Numerical predictions for the thermal history, microstructure and hardness distributions at the HAZ during welding of low alloy steels

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Abstract

A phenomenological model to predict the multiphase diffusional decomposition of the austenite in low-alloy hypoeutectoid steels was adapted for welding conditions. The kinetics of phase transformations coupled with the heat transfer phenomena was numerically implemented using the Finite Volume Method (FVM) in a computational code. The model was applied to simulate the welding of a commercial type of low-alloy hypoeutectoid steel, making it possible to track the phase formations and to predict the volume fractions of ferrite, pearlite and bainite at the heat-affected zone (HAZ). The volume fraction of martensite was calculated using a novel kinetic model based on the optimization of the well-known Koistinen-Marburger model. Results were confronted with the predictions provided by the continuous cooling transformation (CCT) diagram for the investigated steel, allowing the use of the proposed methodology for the microstructure and hardness predictions at the HAZ of low-alloy hypoeutectoid steels.

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Xavier, C. R., Delgado, H. G., De Castro, J. A., & Ferreira, A. F. (2016). Numerical predictions for the thermal history, microstructure and hardness distributions at the HAZ during welding of low alloy steels. Materials Research, 19(3), 520–533. https://doi.org/10.1590/1980-5373-MR-2015-0068

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