Improved Welding Quality Prediction for Metal Inert Gas Welding using Artificial Intelligence

Author:

Qamar Mohmmad1,Singh Dharmendra Kumar1

Affiliation:

1. Department Mechanical Engineering, Maharishi University of Information and Technology, Lucknow, Uttar Pradesh, India

Abstract

Welding is widely used by manufacturing engineers and production personnel to quickly and effectively set up manufacturing processes for new products. The MIG welding parameters are the most important factors affecting the quality, productivity and cost of welding. This paper presents the influence of welding parameters like welding current, welding voltage, Gas flow rate, wire feed rate, etc. on weld strength, ultimate tensile strength, and hardness of weld joint, weld pool geometry of various metal material during welding. By using DOE method, the parameters can be optimize and having the best parameters combination for target quality. The analysis from DOE method can give the significance of the parameters as it give effect to change of the quality and strength of product.

Publisher

Technoscience Academy

Subject

General Medicine

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3. Hossein Towsyfyan, Gholamreza Davoudi,P PBahram Heidarian Dehkordy and Ahmad Kariminasab 6TDepartment of Manufacturing, Technical and Vocational University, Ahvaz, Iran, “ Comparing the Regression Analysis and Artificial Neural Network in Modeling the MIG Welding (MIG) Process”, Research Journal of Applied Sciences, Engineering and Technology 5(9): 2701-2706, 2013

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