Basic Investigations of Non-Pre-Punched Joining by Forming of Aluminium Alloy and High Strength Steel with Shear-Clinching Technology

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Facing a decreasing amount of resources on the one hand and an increasing demand for comfort on the other, more and more attention is being paid to sustainability and care for the environment. Particularly in the automotive sector, lightweight design principles continue to prosper rapidly. As a result, adjusted materials for different applications were developed. Due to the formation of intermetallic phases, most multi-material mixes cannot be welded and require adapted joining technologies. Mechanical joining technologies such as self-piercing riveting and mechanical clinching have proven effective methods of joining lightweight materials like aluminium and ductile steels. New high-strength steels are increasingly used in crash-sections, where limited deformation under impact load is required. These hot stamped steels have a very low elongation at break and therefore a low formability. Currently there is no joining by forming technology without pre-punching available using these grades of steels on die-side. The newly developed shear-clinching process is one possible method of joining this kind of material without additional elements. The fundamental idea of shear-clinching is a single-stage process in which pre-punching of the die-side material is performed by indirect shear-cutting and subsequent forming of the upper layer into this hole. This would immensely enlarge the application segment of mechanical clinching even if hot stamped steels are positioned on die-side. Fundamental studies are required to ensure process reliability and it is necessary to break down the joining process into fragments, like pre-punching and clinching with pre-punched sheet, and superpose them to form the combined procedure shear-clinching. This paper presents a detailed investigation of the sub-process clinching with pre-hole.

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Key Engineering Materials (Volumes 611-612)

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1413-1420

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May 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] ISO 669: 2000, Resistance welding - Resistance welding equipment - Mechanical and electrical requirements.

Google Scholar

[2] K. Mori, T. Kato, Y. Abe, Y. Ravshanbek, Plastic Joining of Ultra High Strength Steel and Aluminium Alloy Sheets by Self Piercing Rivet, CIRP Annals - Manufacturing Technology 55(1), 2006, p.283–286.

DOI: 10.1016/s0007-8506(07)60417-x

Google Scholar

[3] S. Busse, M. Merklein, K. Roll, Development of a Mechanical Joining Process for Automotive Body-In-White Production, International Journal of Material Forming, Volume 3, 2010, p.1059–1062.

DOI: 10.1007/s12289-010-0953-3

Google Scholar

[4] O. Hahn, U. Klemens, Fügen durch Umformen: Nieten und Durchsetzfügen – Innovative Verbindungsverfahren für die Praxis, e. V. Dokumentation 707, (1996).

Google Scholar

[5] Y. Abe, A. Matsuda, T. Kato, K. Mori, Plastic Joining of AluminiumAlloy and High Strength Steel Sheets by Mechanical Clinching, SteelResearch International, Special Edition 79(1), 2008, p.649–657.

Google Scholar

[6] C. -J. Lee, Parametric study on mechanical clinching process for joining aluminum alloy and high-strength steel sheets, Journal of Mechanical Science and Technology 24, 2010, p.123–126.

DOI: 10.1007/s12206-009-1118-5

Google Scholar

[7] M. Lai, R. Brun, Latest Developments in Sheet Metal Forming Technology and Materials for Automotive Application: the Use of Ultra High Strength Steels at Fiat to Reach Weight Reduction at Sustainable Costs, Key Engineering Materials 344, 2007, p.1.

Google Scholar

[8] Y. Abe, K. Mori, T. Kato, Joining of high strength steel and aluminium alloy sheets by mechanical clinching with dies for control of metal flow, Journal of Materials Processing Technology, 2012, p.884–889.

DOI: 10.1016/j.jmatprotec.2011.11.015

Google Scholar

[9] S. Busse, M. Merklein, K. Roll, M. Zürn, H. Schubert, Numerical and Experimental Investigations of an Innovative Clinching Process, Proceedings of the 10th International Conference on Technology of Plasticity (ICTP), Düsseldorf, 2011, p.736–741.

Google Scholar

[10] Letsch, S.; Meschut, G.; Kuting, J.; Peitz, V. et al: "Mechanische Fügetechnik für die Mischbauweise, Teil 2 – Neuartige Fügeverfahren -, Schweißen und Schneiden 56, 2004, Nr. 10, pp.518-526.

Google Scholar

[11] M. Merklein, G. Meschut, M. Müller, R. Hörhold, Grundlegende Untersuchungen zur Verbindung von pressgehärtetem Stahl und Aluminium mittels Schneidclinchen. In: Technical University of Dresden (Edtr. ): Proceedings of the 20th SFU Conference, 2013, pp.63-72.

Google Scholar

[12] R. v. Mises, Mechanik der festen Körper im plastisch-deformablen Zustand, Nachrichten von der Gesellschaft der Wissenschaften zu Göttingen, Mathematisch-Physikalische Klasse, Vol., 1913, pp.582-592.

DOI: 10.1002/ange.19390522011

Google Scholar

[13] J. E. Hockett, O. E. Sherby, Large strain deformation of polycrystalline metals at low homologous temperatures, J. Mech. Phys. Solid, 23-2, 1975, p.87–98.

DOI: 10.1016/0022-5096(75)90018-6

Google Scholar

[14] M.W. Swift, Plastic instability under plane stress, J. Mech. Phys. Solid, 1, 1952, pp.1-18.

Google Scholar

[15] E. Voce, The relationship between stress and strain for homogeneous deformation, J. Int. Metals, 74, 1948, p.537–562.

Google Scholar