EventsThe Eighteenth International Conference of Experimental Mechanics
Published
This submission belongs to the session ICEM. ICEM 2018 of the event The Eighteenth International Conference of Experimental Mechanics
Published date
28 Jun, 2018
Citation
Harishchandra Lanjewar, Leo Kestens, Patricia Verleysen, "172 DYNAMIC HIGH PRESSURE TORSION (DHPT) – A NOVEL METHOD FOR HIGH STRAIN RATE SEVERE PLASTIC DEFORMATION", in Proceedings of The Eighteenth International Conference of Experimental Mechanics, Brussels, 1 July–5 July 2018, MDPI: Basel, Switzerland, doi: 10.3390/ICEM18-05399
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"172 DYNAMIC HIGH PRESSURE TORSION (DHPT) – A NOVEL METHOD FOR HIGH STRAIN RATE SEVERE PLASTIC DEFORMATION"

1. MST-DyMaLab, EEMMeCS Department, Ghent University
2. MST, EEMMeCS Department, Ghent University
Abstract

Metals with a fine-grained microstructure have exceptional mechanical properties. Severe plastic deformation (SPD) is one of the most successful ways to fabricate ultrafine-grained (UFG) and nanostructured (NC) materials. Most of the SPD techniques employ very low processing speeds. However, the lowest steady-state grain size which can be obtained by SPD is considered to be inversely proportional with the strain rate at which the severe deformation is imposed. In order to overcome this limitation, methods operating at higher rates have been envisaged and used to study the fragmentation process and the properties of the obtained materials. However, almost none of these methods, employ hydrostatic pressures which are needed to prevent the material from failing at high deformation strains. As such, their applicability is limited to materials with a high intrinsic ductility. Additionally, in some methods the microstructural changes are limited to the surface layers of the material. To circumvent these restrictions, a novel facility has been designed and developed which deforms the material at high strain rate under high hydrostatic pressures. Using the facility, commercially pure aluminum was processed and analysis of the deformed material was performed. The microstructure evolution in this material was compared with that observed in static high pressure torsion (HPT) processed material.

Keywords
dynamic high pressure torsion
severe plastic deformation
microstructure
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