A Numerical Study on the Effect of Tool Speeds on Temperatures and Material Flow Behaviour in Refill Friction Stir Spot Welding of Thin AA7075-T6 Sheets

Materials (Basel). 2023 Apr 14;16(8):3108. doi: 10.3390/ma16083108.

Abstract

A three-dimensional (3D) numerical model was created to simulate and analyze the effect of tool rotational speeds (RS) and plunge rate (PR) on refill friction stir spot welding (refill FSSW) of AA7075-T6 sheets. The numerical model was validated by comparing the temperatures recorded at a subset of locations with those recorded at the exact locations in prior experimental studies from the literature. The peak temperature at the weld center obtained from the numerical model differed by an error of 2.2%. The results showed that with the rise in RS, there was an increase in weld temperatures, effective strains, and time-averaged material flow velocities. With the rise in PR, the temperatures and effective strains were reduced. Material movement in the stir zone (SZ) was improved with the increment of RS. With the rise in PR, the top sheet's material flow was improved, and the bottom sheet's material flow was reduced. A deep understanding of the effect of tool RS and PR on refill FSSW joint strength were achieved by correlating the thermal cycles and material flow velocity results obtained from the numerical models to the lap shear strength (LSS) from the literature.

Keywords: friction stir spot welding; material flow; numerical modeling; refill friction stir spot welding; simulation of joining processes; thermal cycles; thermomechanical characteristics.

Grants and funding

The APC charges were covered by the Graduate Studies funding by Centre of Graduate Studies-Cost Centre 015BD1-001 and Institute of Transport Infrastructure–Cost Center 015NBO-001, Universiti Teknologi PETRONAS.