Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.

This study aims to investigate the flow and fracture behavior of aluminum alloy 6082-T6 (AA6082-T6) at different strain rates and triaxialities. Two groups of Charpy impact tests were carried out to further investigate its dynamic impact fracture property. A series of tensile tests and numerical sim...

Full description

Bibliographic Details
Main Authors: Xuanzhen Chen, Yong Peng, Shan Peng, Song Yao, Chao Chen, Ping Xu
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5536279?pdf=render
id doaj-86a006b8805a4990a90704a12ec5a87f
record_format Article
spelling doaj-86a006b8805a4990a90704a12ec5a87f2020-11-24T22:17:19ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01127e018198310.1371/journal.pone.0181983Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.Xuanzhen ChenYong PengShan PengSong YaoChao ChenPing XuThis study aims to investigate the flow and fracture behavior of aluminum alloy 6082-T6 (AA6082-T6) at different strain rates and triaxialities. Two groups of Charpy impact tests were carried out to further investigate its dynamic impact fracture property. A series of tensile tests and numerical simulations based on finite element analysis (FEA) were performed. Experimental data on smooth specimens under various strain rates ranging from 0.0001~3400 s-1 shows that AA6082-T6 is rather insensitive to strain rates in general. However, clear rate sensitivity was observed in the range of 0.001~1 s-1 while such a characteristic is counteracted by the adiabatic heating of specimens under high strain rates. A Johnson-Cook constitutive model was proposed based on tensile tests at different strain rates. In this study, the average stress triaxiality and equivalent plastic strain at facture obtained from numerical simulations were used for the calibration of J-C fracture model. Both of the J-C constitutive model and fracture model were employed in numerical simulations and the results was compared with experimental results. The calibrated J-C fracture model exhibits higher accuracy than the J-C fracture model obtained by the common method in predicting the fracture behavior of AA6082-T6. Finally, the Scanning Electron Microscope (SEM) of fractured specimens with different initial stress triaxialities were analyzed. The magnified fractographs indicate that high initial stress triaxiality likely results in dimple fracture.http://europepmc.org/articles/PMC5536279?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Xuanzhen Chen
Yong Peng
Shan Peng
Song Yao
Chao Chen
Ping Xu
spellingShingle Xuanzhen Chen
Yong Peng
Shan Peng
Song Yao
Chao Chen
Ping Xu
Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
PLoS ONE
author_facet Xuanzhen Chen
Yong Peng
Shan Peng
Song Yao
Chao Chen
Ping Xu
author_sort Xuanzhen Chen
title Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
title_short Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
title_full Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
title_fullStr Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
title_full_unstemmed Flow and fracture behavior of aluminum alloy 6082-T6 at different tensile strain rates and triaxialities.
title_sort flow and fracture behavior of aluminum alloy 6082-t6 at different tensile strain rates and triaxialities.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description This study aims to investigate the flow and fracture behavior of aluminum alloy 6082-T6 (AA6082-T6) at different strain rates and triaxialities. Two groups of Charpy impact tests were carried out to further investigate its dynamic impact fracture property. A series of tensile tests and numerical simulations based on finite element analysis (FEA) were performed. Experimental data on smooth specimens under various strain rates ranging from 0.0001~3400 s-1 shows that AA6082-T6 is rather insensitive to strain rates in general. However, clear rate sensitivity was observed in the range of 0.001~1 s-1 while such a characteristic is counteracted by the adiabatic heating of specimens under high strain rates. A Johnson-Cook constitutive model was proposed based on tensile tests at different strain rates. In this study, the average stress triaxiality and equivalent plastic strain at facture obtained from numerical simulations were used for the calibration of J-C fracture model. Both of the J-C constitutive model and fracture model were employed in numerical simulations and the results was compared with experimental results. The calibrated J-C fracture model exhibits higher accuracy than the J-C fracture model obtained by the common method in predicting the fracture behavior of AA6082-T6. Finally, the Scanning Electron Microscope (SEM) of fractured specimens with different initial stress triaxialities were analyzed. The magnified fractographs indicate that high initial stress triaxiality likely results in dimple fracture.
url http://europepmc.org/articles/PMC5536279?pdf=render
work_keys_str_mv AT xuanzhenchen flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
AT yongpeng flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
AT shanpeng flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
AT songyao flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
AT chaochen flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
AT pingxu flowandfracturebehaviorofaluminumalloy6082t6atdifferenttensilestrainratesandtriaxialities
_version_ 1725785502826627072