Investigation on formability and fracture mechanisms of dissimilar DC05/AA5052 sheets in an integrated friction stir-assisted double-sided incremental synchronous forming-bonding process
Renhao Wu , Zaigham Saeed Toor , Man Jae SaGong , Yue Wu , Xinmei Liu , Meng Li , Hyoung Seop Kim
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引用次数: 0
Abstract
Laminated aluminum alloy-steel (Al-St) sheets exhibit significant potential for use in industrial applications because of their superior mechanical and physical properties. Differences in the intrinsic mechanical properties of these different laminates cause challenges in fabrication and plastic forming. Thermally assisted mechanical joining and forming methods exhibit significant limitations in regulating the formation of Fe-Al intermetallic compounds within Al-St laminates. Cracks can easily occur at the bonding interfaces of these laminates, which severely limits their application. Therefore, a novel forming process is necessary. This study introduces an integrated friction stir-assisted double-sided incremental forming process with synchronous bonding (FS-DSIF&SB) that combines bonding and deformation to fabricate truncated laminated conical components using dissimilar AA5052 and DC05 sheets. A modified fracture criterion, incorporating stress triaxiality, temperature, and strain rate, is developed and implemented using a VUSDFLD subroutine to evaluate ductile damage under diverse thermo-mechanical conditions. Experimental validation using high-temperature tensile tests and forming trials confirm the predictive accuracy of the fracture model. Damage progression reveals that the outer aluminum alloy layer experiences higher damage, leading to fracture. Optimized processing enhanced laminate's formability and variable wall angle compatibility. The findings underscore the process's high formability and demonstrate its potential applicability for multi-material systems and advanced manufacturing scenarios.
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.