DocumentCode :
1196806
Title :
Thermal and electromagnetic analysis of an electromagnetic launcher
Author :
Ghassemi, M. ; Pasandeh, R.
Author_Institution :
Dept. of Mech. Eng., New Mexico Tech., Socorro, NM, USA
Volume :
39
Issue :
3
fYear :
2003
fDate :
5/1/2003 12:00:00 AM
Firstpage :
1819
Lastpage :
1822
Abstract :
An advanced high-power electromagnetic launcher (EML) improves performance by as much as 30% over conventional launchers. Electrical energy is the main driving source for the electromagnetic launcher. In the new EML, thermal energy, generated by the extraordinarily high current that goes through the rail and the armature, changes the electrical, thermal, and mechanical specifications of the structure. This paper reports on a study of the thermal and magnetic induction distribution in the rail and the armature at different locations. In our formulation of governing nonlinear differential equations, because of the electrical conductivity and ohmic heating of the rail and the armature, Maxwell equations are coupled with energy equations. The friction force that causes heat between the armature and the rail is considered in the equations, as is the melting latent heat effect. To solve the nonlinear governing differential equations, we utilize an unstructured, moving-mesh-generation, control-volume-based finite-difference code for the rail and the armature. In this method of solution, unlike most others, the rail stays stationary and the armature moves in the forward direction. Results obtained for the rail and the armature show that the maximum temperature occurs at the trailing edge of the armature. In this region, the temperature reaches about 600 K. However, the temperature of 1 m of rail stays around 360 K.
Keywords :
Maxwell equations; computational electromagnetics; electromagnetic induction; electromagnetic launchers; finite difference methods; friction; latent heat; nonlinear differential equations; thermal analysis; 1 m; 360 to 600 K; Maxwell equations; advanced high-power EM launcher; armature ohmic heating; control-volume-based finite-difference code; energy equations; friction force; high-power electromagnetic launcher; launcher armature; launcher rail; magnetic induction distribution; melting latent heat effect; moving-mesh-generation; nonlinear differential equations; rail electrical conductivity; rail ohmic heating; thermal distribution; thermal energy; Conductivity; Differential equations; Electromagnetic analysis; Electromagnetic launching; Induction generators; Maxwell equations; Nonlinear equations; Rails; Resistance heating; Temperature;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2003.809862
Filename :
1198377
Link To Document :
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