Ziqin Yan , Ang Xiao , Hanpeng Wang , Guang Yang , Rui Li , Xiaohui Cui
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引用次数: 0
Abstract
It is widely accepted that aluminum alloy-based materials exhibit improved formability and enhanced ductility under high-speed impact. However, in this study, the experimental results were not entirely similar to the traditional theoretical results. Thus, this study once again confirms the conclusion that high-rate forming can increase the forming limit of materials, and simultaneously supplements the conclusion. Herein, a hybrid process combining quasi-static hydraulic forming and electromagnetic hydraulic forming was proposed. The effects of the forming sequence and pre-deformation amount on sheet bulging and fracture morphology were analyzed via experiments and simulation. It was found that when the electromagnetic hydraulic forming is pre-deformation and the quasi-static hydraulic forming is post-deformation, the forming height of aluminum alloy does not improve significantly. Conversely, when the quasi-static hydraulic forming is pre-deformation and the electromagnetic hydraulic forming is post-deformation, the forming height of aluminum alloy improves significantly. In case of pre-deformation quasi-static liquid pressure P0 = 2 MPa, and post-deformation electromagnetic hydraulic forming, the limit forming height is 22.4 % higher than that under quasi-static hydraulic forming. Moreover, the limiting voltage decreases with increasing pre-deformation quasi-static liquid pressure P0, and the energy consumption reduces by 42.9 %. The deformation behavior and damage characteristics of quasi-static hydraulic forming, electromagnetic hydraulic forming, and hybrid forming were accurately predicted by multi-physics coupling analysis. Compared with quasi-static hydraulic forming, void nucleation and growth are inhibited due to high-speed impact. In particular, when the sheet is about to crack during high-speed forming, the voids that should have grown sharply are significantly inhibited. Therefore, the improved formability mainly acts at the post-deformation stage during high-speed forming, with the analytical results corroborating the experimental and simulation ones.
期刊介绍:
The Journal of Materials Processing Technology covers the processing techniques used in manufacturing components from metals and other materials. The journal aims to publish full research papers of original, significant and rigorous work and so to contribute to increased production efficiency and improved component performance.
Areas of interest to the journal include:
• Casting, forming and machining
• Additive processing and joining technologies
• The evolution of material properties under the specific conditions met in manufacturing processes
• Surface engineering when it relates specifically to a manufacturing process
• Design and behavior of equipment and tools.