Tailored Heat Treated Profiles - Enhancement of the Forming Limit of Aluminum Profiles under Bending Load

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Abstract:

Aluminum profiles are well-established components in lightweight constructions. However, these profiles have a small forming capability in comparison to steel profiles, which leads to a limitation in their application. Within this paper a new and innovative approach for the enhancement of the forming limit of aluminum profiles under bending load called Tailored Heat Treated Profiles (THTP) is presented. With THTP the mechanical properties of the material are locally modified by a short-term heat treatment. By this local modification the material flow during the following cold bending operation can be influenced. For the design of the heat treatment layout, the correlation between the heat treatment parameters and the material properties has to be investigated. Tensile specimens were cut out of the profile and were subsequently completely heat treated with a laser. The changes of the mechanical properties caused by the heat treatment were analyzed by tensile tests. However, with a complete softening of the profile, the formability could not be improved. To increase the formability a local heat treatment, which leads to partial softening of the profile, has to be investigated. In order to characterize the heat-affected zone (HAZ) of the laser treatment, thermal camera and microhardness measurements were carried out. Appropriate heat treatment layouts have to be found to enhance the forming limit. Different layout strategies were developed and afterwards validated by the heat treatment and forming of profiles. This paper will present the findings of this investigation and show that THTP can be used to improve the formability of aluminum profiles for bending operations.

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Key Engineering Materials (Volumes 504-506)

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375-380

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February 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Kleiner, M.; Geiger, M.; Klaus, M.: Manufacturing of lightweight components by metal forming. Annals of the CIRP 52 (2003) 2, pp.521-542

DOI: 10.1016/s0007-8506(07)60202-9

Google Scholar

[2] Edwards, G. A.; Stiller, K.; Dunlop, G. L.; Couper, M. J.: The precipitation sequence in Al-Mg-Si alloys. Acta mater 46 (1998) 11, pp.3893-3904

DOI: 10.1016/s1359-6454(98)00059-7

Google Scholar

[3] Haase, C.; Wurst, H.: Zur Frage der Kalt- und Warmaushärtung bei Aluminium-Magnesium-Silizium-Legierungen. Z. Metallkunde 33 (1941), pp.399-403

DOI: 10.1515/ijmr-1941-331204

Google Scholar

[4] Dirks, F.-J.: Tiefziehen vorverfestigter und partiell geglühter Ronden aus Aluminium und Aluminiumlegierungen, Technische Universität Berlin, (1971)

Google Scholar

[5] Geiger, M.; Merklein M.; Kerausch, M.: Finite Element Simulation of Deep Drawing of Tailored Heat Treated Blanks. CIRP Annals - Manufacturing Technology 53 (2004) 1, pp.223-226

DOI: 10.1016/s0007-8506(07)60684-2

Google Scholar

[6] Hogg, M.: Herstellung und Umformung lokal wärmebehandelter Platinen. Institut für Umformtechnik der Universität Stuttgart, Frankfurt: DGM Informationsgesellschaft mbH, (2006)

Google Scholar

[7] Staud, D.; Merklein, M.: Inverse Approach to the Forming Simulation of Tailored Heat Treated Blanks. In: International Journal of Material Forming (2008), pp.1-4

DOI: 10.1007/s12289-008-0050-z

Google Scholar

[8] Geiger, M.; Merklein, M.; Vogt, U.: Aluminum tailored heat treated blanks. Production Engineering 3 (2009) 4-5, pp.401-410

DOI: 10.1007/s11740-009-0179-8

Google Scholar