Numerical Simulation And Experimental Analysis Of Friction Stir Welding To Investigate Mechanism Of Defect Formation And Its Influence On Weld Quality
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Abstract
Friction stir welding (FSW) is a solid-state joining process and is effective in welding
newlinealuminum alloys. Study on material flow mechanism and defect formation is important as it
newlineinfluences the quality of the weld, mechanical properties and microstructural features.
newlineExperimental analysis of FSW is a time-consuming and tedious task as it requires a lot of post
newlineweld analysis to acquire weld properties. The numerical technique is an efficient method as it
newlineovercomes these issues with material flow observations and in-depth defect analysis. In the
newlinecurrent research work, a three-dimensional thermo-mechanical model based on the coupled
newlineEulerian Lagrangian method is developed to simulate FSW under different conditions. The
newlinedeveloped model for the FSW AA6061 sheet is validated with the defect, forces, and spindle
newlinetorque. Also, there is a lack of numerical modeling that shows different types of defects.
newlineDifferent types of defects, i.e. tunnel, void, cavity, and root defects that are encountered from
newlinethe numerical results for different process combinations. A parametric window is established
newlinebased on the defective and non-defective process ranges. A 2o tilted tool mostly resulted in a
newlinedefect-free weld condition due to proper forging load and improved weld temperature. The
newlinemodel is further extended for FSW of an AA2024 aerospace grade alloy using a square pin
newlinetool. Literature suggests that square pin produces better weld than cylindrical pin due to
newlinepulsating effect. The average axial force and defects are validated with in-house experimental
newlineresults. There is a lack of research work that has calculated the weld efficiency using numerical
newlinetechniques by using the model s output responses. A novel concept of defect volume is
newlinecalculated using the Eulerian volume fraction within the weld domain. The developed model
newlineis used with an eccentric square pin tool along with an experimental technique. The novelty
newlinelies in employing numerical modeling of eccentric pins as most of the work done is
newlineexperimental. Also, an enhanced rotational