Author:
Zhou Feng,Wang Zixuan,Zhao Yuxiang
Abstract
Purpose
The purpose of this paper is to study the pipe-type electromagnetic induction heating device under power frequency condition.
Design/methodology/approach
To reduce eddy current loss and improve heating efficiency, the structure of a pipe-type power-frequency electromagnetic heating device was optimized. Based on the maximum load flow formula, a parallel excitation winding structure is designed, and the distribution of electromagnetic field under four different powers is analyzed by simulation. Four heating modes were proposed according to the structure of diversion ring, inner wall and outer wall. Two heating modes with better heating effect were obtained by comprehensively considering the factors such as magnetic field distribution, thermal power and energy consumption.
Findings
The double-wall structure of the pipe-type electromagnetic heating device can make the heat source distribution more uniform, and the use of power-frequency power supply can increase security, the installation of diversion ring can make the heating more sufficient and the heating efficiency of the two heating methods selected according to the structural performance is more than 90%.
Originality/value
In view of the medium or high frequency of pipe-type electromagnetic heating device, it is necessary to configure high power electronic frequency conversion drive system, and eddy current can only be produced on the tube wall, resulting in uneven distribution of heat sources. A pipe-type power-frequency electromagnetic heating device with double-wall structure was proposed.
Subject
Applied Mathematics,Electrical and Electronic Engineering,Computational Theory and Mathematics,Computer Science Applications
Reference16 articles.
1. Experimental study and comparative analysis of molten salt electromagnetic induction heater;Journal of Engineering Thermophysics,2021
2. Three-dimensional analysis of medium-frequency induction heating of steel pipes subject to motion factor;International Journal of Heat and Mass Transfer,2016
3. Simulation and analysis of a new electromagnetic induction heating structure;Journal of Shenyang Institute of Engineering (Natural Science Edition),2021
4. A novel induction heating source based on fuzzy control method: international journal of nonlinear sciences and numerical simulation;Optics and Lasers in Engineering,2011
5. High-efficiency flow-through induction heating;IET Power Electronics,2020
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献