DocumentCode :
113505
Title :
On velocity skin effect — Part I: Physical principle analysis and equivalent models simulation
Author :
Qing-Ao Lv ; Zhi-Yuan Li ; Bin Lei ; Ke-Yi Zhao ; Qian Zhang ; Hong-Jun Xiang ; Yan-Chang Xing
Author_Institution :
Shijiazhuang Mech. Eng. Coll., Shijiazhuang, China
fYear :
2014
fDate :
7-11 July 2014
Firstpage :
1
Lastpage :
7
Abstract :
Velocity skin effect (VSE) is a kind of current clustering phenomenon, which occurs at the sliding contact interfaces between the high-speed armature and the stationary rails of electromagnetic railgun launchers. Serious current clustering may lead to local conductor melting, deforming, and discharge erosion, which are disadvantageous to the launching performance, but the physical principle of VSE has not been extracted and summarized so far. The typical current clustering phenomena in static conductors are classified, and the physical principle of VSE is analyzed for rail and armature respectively in this paper. The physical principle in rails is just Skin Effect because of the short risetime of the accepted pulse current, and the physical principle in armature is Clustering Near Small Source (CNSS) and Clustering Along Short Path (CASP) of steady current owing to the continuity characteristic or the voltage drop. An equivalent steady 3-dimension model has been proposed and adopted, and the quantitative distributions of current for U-shaped and cuboid armatures are simulated contrastively by Maxwell 14.0. The simulation results reveal that the current in the interface trends to cluster along the rear perimeter, and the U-shaped armature is superior to the cuboid armature. The physical principle of VSE has importance for restraining VSE.
Keywords :
conductors (electric); deformation; discharges (electric); melting; railguns; skin effect; weapons; CASP; CNSS; Maxwell 14.0; U-shaped armatures; VSE; clustering along short path; clustering near small source; clustering phenomenon; conductor melting; continuity characteristic; cuboid armatures; deformation; discharge erosion; electromagnetic railgun launchers; equivalent model simulation; equivalent steady 3-dimension model; high-speed armature; physical principle analysis; sliding contact interfaces; static conductors; stationary rails; steady current; velocity skin effect; voltage drop; Armature; Conductors; Current distribution; Railguns; Rails; Skin; Skin effect;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electromagnetic Launch Technology (EML), 2014 17th International Symposium on
Conference_Location :
La Jolla, CA
Type :
conf
DOI :
10.1109/EML.2014.6920157
Filename :
6920157
Link To Document :
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