The linear non-iron inductor with rotating magnetic field
Article_6 PDF (Українська)

Keywords

linear inductor
rotating magnetic field
non-iron inductor
induction heating
method for calculating

How to Cite

Карлов, О. ., І. . Кондратенко, Р. . Крищук, and А. . Ращепкін. “The Linear Non-Iron Inductor With Rotating Magnetic Field”. Proceedings of the Institute of Electrodynamics of the National Academy of Sciences of Ukraine, no. 49, Mar. 2018, p. 039, https://prc.ied.org.ua/index.php/proceedings/article/view/197.

Abstract

Here, the use of non-iron three-phase high-frequency magnetic field inductors is proposed. It make it possible to eliminate noise in production and eliminate one-sided attraction in the temperature treatment of ferromagnetic strips. The use of two-winding inductors with different pole division and with a regulated value of the voltage of the windings is proposed for the purpose of controlling the uniformity of heating. The identical design of the upper and lower two-winding inductors is proposed for stabilizing the position of the band along the center of the gap. This is achieved by placing both windings in the slots of each inductor. Both equally directed and reverse directed rotational fields can be excited by switching the phase supply by the phase currents of each winding. If it is necessary to compensate the large longitudinal tension of the strip, this is used. Methods for calculating the apparent complex power of both windings are developed using the system of Maxwell equations. The normal and tangential forces acting on the ferromagnetic strip at its arbitrary asymmetric position in the gap are determined. The frequency of the current ensures the stabilization of the strip along the axis of the gap. It was investigated here that the choice of frequency depends on the geometric dimensions and electrophysical properties of the strip. The method for calculating the distribution of heat and the distribution of the temperature field along the length and width of a moving strip is developed. The use of a two-winding inductor to ensure uniform heating of the strip of various sizes is shown. References 11, figures 7.

Article_6 PDF (Українська)

References

Vyshtak P.A., Kondratenko I.P., Krutylin V.A., Rashchepkin A.P. Calculation method of linear inductors with concentric windings for heating metal tapes. Technical electrodynamics. 1987. No. 2. P. 6–12.

I.P. Kondratenko, A.P. Rashchepkin. Induction heating of flat rolled metals. Energy news. 1998. No. 11. P. 40–42.

Rashchepkin A.P., Krutylin V.A., Vyshtak P.A., Kondratenko I.P., Zinchenko T.R. Induction method of heating rolled steel from non-ferrous metals and alloys. Non-ferrous metals. 1989. No. 1. P. 104–107.

Pevzner M.Z., Shirokov N.M., Khayutyn S.G. Continuous induction heat treatment of tapes and strips. Moscow: Metallurgy, 1994. 128 p.

I.P. Kondratenko, A.P. Rashchepkin. Two-coil inductor of the current field for heating flat rolled metal. Proceedings of the Institute of Electrodynamics of the National Academy of Sciences of Ukraine. Kyiv, 2005. No. 3(12). P. 112–123.

Vyshtak T.V., Kondratenko I.P., Rashchepkin A.P. Induction heating of the strip by current contours of canonical forms. Technical electrodynamics. 2003. No. 1. P. 63–68.

Vyshtak T.V., Kondratenko I.P. The electromagnetic field of a spatially distributed current loop located above the conductive strip. Bulletin of the Kremenchug State University. 2005. Issue 4. 2005 (33). P. 115–118.

Nemkov V.S., Petukhova S.V., Gudovsky S.A., Zyubanova L.F., Boyarsky M.P. Acoustic and electromagnetic fields of high-frequency installations. Application of high-frequency currents in electrothermia: Thesis. acc. X All-Union scientific and technical conf. Leningrad, April 15–17, 1986. Moscow: Informelektro, 1986. P. 7.

Krasnovydova T.V., Artyshevsky P.P., Bukanin V.A. Increasing the uniformity of induction heating across the width of the moving sheet. Electrotechnical industry. 1984. Issue 11 (261). P. 3–4.

Rashchepkin A.P. The field in the gap at a variable linear load of the winding of a linear induction machine. Magnetic hydrodynamics. 1965. No. 3. P. 96–102.

Tamm I.E. Fundamentals of the theory of electricity. Moscow: Nauka, 1976. 616 p.

Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Copyright (c) 2018 О. Karlov, I. Kondratenko, R. Kryshchuk, A. Rashchepkin

Downloads

Download data is not yet available.