Title :
Principle of a multi-load/single converter system for low power induction heating
Author :
Forest, Francois ; Labouré, Eric ; Costa, Francois ; Gaspard, Jean Yves
Author_Institution :
ENS de Cachan/Lesir, France
fDate :
3/1/2000 12:00:00 AM
Abstract :
The induction heating appliances used for cooking generally include two or four inductors and in the most common solution, a converter is connected to each inductor. The main aim of this paper is to suggest a way of building a multi-load/single converter system, based on the use of a series-resonant ZVS inverter supplying several resonant loads. The principle can be probably extended to different applications (DC-to-DC converters, high power induction heating applications) but their study has been restricted to a low power induction heating context. In order to make this study, suitable models for the loaded inductors had to be found. Therefore, in the first part of this document, a number of different electrical inductor models, from the basic L-R equivalent circuit to a representation taking into account eddy currents effects, are presented. The second part describes the multi-load operating principle with respecting ZVS conditions, by the analysis of an R-L inductor model. Finally, the third part completes this work with simulations, including a more realistic model of the inductors and the associated experimental validation. These emphasize the interest of this original system that is currently being evaluated for an industrial application
Keywords :
DC-AC power convertors; DC-DC power convertors; eddy currents; equivalent circuits; induction heating; invertors; power inductors; resonant power convertors; switching circuits; DC-to-DC converters; L-R equivalent circuit; R-L inductor model; cooking; eddy currents; induction heating appliances; low-power induction heating; multi-load/single power converter system; series-resonant ZVS inverter; DC-DC power converters; Eddy currents; Equivalent circuits; Home appliances; Inductors; Inverters; Load modeling; Power system modeling; Resonance; Zero voltage switching;
Journal_Title :
Power Electronics, IEEE Transactions on