Abstract

In this study, forming tests that replicate industrial forming conditions were conducted to explore the effects of HFQ conditions on the forming performance of AA6082 aluminium alloy sheets. In these tests, B-pillar components of a commercial vehicle were produced under different conditions, followed by ARGUS measurements to capture the formed geometry and strain distributions. A set of constitutive equations based on continuum damage mechanics (CDM) was implemented into FE models to simulate the forming processes, and the simulation results were compared with experimental data to validate the model and investigate the forming conditions. It was found that lower forming speed and higher temperature are beneficial to the quality of the formed parts, and the defects during forming were successfully predicted by the numerical simulations. Good agreements between the experimental and simulated results were found from the case study of the B-pillar forming tests, indicating that the CDM-based model can be successfully applied in practical forming processes for designing and optimising the process parameters.

Details

Title
Experimental and Numerical Investigations of Effects of HFQ Conditions on Forming of AA6082 B-pillar components
Author
Li, Jiaqi; Zhang, Ruiqiang; Lin, Jianguo; Shi, Zhusheng
Section
Full Papers
Publication year
2025
Publication date
2025
Publisher
EDP Sciences
ISSN
22747214
e-ISSN
2261236X
Source type
Conference Paper
Language of publication
English
ProQuest document ID
3206989562
Copyright
© 2025. This work is licensed under https://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and conditions, you may use this content in accordance with the terms of the License.