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Single point incremental forming simulation with adaptive remeshing technique using solid-shell elements

José I.V. Sena (Department of Mechanical Engineering, University of Aveiro, Aveiro, Portugal and ArGEnCo Department, MS²Fdivision, Université de Liège, Liège, Belgium)
Cedric Lequesne (SAMTECH SA, Liège, Belgium)
L Duchene (ArGEnCo Department, MS²Fdivision, Université de Liège, Liège, Belgium)
Anne-Marie Habraken (ArGEnCo Department, MS²Fdivision, Université de Liège, Liège, Belgium)
Robertt A.F. Valente (Department of Mechanical Engineering, University of Aveiro, Aveiro, Portugal)
Ricardo J Alves de Sousa (Department of Mechanical Engineering, University of Aveiro, Aveiro, Portugal)

Engineering Computations

ISSN: 0264-4401

Article publication date: 4 July 2016

403

Abstract

Purpose

Numerical simulation of the single point incremental forming (SPIF) processes can be very demanding and time consuming due to the constantly changing contact conditions between the tool and the sheet surface, as well as the nonlinear material behaviour combined with non-monotonic strain paths. The purpose of this paper is to propose an adaptive remeshing technique implemented in the in-house implicit finite element code LAGAMINE, to reduce the simulation time. This remeshing technique automatically refines only a portion of the sheet mesh in vicinity of the tool, therefore following the tool motion. As a result, refined meshes are avoided and consequently the total CPU time can be drastically reduced.

Design/methodology/approach

SPIF is a dieless manufacturing process in which a sheet is deformed by using a tool with a spherical tip. This dieless feature makes the process appropriate for rapid-prototyping and allows for an innovative possibility to reduce overall costs for small batches, since the process can be performed in a rapid and economic way without expensive tooling. As a consequence, research interest related to SPIF process has been growing over the last years.

Findings

In this work, the proposed automatic refinement technique is applied within a reduced enhanced solid-shell framework to further improve numerical efficiency. In this sense, the use of a hexahedral finite element allows the possibility to use general 3D constitutive laws. Additionally, a direct consideration of thickness variations, double-sided contact conditions and evaluation of all components of the stress field are available with solid-shell and not with shell elements. Additionally, validations by means of benchmarks are carried out, with comparisons against experimental results.

Originality/value

It is worth noting that no previous work has been carried out using remeshing strategies combined with hexahedral elements in order to improve the computational efficiency resorting to an implicit scheme, which makes this work innovative. Finally, it has been shown that it is possible to perform accurate and efficient finite element simulations of SPIF process, resorting to implicit analysis and continuum elements. This is definitively a step-forward on the state-of-art in this field.

Keywords

Acknowledgements

The authors would like to gratefully acknowledge the support given by Portuguese Science Foundation (FCT) and COMPETE programme under the grant SFRH/BD/ 71269/2010 (J.I.V. Sena) and EXPL(EMS-TEC/0539/2013. The authors also thank the Belgium Federal Science Policy Office (Interuniversity Attraction Pole Program, contract P7/21). As Research Director, A.M. Habraken would like to thank the Fund for Scientific Research (F.R.S - FNRS, Belgium) for its support.

Citation

Sena, J.I.V., Lequesne, C., Duchene, L., Habraken, A.-M., Valente, R.A.F. and Alves de Sousa, R.J. (2016), "Single point incremental forming simulation with adaptive remeshing technique using solid-shell elements", Engineering Computations, Vol. 33 No. 5, pp. 1388-1421. https://doi.org/10.1108/EC-06-2015-0172

Publisher

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Emerald Group Publishing Limited

Copyright © 2016, Emerald Group Publishing Limited

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