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Modeling and Optimization of Bidirectional Clamping Forces in Drilling of Stacked Aluminum Alloy Plates

机译:叠层铝合金板钻孔双向夹紧力的建模与优化

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摘要

Interlayer burrs formation during drilling of stacked plates is a common problem in the field of aircraft assembly. Burrs elimination requires extra deburring operations which is time-consuming and costly. An effective way to inhibit interlayer burrs is to reduce the interlayer gap by preloading clamping force. In this paper, based on the theory of plates and shells, a mathematical model of interlayer gap with bidirectional clamping forces was established. The relationship between the upper and lower clamping forces was investigated when the interlayer gap reaches zero. The optimization of the bidirectional clamping forces was performed to reduce the degree and non-uniformity of the deflections of the stacked plates. Then, the finite element simulation was conducted to verify the mathematical model. Finally, drilling experiments were carried out on 2024-T3 aluminum alloy stacked plates based on the dual-machine-based automatic drilling and riveting system. The experimental results show that the optimized bidirectional clamping forces can significantly reduce the burr heights. The work in this paper enables us to understand the effect of bidirectional clamping forces on the interlayer gap and paves the way for the practical application.
机译:在堆叠板的钻孔期间形成层间毛刺是飞机组装领域中的常见问题。消除毛刺需要额外的去毛刺操作,这既费时又昂贵。抑制夹层毛刺的有效方法是通过预加载夹紧力来减小夹层间隙。本文基于板壳理论,建立了具有双向夹持力的层间间隙数学模型。当层间间隙达到零时,研究上下夹持力之间的关系。进行了双向夹紧力的优化,以减小堆叠板的偏转程度和不均匀性。然后,进行了有限元模拟以验证数学模型。最后,在基于双机自动钻孔铆接系统的2024-T3铝合金叠层板上进行了钻孔实验。实验结果表明,优化的双向夹紧力可以显着降低毛刺高度。本文的工作使我们能够了解双向夹持力对夹层间隙的影响,并为实际应用铺平了道路。

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