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Optimization of parameters of pulse current gas tungsten arc welding using non conventional techniques

Pushp Kumar Baghel, Tushar Gupta

2022Journal of Advanced Joining Processes12 citationsDOIOpen Access PDF

Abstract

This paper explains the heuristic search and evolutionary methods with new approach using experimental design techniques i.e Central composite design. The experimental data collected using conventional experimentation is used in application of genetic algorithm (GA) and particle swarm optimization (PSO) for optimization of process parameters. The data available from the experimentation is being used to perform genetic algorithm and particle swarm optimization and is being compared with the predicted values using design of experiment i.e from regression model. The developed regression model of the objective function i.e properties of weld joint also act as the objective function for optimization through genetic algorithm and particle swarm optimization. Modelling and optimization of process variables to find the quality weld output using pulse current GTAW has been tried in the present work. The optimized values obtained from these techniques were compared with experimental results and presented.

Topics & Concepts

Particle swarm optimizationGenetic algorithmMeta-optimizationWeldingMetaheuristicComputer scienceMulti-swarm optimizationMathematical optimizationAlgorithmEngineeringMathematicsMechanical engineeringWelding Techniques and Residual StressesAdvanced machining processes and optimizationAdvanced Machining and Optimization Techniques
Optimization of parameters of pulse current gas tungsten arc welding using non conventional techniques | Litcius