Tailored forming technology for three dimensional components: Approaches to heating and forming

Research output: Contribution to conferencePaperResearchpeer review

Authors

  • Bernd Arno Behrens
  • Anas Bouguecha
  • Conrad Frischkorn
  • Adis Huskic
  • Anna Stakhieva
  • Deniz Duran
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Details

Original languageEnglish
Publication statusPublished - 2016
Event5th International Conference on ThermoMechanical Processing, TMP 2016 - Milan, Italy
Duration: 26 Oct 201628 Oct 2016

Conference

Conference5th International Conference on ThermoMechanical Processing, TMP 2016
Country/TerritoryItaly
CityMilan
Period26 Oct 201628 Oct 2016

Abstract

The continuous need for lightweight components calls for a means to extensively utilise lighter three dimensional components in design and production without compromising on the strength. In order to address this need, suitable process chain possibilities to manufacture high performance hybrid components are being researched at Leibniz Universität Hannover in the context of the Collaborative Research Centre (CRC) 1153. In the construction of hybrid components in the CRC 1153, two different materials are essentially involved; one of which is of higher mechanical strength and situated in the area under loading (mainly steel variants), whereas the rest of the bulk is constituted by the lightweight material (mainly aluminium alloy variants). In first step of the process chain, hybrid semi-finished workpieces are manufactured by joining the two materials using a process such as friction welding, laser welding or compound extrusion. As a result of joining, the joining zone is accompanied by irregular microstructure and brittle intermetallic phases. Therefore, it should be treated by thermomechanical processing during forming; otherwise, the manufactured components are likely to fail in operation. The primary challenge for forming is a suitable tooling design that is supposed to provide a good control over the joining zone. Moreover, a tailored heating strategy is required to obtain a material-specific initial temperature distribution along the semi-finished hybrid workpieces. In this paper, associated solution approaches to these challenges are presented for two different hybrid components: a bearing bushing and a stepped shaft.

Keywords

    Extrusion, Forging, Induction heating, Joining zone, Tailored forming

ASJC Scopus subject areas

Cite this

Tailored forming technology for three dimensional components: Approaches to heating and forming. / Behrens, Bernd Arno; Bouguecha, Anas; Frischkorn, Conrad et al.
2016. Paper presented at 5th International Conference on ThermoMechanical Processing, TMP 2016, Milan, Italy.

Research output: Contribution to conferencePaperResearchpeer review

Behrens, BA, Bouguecha, A, Frischkorn, C, Huskic, A, Stakhieva, A & Duran, D 2016, 'Tailored forming technology for three dimensional components: Approaches to heating and forming', Paper presented at 5th International Conference on ThermoMechanical Processing, TMP 2016, Milan, Italy, 26 Oct 2016 - 28 Oct 2016.
Behrens, B. A., Bouguecha, A., Frischkorn, C., Huskic, A., Stakhieva, A., & Duran, D. (2016). Tailored forming technology for three dimensional components: Approaches to heating and forming. Paper presented at 5th International Conference on ThermoMechanical Processing, TMP 2016, Milan, Italy.
Behrens BA, Bouguecha A, Frischkorn C, Huskic A, Stakhieva A, Duran D. Tailored forming technology for three dimensional components: Approaches to heating and forming. 2016. Paper presented at 5th International Conference on ThermoMechanical Processing, TMP 2016, Milan, Italy.
Behrens, Bernd Arno ; Bouguecha, Anas ; Frischkorn, Conrad et al. / Tailored forming technology for three dimensional components : Approaches to heating and forming. Paper presented at 5th International Conference on ThermoMechanical Processing, TMP 2016, Milan, Italy.
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