Journal ArticleParallel publicationPublished versionDOI: 10.48548/pubdata-2806

Numerical simulation of friction extrusion: process characteristics and material deformation due to friction

Chronological data

Date of first publication2024-04-10
Date of publication in PubData 2026-01-09

Language of the resource

English

Related external resources

Variant form of DOI: 10.1007/s12289-024-01825-z
Diyoke, G., Rath, L., Chafle, R., Ben Khalifa, N., & Klusemann, B. (2024). Numerical simulation of friction extrusion: process characteristics and material deformation due to friction. International Journal of Material Forming, 17(3), Article 26.
Published in ISSN: 1960-6206
International Journal of Material Forming

Abstract

This study employs a finite element thermo-mechanical model, using a Lagrangian incremental setting to investigate friction extrusion (FE) under varying process conditions. The incorporation of rotation in FE generates substantial frictional heat, leading to significantly reduced process forces in comparison to conventional extrusion (CE). The model reveals the interplay between temperature, strain, and strain rate across different microstructural zones of the resulting wire. Specifically, the sticking friction condition in FE enhances initial shear deformation, aligning with a homogeneous spatial strain distribution and predicting complete grain refinement in the extruded wire, as per Zener-Hollomon calculations. On the other hand, under the sliding friction condition in FE, the shear deformation is reduced which results in an inhomogeneous microstructure in the extruded wire. The analysis of material flow in the workpiece reveals distinct transitions from the base material to the thermo-mechanically affected zones. The simulated process force, thermal history, and microstructure during sliding friction conditions align well with the findings from performed friction extrusion experiments.

Keywords

Dynamic Recrystallization; Friction Condition; Material Flow Behavior; Microstructure Zones; Process Simulation; Thermo-mechanical Condition

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