Issue |
MATEC Web Conf.
Volume 408, 2025
44th Conference of the International Deep Drawing Research Group (IDDRG 2025)
|
|
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Article Number | 01044 | |
Number of page(s) | 6 | |
Section | Full Papers | |
DOI | https://doi.org/10.1051/matecconf/202540801044 | |
Published online | 07 May 2025 |
Energy Performance of Non-Conventional Metal Tubular Systems via a New Multiaxial
1
QUARTZ Laboratory, UP8, IUT de Tremblay-en-France,
3 rue de la râperie,
93290
Tremblay-en-France, France
2
GARAC Campus, National School of Automotive Industry,
3 Boulevard Gallieni,
95100
Argenteuil, France
3
LM2E Laboratory, Department of Mechanical Engineering, A. Mira University,
Béjaïa,
06000,
Algeria
* Corresponding author: rachid.baleh@univ-paris8.fr
This experimental study investigates the effect of a new loading path characterized by a new multiaxial alternation path, on the mechanical behaviour of metallic tubular structures. These are simple thin-walled tubes, recognized as one of the best energy absorption systems (EAS) in their class. Equipped with the same cylindrical cross-section geometry, the specimens used are of two metals, copper and aluminium, subjected to multiaxial alternating plastic buckling. For this purpose, a new specific experimental device (ACTP-S) has been developed. It is a new variant of our patented biaxial device (ACTP, [1]). The introduction of an alternative compression-torsion stress is designed to further promote the phenomenon of over-hardening during plastic flow. So, in addition to the classical uniaxial crushing entitled Bi0° as reference, three biaxial configurations BiS45, BiS53 and BiS60 governed by ACTP-S helicoids with their respective angles of inclination, are listed. Several plastic buckling tests were carried out under quasistatic (5 mm/min) and dynamic (9 m/s) regimes. Among other significant results, the study reveals an unquestionable improvement in energy absorption for multiaxial configurations, a gain of 84 % compared to the reference case in favor of BiS60, configuration of extreme complexity, justifying a change in the behavior of the materials.
Key words: EAS / ACTP-S / complexity crushing / loading path
© The Authors, published by EDP Sciences, 2025
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