to a larger ductile removal region before the successive brittle fractures and cracks. The fiber-matrix debonding and pullout phenomena are also remarkably reduced with only matrix buckling and fiber breakage occurring within the groove. The obtained results will enrich the understanding of the material removal mechanismin RUM of CFRP and contribute to the improvements of part quality during RUM of CFRP.
机译:旋转超声机加工(朗姆酒)已成为碳纤维增强塑料(CFRP)复合材料的孔制造和表面研磨的有效工艺。与诸如陶瓷,玻璃,硅等的其他脆性材料不同,CFRP复合材料表现出不均匀和各向异性的性质,从而导致不同的材料去除机制。然而,在文献中仍未清楚地识别CFRP中的材料去除机制。缺乏此类知识将显着限制朗姆酒技术的优化和实际应用。在这项工作中,进行了没有和超声波振动的单谷钻石刮擦测试,以研究CFRP朗姆酒中的材料去除机制。分析了划痕槽,横截面剖面和刮擦力的形态学。结果表明,CFRP工件通过脆性去除模式广泛除去,导致常规刮擦试验中的基质损伤,严重纤维拉出和宏观裂纹。然而,在连续的脆性骨折和裂缝之前,CFRP的超声波振动辅助CFRP导致较大的延性去除区域。纤维 - 矩阵剥离和拉出现象也具有显着减少,只有在凹槽内发生矩阵屈曲和纤维破损。得到的结果将丰富了解CFRP的材料去除机制朗姆酒,并有助于CFRP朗姆酒期间的部分质量的改善。

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