Numerical simulation of Rapid Additive Forging (RAF) process
The Rapid Additive Forging (RAF) process is a Direct Energy Deposition (DED) Additive Manufacturing (AM) process, based on the deposition of a Titanium alloy on a substrate plate. This process has been developed for the production of Titanium parts of aeronautic components. In this study, a Finite E...
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doaj-ba44bc4cd60443c794bf3abea4fb629d2021-08-11T12:57:52ZengEDP SciencesMATEC Web of Conferences2261-236X2020-01-013210303610.1051/matecconf/202032103036matecconf_ti2019_03036Numerical simulation of Rapid Additive Forging (RAF) processDepradeux Lionel0Robitaille Corentin1Duval Gilles2Eckenfelder Luc3Locatelli Camille4EC2-ModélisationEC2-ModélisationPRODWAYS GroupPRODWAYS GroupPRODWAYS GroupThe Rapid Additive Forging (RAF) process is a Direct Energy Deposition (DED) Additive Manufacturing (AM) process, based on the deposition of a Titanium alloy on a substrate plate. This process has been developed for the production of Titanium parts of aeronautic components. In this study, a Finite Element (FE) numerical simulation methodology has been established to perform a fast analysis of the RAF process, including full 3D-transient thermal-metallurgical and mechanical numerical simulations. Thus, residual stresses and distortions caused by the process can be estimated. Different modelling strategies have been compared in order to find a balance between computation time and accuracy. Analyses include the effects of phase transformations in the Titanium alloy. First analyses have been performed on a simple geometry of welding wall. The influences of the material activation modelling strategy on the thermal and mechanical results have been investigated. The effects of phase transformations on residual stresses and distortions are also discussed. Then a specimen with a more complex geometry has been considered in the analysis, including the effect of different deposition paths. A full 3D simulation of the whole deposition process has been compared with several simplified computation procedures, including a reduction of the number of layers considered in the simulation.https://www.matec-conferences.org/articles/matecconf/pdf/2020/17/matecconf_ti2019_03036.pdfadditive manufacturingnumerical simulationwelding walltitanium alloyphase transformationsresidual stressesdistortions |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Depradeux Lionel Robitaille Corentin Duval Gilles Eckenfelder Luc Locatelli Camille |
spellingShingle |
Depradeux Lionel Robitaille Corentin Duval Gilles Eckenfelder Luc Locatelli Camille Numerical simulation of Rapid Additive Forging (RAF) process MATEC Web of Conferences additive manufacturing numerical simulation welding wall titanium alloy phase transformations residual stresses distortions |
author_facet |
Depradeux Lionel Robitaille Corentin Duval Gilles Eckenfelder Luc Locatelli Camille |
author_sort |
Depradeux Lionel |
title |
Numerical simulation of Rapid Additive Forging (RAF) process |
title_short |
Numerical simulation of Rapid Additive Forging (RAF) process |
title_full |
Numerical simulation of Rapid Additive Forging (RAF) process |
title_fullStr |
Numerical simulation of Rapid Additive Forging (RAF) process |
title_full_unstemmed |
Numerical simulation of Rapid Additive Forging (RAF) process |
title_sort |
numerical simulation of rapid additive forging (raf) process |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2020-01-01 |
description |
The Rapid Additive Forging (RAF) process is a Direct Energy Deposition (DED) Additive Manufacturing (AM) process, based on the deposition of a Titanium alloy on a substrate plate. This process has been developed for the production of Titanium parts of aeronautic components. In this study, a Finite Element (FE) numerical simulation methodology has been established to perform a fast analysis of the RAF process, including full 3D-transient thermal-metallurgical and mechanical numerical simulations. Thus, residual stresses and distortions caused by the process can be estimated. Different modelling strategies have been compared in order to find a balance between computation time and accuracy. Analyses include the effects of phase transformations in the Titanium alloy. First analyses have been performed on a simple geometry of welding wall. The influences of the material activation modelling strategy on the thermal and mechanical results have been investigated. The effects of phase transformations on residual stresses and distortions are also discussed.
Then a specimen with a more complex geometry has been considered in the analysis, including the effect of different deposition paths. A full 3D simulation of the whole deposition process has been compared with several simplified computation procedures, including a reduction of the number of layers considered in the simulation. |
topic |
additive manufacturing numerical simulation welding wall titanium alloy phase transformations residual stresses distortions |
url |
https://www.matec-conferences.org/articles/matecconf/pdf/2020/17/matecconf_ti2019_03036.pdf |
work_keys_str_mv |
AT depradeuxlionel numericalsimulationofrapidadditiveforgingrafprocess AT robitaillecorentin numericalsimulationofrapidadditiveforgingrafprocess AT duvalgilles numericalsimulationofrapidadditiveforgingrafprocess AT eckenfelderluc numericalsimulationofrapidadditiveforgingrafprocess AT locatellicamille numericalsimulationofrapidadditiveforgingrafprocess |
_version_ |
1721211213501693952 |