A novel FE model for the sealing performance of aviation flare joints with multiscale factors of manufacturing and assembly

Lichuan Deng, B. Luo, Kaifu Zhang, Hui Cheng, Langkun Lin, B. Liang
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Abstract

The interfacial contact status of a joint determines the sealing performance of an aircraft hydraulic system, which is influenced by inevitable multiscale assembly errors and joint manufacturing deviations. To address these challenges, a novel geometric analysis model was heuristically created that incorporates assembly and manufacturing-related topographies to accurately estimate the initial relative assembly position of joint surfaces. A microscopic contact model was constructed using the reverse reconstruction approach based on measured surface characteristics. Combining the relative position, a multiscale finite element contact model was generated to investigate the impact of each scale topography on the contact state of the seal ring. The experimental data verified the simulated indentation findings, confirming the model's efficacy in estimating contact status and seal performance characteristics. It is found that the flare angle has a more obvious effect on the contact state of the sealing interface, and a 2° difference in angle under the same load can cause a 28.19% difference in contact area, which greatly affects the sealing performance.
航空扩口接头密封性能的新型 FE 模型,包含制造和装配的多尺度因素
接头的界面接触状态决定了飞机液压系统的密封性能,而密封性能又受到不可避免的多尺度装配误差和接头制造偏差的影响。为了应对这些挑战,我们启发式地创建了一个新的几何分析模型,该模型结合了装配和制造相关的拓扑结构,可准确估计接头表面的初始相对装配位置。在测量表面特征的基础上,使用反向重构方法构建了微观接触模型。结合相对位置,生成了多尺度有限元接触模型,以研究各尺度形貌对密封环接触状态的影响。实验数据验证了模拟压痕的结果,证实了该模型在估计接触状态和密封性能特征方面的有效性。实验发现,喇叭口角度对密封界面接触状态的影响更为明显,在相同载荷下,2° 的角度差异会导致 28.19% 的接触面积差异,从而极大地影响密封性能。
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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