Development of Closed-Form Equations for Estimating Mechanical Properties of Weld Metals according to Chemical Composition

Author:

Kim Jeong-Hwan,Jung Chang-JuORCID,Park Young IL,Shin Yong-TaekORCID

Abstract

In this study, data analysis was performed using an artificial neural network (ANN) approach to investigate the effect of the chemical composition of welds on their mechanical properties (yield strength, tensile strength, and impact toughness). Based on the data collected from previously performed experiments, correlations between related variables and results were analyzed and predictive models were developed. Sufficient datasets were prepared using data augmentation techniques to solve problems caused by insufficient data and to make better predictions. Finally, closed-form equations were developed based on the predictive models to evaluate the mechanical properties according to the chemical composition.

Funder

Dong-A University

Publisher

MDPI AG

Subject

General Materials Science,Metals and Alloys

Reference18 articles.

1. Metallurgy of Basic Weld Metal;Evans,1997

2. The role of filler metal wire and flux composition in submerged arc weld metal transformation kinetics;Fleck;Weld. J.,1986

3. Fracture characteristics of TMCP and QT steel weldments with respect to crack length

4. The influence of cooling rate and composition on weld meta microstructures in a C/Mn and a HSLA steel;Glover;Simulation,1977

5. Microstructure/mechanical property relationships of submerged arc welds in HSLA 80 steel;Smith;Weld. J.,1989

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