DocumentCode :
3325127
Title :
FDTD modeling of thin wires for simulating common-mode radiation from structures with attached cables
Author :
Hockanson, David M. ; Drewniak, James L. ; Hubing, Todd H. ; Van Doren, Thomas P.
Author_Institution :
Dept. of Electr. Eng., Missouri Univ., Rolla, MO, USA
fYear :
195
fDate :
14-18 Aug 195
Firstpage :
168
Lastpage :
173
Abstract :
The analysis of shielding enclosures is complicated by the existence of apertures and cables. The finite-difference time-domain (FDTD) method can model shielding enclosures with complex geometries, but has difficulty modeling wires and cables of arbitrary radii. Modeling the wire by setting the axial component of the electric field to zero in the FDTD results in a wire with a radius determined by the mesh discretisation. Neglecting wire radius in applications such as electromagnetic interference (EMI) or printed circuit board modeling may result in gross errors because near field quantities are typically sensitive to wire thickness. Taflove (1990) developed a wire modeling algorithm for FDTD analysis which models wires well for far-field calculations such as the radar cross section. The method uses a quasi-static field approximation to model wires with a user-specified radius. The wire model is reviewed and investigated for near-field accuracy via input impedance computations, since FCC class A and B regulations are tested in the near field. The input impedance for a center-fed dipole antenna is computed with FDTD methods and compared to the input impedance results from moment methods. A simulation of a shielding enclosure with an attached cable demonstrates the utility of FDTD analysis in EMC applications
Keywords :
antenna feeds; approximation theory; cables (electric); digital simulation; dipole antennas; electric impedance; electromagnetic compatibility; electromagnetic interference; electromagnetic shielding; finite difference time-domain analysis; packaging; radar cross-sections; simulation; wires (electric); EMC; EMI; FDTD modeling; apertures; cables; center-fed dipole antenna; common-mode radiation simulation; electric field; electromagnetic interference; far-field calculations; finite-difference time-domain; input impedance; mesh discretisation; moment methods; near-field accuracy; printed circuit board modeling; quasistatic field approximation; radar cross section; shielding enclosures; thin wires; wire modeling algorithm; wire radius; wire thickness; Apertures; Cables; Electromagnetic interference; Finite difference methods; Geometry; Impedance; Printed circuits; Solid modeling; Time domain analysis; Wires;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electromagnetic Compatibility, 1995. Symposium Record., 1995 IEEE International Symposium on
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-3608-9
Type :
conf
DOI :
10.1109/ISEMC.1995.523540
Filename :
523540
Link To Document :
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