Technical Papers
May 28, 2014

Riveting Sequence Study of Horizontal Stabilizer Assembly Using Finite-Element Analysis and Riveting Equivalent Unit

Publication: Journal of Aerospace Engineering
Volume 27, Issue 6

Abstract

Ribs and edges are the typical deformable aluminum components of the horizontal stabilizer. Riveting is the most common method of joining ribs and edges. Riveting bulging is unavoidable but extremely undesirable in the aircraft assembly. When the bulging effects of rivets coupling, there will be deformation in the aircraft’s structure. Riveting sequence is one important approach to eliminate the coupling effect of the bulging and control the deformation of the aircraft structure. Riveting sequence study of horizontal stabilizer assembly was conducted using finite element method. A riveting equivalent unit is proposed and employed to analyze the deviation induced by different riveting sequences. Equivalent unit for riveting brings a good balance between accuracy and the computational efficiency in finite element analyzing. The results have shown that different riveting sequence results in different dimensional quality, and an optimal riveting sequence of the trailing edge is obtained. It will enhance the understanding of the compliant components assembly with riveting and help systematically improving the precision control efficiency in civil aircraft assembly.

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Acknowledgments

In this article, we show several graphics to explain our method, but we do not need any of them for making practical computation. This work was supported by the National Natural Science Foundation of China (Grant No. 51275308), the National Basic Research Program of China (Grant No. 2010CB731703) and Fund of National Engineering and Research Center for Commercial Aircraft Manufacturing, China (SAMC13-JS-15-025). The author is also grateful to Mr. Xin Ding conducted the FEA and provided some data and materials in the paper.

References

Aman, F., Cheraghi, S. H., Krishnan, K. K., and Lankarani, H. (2012). “Study of the impact of riveting sequence, rivet pitch, and gap between sheets on the quality of riveted lap joints using finite element method.” Int. J. Adv. Manuf. Technol., 67(1–4), 1–18.
Atre, A., and Johnson, W. S. (2007). “Effect of Interference on the mechanics of load transfer in aircraft fuselage lap joint.” Trans. ASME, J. Eng. Mater. Technol., 129(3), 356–366.
Ceglarek, D., and Shi, J. (1998). “Design evaluation of sheet metal joints for dimensional integrity.” Trans. ASME, J. Eng. Mater. Technol., 120(2), 452–460.
Chang, M., and Gossard, D. (1997). “Modelling the assembly of compliant, non-ideal parts.” Comput. Aided Des., 29(10), 701–708.
Hsieh, C. C., and Oh, K. P. (1997). “Simulation and optimization of assembly processes involving flexible parts.” Int. J. Veh. Des., 18(5), 455–465.
Hu, M., Lin, Z. Q., and Chen, G. L. (2001). “Simulation and analysis of assembly processes considering compliant, non-ideal parts and tooling variations.” Int. J. Mach. Tools Manuf., 41(15), 2233–2243.
Hu, S. J., and Koren, Y. (1997). “Stream-of-variation theory for automotive body assembly.” CIRP Annals—Manuf. Technol., 46(1), 1–6.
Liu, S. C., and Hu, S. J. (1995). “An offset finite element model and its applications in predicting sheet metal assembly variation.” Int. J. Mach. Tools Manuf., 35(11), 1545–1557.
Liu, S. C., and Hu, S. J. (1997). “Variation simulation for deformable sheet metal assemblies using finite element methods.” J. Manuf. Sci. Eng., 119(3), 369–374.
Liu, S. C., Hu, S. J., and Woo, T. C. (1996). “Tolerance analysis for sheet metal assemblies.” J. Mech. Des., 118(1), 62–67.
Luo, Z., and Shang, B. (1994). The theory and technology of metal plastic processing, Northwestern Polytechnical University Press, Xi’an.
Manes, A., Giglio, M., and Vigano, F. (2011). “Effect of riveting process parameters on the local stress field of a T-joint.” Int. J. Mech. Sci., 53(12), 1039–1049.
Saadat, M. (2011). “Challenges in the assembly of large aerospace components.” Integr. Syst. Des. Technol., 1, 37–46.
Saadat, M., Cretin, L., Sim, R., and Najafi, F. (2009). “Deformation analysis of large aerospace components during assembly.” Int. J. Adv. Manuf. Technol., 41(1–2), 145–155.
Saadat, M., Sim, R., and Najafi, F. (2007). “Prediction of geometrical variations in Airbus wingbox assembly.” Assembly Autom., 27(4), 324–332.
Sim, R., Saadat, M., and Najafi, F. (2008). “Prediction of variation in wingbox assembly operation by finite element method.” World Automation Congress, IEEE.
Takezawa, N. (1980). “An improved method for establishing the process wise quality standard.” Reports of Statistical and Applied Research, Union of Japanese Scientists and Engineers, 27(3), 63–76.
Wang, H., and Ding, X. (2012). “Identifying sources of variation in horizontal stabilizer assembly induced by rib using finite element analysis and full factorial design method.” J. Aerosp. Eng.,.
Wang, H., and Ding, X. (2013). “Identifying sources of variation in horizontal stabilizer assembly using finite element analysis and principal component analysis.” Assembly Autom., 33(1), 86–96.
Xia, P., Tang, Y., and Wu, A. (2003). “Prestressed analysis and calculation on rivets in riveted structure.” Machine, 30(4), 44–45.

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Published In

Go to Journal of Aerospace Engineering
Journal of Aerospace Engineering
Volume 27Issue 6November 2014

History

Received: Apr 8, 2013
Accepted: Jul 9, 2013
Published online: May 28, 2014
Discussion open until: Oct 28, 2014
Published in print: Nov 1, 2014

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Authors

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Associate Professor, Shanghai Key Laboratory of Digital Manufacture for Thin-Walled Structures, Shanghai Jiao Tong Univ., Shanghai 200240, P.R. China; State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong Univ., Shanghai 200240, P.R. China; and School of Mechanical Engineering, Shanghai Jiao Tong Univ., No. 800 Dongchuan Rd., Shanghai 200240, China. E-mail: [email protected]

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