DocumentCode
1709784
Title
An experimental investigation of the nonlinear transient electric field response induced in thin-walled cylindrical ferromagnetic shields by short-duration surface current pulses
Author
Croisant, William J. ; McInerney, M.K. ; Feickert, C.A. ; Nielsen, Paul H.
Author_Institution
Constr. Eng. Res. Lab., U.S. Army Eng. Res. & Dev. Center, Champaign, IL, USA
Volume
2
fYear
2004
Firstpage
533
Abstract
The paper presents results of an experimental investigation of the transient electric field induced at the interior surface of long, thin-walled, cylindrical, electrically-conductive ferromagnetic shields by axially-directed, unipolar, short-duration current pulses along the exterior surface. For an applied pulse having a duration that was sufficiently short compared to the shield response, the transient electric field response approached a result that depended on the total charge transported along the surface of the cylinder during the applied current pulse but was essentially independent of the particular time variation of the applied pulse. For practical purposes, such pulses can be regarded as impulses, and the resultant electric field response can be regarded as an impulse response for that charge level. Experimental results for a wide range of injected charge levels on a mildly ferromagnetic specimen are presented. Unlike the impulse response for the linear problem with a constant permeability, the impulse response exhibits nonlinear variation with applied charge level.
Keywords
electric current; electric fields; electromagnetic shielding; ferromagnetic materials; transient response; constant permeability; electrically-conductive shields; electromagnetic shielding; exterior surface; impulse response; injected charge levels; interior surface; nonlinear transient electric field response; nonlinear variation; short-duration surface current pulses; thin-walled cylindrical ferromagnetic shields; unipolar current pulses; Delay; EMP radiation effects; Electromagnetic fields; Electromagnetic transients; Electrostatic discharge; Laboratories; Magnetic materials; Magnetic shielding; Permeability; Thin wall structures;
fLanguage
English
Publisher
ieee
Conference_Titel
Electromagnetic Compatibility, 2004. EMC 2004. 2004 InternationalSymposium on
Print_ISBN
0-7803-8443-1
Type
conf
DOI
10.1109/ISEMC.2004.1349854
Filename
1349854
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