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Optimization of Flux Cored Arc Welding Process Parameter Using Genetic and Memetic Algorithms

T. Kannan, N. Murugan, B. N. Sreeharan

发表年份
2013
引用次数
6

摘要

Abstract Most of the manufacturing enterprises indulge in the bonding of metals during the production process. This makes welding one of the most important processes in industries. Subsequently, due to the high usage of welding process, industrial engineers desire to optimize the parameters concerned to achieve the desired weld bead characteristics. This paper focuses on optimization of flux cored arc welding process parameters, which are used for deposition of duplex stainless steel on low carbon structural steel plates. Experiments were conducted based on central composite rotatable design and mathematical models were developed using multiple regression method. Further, optimization with objectives as minimizing percentage dilution, maximizing height of reinforcement and bead width was carried out using genetic algorithm and memetic algorithm. This problem was formulated as a multi objective, multivariable and non-linear programming problem. The algorithms were implemented using basic functions of C language making it highly reliable, adoptable, very user friendly and extendable to other welding processes such as GMAW, GTAW, robotic welding, etc. The adopted optimization techniques were further compared based on various computational factors.

关键词

WeldingMemetic algorithmGenetic algorithmProcess (computing)Mechanical engineeringGas metal arc weldingComputer scienceGas tungsten arc weldingRobot weldingArc welding

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