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The Influence of Clamping Pressure on Joint Formation and Mechanical Performance of Ti6Al4V/CF-PEEK Friction-Riveted Joints

机译:夹紧压力对Ti6Al4V / CF-PEEK摩擦铆接接头的接头形成和力学性能的影响

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摘要

This work aims at investigating the influence of pre-set clamping pressure on the joint formation and mechanical strength of overlapping direct-friction-riveted joints. A pneumatic fixture device was developed for this work, with clamping pressure varying from 0.2 MPa to 0.6 MPa. A case study on overlapping joints using Ti6Al4V rivets and woven carbon fiber-reinforced polyether-ether-ketone (CF-PEEK) parts were produced. Digital image correlation and microscopy revealed the expected compressive behavior of the clamping system and the continuous pressure release upon the joining process owing to the rivet plastic deformation and the polymer squeezing flow. Two preferential paths of material flow were identified through the alternate replacement of the upper and lower composite parts by a poly-methyl-methacrylate (PMMA) plate—the composite upward and squeezing flow between the parts which induced their separation. The ultimate lap shear forces up to 6580 ± 383 N were achieved for the direct-friction-riveted CF-PEEK overlap joints. The formation of a gap to accommodate squeezed polymer between the composite parts during the process had no influence on the joint mechanical performance. The increase in the clamping pressure for joints produced with a low friction force did not affect the joint-anchoring efficiency and consequently the joint strength. On the other hand, the combined effect of a high-friction force and clamping pressure induced the inverted bell shape of the plastically deformed rivet tip, a lower anchoring efficiency, and the delamination of the composite, all of which decrease the mechanical strength by 31%. Therefore, the higher the friction force and clamping pressure, the more defects would be generated in the composite parts and the more changes in the shape of the plastically deformed rivet tip, leading to a lower level of quasi-static mechanical performance. All the joints failed by initial bearing of the composite and final rivet pull-out. The findings of this work can contribute to further improvement of the clamping design for industrial application.
机译:这项工作旨在调查预设的夹紧压力对重叠的直接摩擦铆接接头的接头形成和机械强度的影响。为此,开发了一种气动夹具装置,其夹紧压力在0.2 MPa至0.6 MPa之间变化。以Ti6Al4V铆钉和碳纤维增强聚醚醚酮(CF-PEEK)编织件为例,研究了搭接接头的情况。数字图像相关性和显微镜显示,由于铆钉塑性变形和聚合物挤压流动,在夹紧过程中夹紧系统具有预期的压缩性能,并在连接过程中连续释放压力。通过用聚甲基丙烯酸甲酯(PMMA)板交替替换上部和下部复合材料零件,确定了两条优先的材料流动路径-复合材料向上流动并挤压零件之间的流动,从而导致分离。对于直接摩擦铆接的CF-PEEK搭接接头,最高搭接剪切力达到了6580±383N。在此过程中,在复合部件之间形成间隙以容纳被挤压的聚合物不会影响接头的机械性能。以低摩擦力生产的接头的夹紧压力的增加不会影响接头的锚固效率,因此不会影响接头强度。另一方面,高摩擦力和夹紧压力的共同作用导致塑性变形的铆钉头的倒钟形,较低的锚固效率和复合材料的分层,所有这些都会使机械强度降低31 %。因此,摩擦力和夹紧压力越高,复合部件中产生的缺陷就越多,塑性变形的铆钉头的形状变化也就越大,从而导致准静态机械性能的降低。复合材料的初始承压和最终的铆钉拉拔都使所有接头失效。这项工作的发现可有助于进一步改进工业应用的夹紧设计。

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