DocumentCode :
1383235
Title :
Salisbury Screen Absorbers of Dielectric Lossy Sheets of Carbon Nanocomposite Laminates
Author :
Kim, Jin-Bong ; Byun, Joon-Hyung
Author_Institution :
Composite Mater. Lab., Korea Inst. of Mater. Sci., Changwon, South Korea
Volume :
54
Issue :
1
fYear :
2012
Firstpage :
37
Lastpage :
42
Abstract :
In this paper, we present an innovative radar absorber composed of a dielectric spacer and a dielectric lossy sheet (DLS), instead of the resistive sheet of the conventional Salisbury screen absorber. We propose carbon nanocomposites as DLS to utilize their structural robustness and advantages in large-area applications, while maintaining a relatively precise thickness. These are laminates made of E-glass fabric/epoxy prepregs containing carbon black (CB), carbon nanotube (CNT), and carbon nanofiber (CNF). The spacer is a pure E-glass fabric/epoxy composite laminate. The optimal design process based on a numerical model of the complex permittivity of the carbon nanocomposites, and a genetic algorithm shows that the real part of the complex permittivity of the sheet is closely related to the reduction of the spacer thickness. In contrast, the variation of the imaginary part is very marginal. The design results show that, in the X-band, the absorber thickness is 3.1 mm for the CB-composites, 2.76 mm for the CNT-composites, and 2.5 mm for the CNF-composites. The 10-dB bandwidth of every absorber is about 3.8 GHz. In the Ku-band, the absorber thickness is 1.95 mm for the CB-composites, 1.85 mm for the CNT-composites, and 1.7 mm for the CNF-composites. The 10-dB bandwidth of every absorber is broader than 5.5 GHz.
Keywords :
carbon nanotubes; dielectric materials; genetic algorithms; laminates; nanocomposites; nanofibres; numerical analysis; permittivity; radar absorbing materials; CNF-composites; CNT; DLS; E-glass fabric-epoxy composite laminate; E-glass fabric-epoxy prepregs; Salisbury screen absorbers; carbon black; carbon nanocomposite laminates; carbon nanoflber; carbon nanotube; complex permittivity numerical model; dielectric lossy sheets; dielectric spacer; genetic algorithm; radar absorber; radar absorbing material; structural robustness; Carbon; Dielectrics; Digital signal processing; Fabrics; Laminates; Nanomaterials; Permittivity; Carbon nanocomposites; Salisbury screen; dielectric lossy sheet (DLS); radar absorbing material (RAM);
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2011.2172983
Filename :
6087278
Link To Document :
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