Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming
In this study, the plastic anisotropy distribution of an extruded 7075 aluminum alloy thick plate was evaluated through small-cube compression tests. The extruded plate with a thickness of 15 mm was divided into five layers in order to verify the difference in plastic anisotropy along the thickness...
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doaj-835e489892b043c8bacacc9126fb72ac2021-04-14T23:02:19ZengMDPI AGMetals2075-47012021-04-011164164110.3390/met11040641Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion FormingDae-Kwan Jung0Seong-Ho Ha1Heung-Kyu Kim2Young-Chul Shin3Korea Institute of Industrial Technology, Incheon 21999, KoreaKorea Institute of Industrial Technology, Incheon 21999, KoreaDepartment of Automotive Engineering, Kookmin University, Seoul 02707, KoreaKorea Institute of Industrial Technology, Incheon 21999, KoreaIn this study, the plastic anisotropy distribution of an extruded 7075 aluminum alloy thick plate was evaluated through small-cube compression tests. The extruded plate with a thickness of 15 mm was divided into five layers in order to verify the difference in plastic anisotropy along the thickness direction of the extruded thick plate. Small-cube specimens with a side length of 1 mm were extracted from each layer and subjected to compression tests in each direction to evaluate the directional r-values of the extruded material. The r-values were applied to Hill’s quadratic yield criterion to calculate the six coefficients for each layer. To consider the plastic anisotropy in the thickness direction, a finite element model divided into five layers in the thickness direction was applied. Upsetting tests were conducted to verify the accuracy of the finite element analysis using cube specimens with a side length of 15 and 10.6 mm, and the results of the finite element analysis and the upsetting test were compared and analyzed against each other. Consequently, the finite element analyses were precisely simulated the upsetting test results.https://www.mdpi.com/2075-4701/11/4/641plastic anisotropyAA7075FEMextruded platelightweight |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Dae-Kwan Jung Seong-Ho Ha Heung-Kyu Kim Young-Chul Shin |
spellingShingle |
Dae-Kwan Jung Seong-Ho Ha Heung-Kyu Kim Young-Chul Shin Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming Metals plastic anisotropy AA7075 FEM extruded plate lightweight |
author_facet |
Dae-Kwan Jung Seong-Ho Ha Heung-Kyu Kim Young-Chul Shin |
author_sort |
Dae-Kwan Jung |
title |
Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming |
title_short |
Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming |
title_full |
Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming |
title_fullStr |
Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming |
title_full_unstemmed |
Determination of Plastic Anisotropy of Extruded 7075 Aluminum Alloy Thick Plate for Simulation of Post-Extrusion Forming |
title_sort |
determination of plastic anisotropy of extruded 7075 aluminum alloy thick plate for simulation of post-extrusion forming |
publisher |
MDPI AG |
series |
Metals |
issn |
2075-4701 |
publishDate |
2021-04-01 |
description |
In this study, the plastic anisotropy distribution of an extruded 7075 aluminum alloy thick plate was evaluated through small-cube compression tests. The extruded plate with a thickness of 15 mm was divided into five layers in order to verify the difference in plastic anisotropy along the thickness direction of the extruded thick plate. Small-cube specimens with a side length of 1 mm were extracted from each layer and subjected to compression tests in each direction to evaluate the directional r-values of the extruded material. The r-values were applied to Hill’s quadratic yield criterion to calculate the six coefficients for each layer. To consider the plastic anisotropy in the thickness direction, a finite element model divided into five layers in the thickness direction was applied. Upsetting tests were conducted to verify the accuracy of the finite element analysis using cube specimens with a side length of 15 and 10.6 mm, and the results of the finite element analysis and the upsetting test were compared and analyzed against each other. Consequently, the finite element analyses were precisely simulated the upsetting test results. |
topic |
plastic anisotropy AA7075 FEM extruded plate lightweight |
url |
https://www.mdpi.com/2075-4701/11/4/641 |
work_keys_str_mv |
AT daekwanjung determinationofplasticanisotropyofextruded7075aluminumalloythickplateforsimulationofpostextrusionforming AT seonghoha determinationofplasticanisotropyofextruded7075aluminumalloythickplateforsimulationofpostextrusionforming AT heungkyukim determinationofplasticanisotropyofextruded7075aluminumalloythickplateforsimulationofpostextrusionforming AT youngchulshin determinationofplasticanisotropyofextruded7075aluminumalloythickplateforsimulationofpostextrusionforming |
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