Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method
The aluminium alloy sheet forming processes forging in rubber pad and diaphragm presses (also known as hydroforming processes) are simple and economical processes adapted to aeronautical production. Typical defects of these processes are elastic recovery, necking, and wrinkling, and they present dif...
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doaj-d615d684a94c4de88f5b37ccf5432a6a2020-11-25T01:04:42ZengMDPI AGApplied Sciences2076-34172019-05-0199193210.3390/app9091932app9091932Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi MethodAurelio Muñoz-Rubio0David Bienvenido-Huertas1Francisco Javier Bermúdez-Rodríguez2Manuel Tornell-Barbosa3Department of Naval Constructions, University of Cadiz, 11519 Puerto Real, SpainDepartment of Graphical Expression and Building Engineering, University of Seville, 41012 Seville, SpainDepartment of Thermal Machines and Motors, University of Cadiz, 11519 Puerto Real, SpainDepartment of Mechanical Engineering and Industrial Design, University of Cadiz, 11519 Puerto Real, SpainThe aluminium alloy sheet forming processes forging in rubber pad and diaphragm presses (also known as hydroforming processes) are simple and economical processes adapted to aeronautical production. Typical defects of these processes are elastic recovery, necking, and wrinkling, and they present difficulties in control mainly due to property variations of the sheet material that take place during the process. In order to make these processes robust and unresponsive to material variations, a multiobjective optimization methodology based on the Taguchi method is proposed in the present study. The design of experiments and process simulation are combined in the methodology, using the nonlinear finite element method. The properties of sheet material are considered noise factors of the hydroforming process, the objective being to find a combination of the control factors that causes minimal defects to noise factors. The methodology was applied to an AA2024-T3 aluminium alloy sheet of 1 mm thickness stamping process in a diaphragm press. The results allowed us to establish the optimal pressure values, friction coefficient between sheet and block, and friction coefficient between sheet and rubber to reduce the elastic recovery variations and the minimal thickness before noise facts.https://www.mdpi.com/2076-3417/9/9/1932Taguchi methodhydroforming processaeronautical sheet |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Aurelio Muñoz-Rubio David Bienvenido-Huertas Francisco Javier Bermúdez-Rodríguez Manuel Tornell-Barbosa |
spellingShingle |
Aurelio Muñoz-Rubio David Bienvenido-Huertas Francisco Javier Bermúdez-Rodríguez Manuel Tornell-Barbosa Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method Applied Sciences Taguchi method hydroforming process aeronautical sheet |
author_facet |
Aurelio Muñoz-Rubio David Bienvenido-Huertas Francisco Javier Bermúdez-Rodríguez Manuel Tornell-Barbosa |
author_sort |
Aurelio Muñoz-Rubio |
title |
Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method |
title_short |
Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method |
title_full |
Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method |
title_fullStr |
Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method |
title_full_unstemmed |
Design Optimization of the Aeronautical Sheet Hydroforming Process Using the Taguchi Method |
title_sort |
design optimization of the aeronautical sheet hydroforming process using the taguchi method |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2019-05-01 |
description |
The aluminium alloy sheet forming processes forging in rubber pad and diaphragm presses (also known as hydroforming processes) are simple and economical processes adapted to aeronautical production. Typical defects of these processes are elastic recovery, necking, and wrinkling, and they present difficulties in control mainly due to property variations of the sheet material that take place during the process. In order to make these processes robust and unresponsive to material variations, a multiobjective optimization methodology based on the Taguchi method is proposed in the present study. The design of experiments and process simulation are combined in the methodology, using the nonlinear finite element method. The properties of sheet material are considered noise factors of the hydroforming process, the objective being to find a combination of the control factors that causes minimal defects to noise factors. The methodology was applied to an AA2024-T3 aluminium alloy sheet of 1 mm thickness stamping process in a diaphragm press. The results allowed us to establish the optimal pressure values, friction coefficient between sheet and block, and friction coefficient between sheet and rubber to reduce the elastic recovery variations and the minimal thickness before noise facts. |
topic |
Taguchi method hydroforming process aeronautical sheet |
url |
https://www.mdpi.com/2076-3417/9/9/1932 |
work_keys_str_mv |
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