Effective suppression of machining-induced interlayer damage in machined holes of Al/CFRP stacks

IF 5.3 Q2 MATERIALS SCIENCE, COMPOSITES
Balázs Markó , Szilárd Seprős , Jinyang Xu , Norbert Geier
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Abstract

Aluminium/carbon fibre reinforced polymer (Al/CFRP) composite stacks combine the high strength-to-weight ratio of the CFRP with the ductility and impact resistance of aluminium. Due to their excellent mechanical properties, Al/CFRP stacks are becoming increasingly popular in major industrial fields such as aerospace and automotive. However, mechanical machining of these materials, particularly at the interlayer regions, presents significant challenges, notably the formation of interlayer burrs. To address this issue, we introduce an innovative hole-making technology designed to minimise machining-induced interlayer burr formation. The novel technology integrates helical and spiral interpolation strategies to reduce axial force at the interlayer interfaces. We validated the efficiency of the novel technology through a series of machining experiments, employing a Central Composite Inscribed (CCI) experimental design. The experiments were performed on a three-axis CNC milling centre, with burr measurements obtained using a Keyence VR-5000 3D profilometer. Maximum burr heights were recorded along the hole contours at one-degree intervals. Our findings demonstrate a significant reduction (28 %) in interlayer burr formation in unidirectional carbon fibre-reinforced polymer (UD-CFRP) plates when utilising the proposed technique. These results suggest that our developed method is promising to improve machining quality in Al/CFRP stacks, meriting further investigation and development.
有效抑制Al/CFRP叠层加工孔层间损伤
铝/碳纤维增强聚合物(Al/CFRP)复合材料堆结合了CFRP的高强度重量比和铝的延展性和抗冲击性。由于其优异的机械性能,Al/CFRP叠层在航空航天和汽车等主要工业领域越来越受欢迎。然而,这些材料的机械加工,特别是在层间区域,提出了重大的挑战,特别是层间毛刺的形成。为了解决这个问题,我们引入了一种创新的制孔技术,旨在最大限度地减少加工引起的层间毛刺的形成。该新技术集成了螺旋和螺旋插补策略,以减小层间界面处的轴向力。我们通过一系列的加工实验验证了新技术的效率,采用中心复合材料雕刻(CCI)实验设计。实验在三轴数控铣削中心进行,毛刺测量使用Keyence VR-5000 3D轮廓仪。沿孔轮廓每隔一度记录最大毛刺高度。我们的研究结果表明,当使用所提出的技术时,单向碳纤维增强聚合物(UD-CFRP)板的层间毛刺形成显著减少(28%)。这些结果表明,我们所开发的方法有望提高Al/CFRP叠层的加工质量,值得进一步研究和开发。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Composites Part C Open Access
Composites Part C Open Access Engineering-Mechanical Engineering
CiteScore
8.60
自引率
2.40%
发文量
96
审稿时长
55 days
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