
Optimization design and operating parameters of induction heat-ing system for hardening
Author(s) -
A. V. Pavlushin
Publication year - 2021
Publication title -
vestnik samarskogo gosudarstvennogo tehničeskogo universiteta. seriâ: tehničeskie nauki/vestnik samarskogo gosudarstvennogo tehničeskogo universiteta. seriâ, tehničeskie nauki
Language(s) - English
Resource type - Journals
eISSN - 2712-8938
pISSN - 1991-8542
DOI - 10.14498/tech.2021.3.2
Subject(s) - induction heating , induction hardening , mechanical engineering , induction coil , inductor , hardening (computing) , parametric design , fillet (mechanics) , software , electromagnetic induction , matlab , nonlinear system , electromagnetic coil , parametric statistics , solenoid , optimal design , materials science , engineering , computer science , composite material , electrical engineering , voltage , physics , statistics , residual stress , mathematics , layer (electronics) , machine learning , programming language , operating system , quantum mechanics
The paper deals with the problem of optimizing the design and operating parameters of an induction heating system for surface hardening of a steel stepped shaft. The problem of optimal design of an inductor is formulated based on a nonlinear two-dimensional numerical model of coupled electromagnetic and temperature fields, developed in the ANSYS Mechanical APDL software. Alternance method of parametric optimization of systems with distributed parameters is used to optimize induction hardening system. MATLAB software has been used for developing parametric optimization subroutine, which was incorporated into the numerical ANSYS model to simulate a process of induction heating. Commonly used a multi-turn solenoid-style coil fabricated from rectangular copper tubing has been used as a hardening inductor. Besides that, an application of profiled copper turns has been investigated. Optimization of induction hardening system described above allows one to substantially improve heating uniformity and enhance metallurgical characteristics of as-hardened stepped shaft. Localized temperature surplus at an upper diameter shoulder has been minimized. At the same time, sufficient austenitization in the fillet area near stepped region (diameter transition) has been obtained.