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Mathematical modeling of induction surface hardening

Jerzy Barglik (Department of Industrial Information Technology, Faculty of Material Sciences and Metallurgy,Silesian University of Technology, Katowice, Poland)

Abstract

Purpose

As far as the author knows the modeling of induction surface hardening is still a challenge. The purpose of this paper is to present both mathematical models of continuous and simultaneous hardening processes and exemplary results of computations and measurements. The upper critical temperature Ac3 is determined from the Time Temperature Austenization diagram for investigated steel.

Design/methodology/approach

Computation of coupled electromagnetic, thermal and hardness fields is based on the finite element methods, while the hardness distribution is determined by means of experimental dependence derived from the continuous cooling temperature diagram for investigated steel.

Findings

The presented results may be used as a theoretical background for design of inductor-sprayer systems in continual and simultaneous arrangements and a proper selection of their electromagnetic and thermal parameters.

Research limitations/implications

The both models reached a quite good accuracy validated by the experiments. Next work in the field should be aimed at further improvement of numerical models in order to shorten the computation time.

Practical implications

The results may be used for designing induction hardening systems and proper selection of field current and cooling parameters.

Originality/value

Complete mathematical and numerical models for continuous and simultaneous surface induction hardening including dual frequency induction heating of gear wheels. Experimental validation of achieved results. Taking into account dependence of the upper critical temperature Ac3 on speed of heating.

Keywords

Acknowledgements

Financial support from the National Centre for Research and Development (project PBS2/A5/41/2014) is kindly acknowledged.

Citation

Barglik, J. (2016), "Mathematical modeling of induction surface hardening", COMPEL - The international journal for computation and mathematics in electrical and electronic engineering, Vol. 35 No. 4, pp. 1403-1417. https://doi.org/10.1108/COMPEL-09-2015-0323

Publisher

:

Emerald Group Publishing Limited

Copyright © 2016, Emerald Group Publishing Limited

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