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Chinese Journal of Materials Research  2018, Vol. 32 Issue (8): 567-574    DOI: 10.11901/1005.3093.2017.678
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Electromagnetic Property of Honeycomb Absorbing Composites with Lossy Frequency Selective Surface
Yuqiu CHEN1,2, Yapei ZU1, Jun GONG1, Chao SUN1(), Chen WANG3
1 Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China
2 University of Chinese Academy of Sciences, Beijing 100049, China
3 Altair Engineering Software (Shanghai) Co. Ltd., Shanghai 200436, China
Cite this article: 

Yuqiu CHEN, Yapei ZU, Jun GONG, Chao SUN, Chen WANG. Electromagnetic Property of Honeycomb Absorbing Composites with Lossy Frequency Selective Surface. Chinese Journal of Materials Research, 2018, 32(8): 567-574.

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Abstract  

The honeycomb absorbing composites with light weight, high strength and broadband absorbing property had been designed by combination of aramid honeycomb and lossy frequency selective surface composite. The effect of the thickness of honeycomb and the configuration of lossy frequency selective surface on electromagnetic performance was investigated, while the electromagnetic absorbing principle of the lossy frequency selective surface with traditional aperture was analyzed by the equivalent circuit method, and of which the deficiency in broadband absorbing was also proposed. In order to resolve the structure with none equivalent capacitance, slots were made on the lossy frequency selective surface with traditional aperture. Consequently, there have been another absorption peak in low frequency, and the high frequency absorption performance kept unchanged. Correspondingly the low frequency absorption performance was greatly improved, thus the whole absorbing performance of the very configuration was greatly improved, and the absorbing bandwidth had been broadened more than one time. Through calculating the equivalent capacitance and inductance by matlab, it follows that as the width of square ring changed,the equivalent inductance varied accordingly,but the equivalent capacitance remain unchanged; The high frequency absorption peaks were mainly affected by the equivalent inductance, and the low frequency absorption peaks were mainly affected by the equivalent capacitance. The thickness of honeycomb mainly affected the low frequency absorption peak and the position of high frequency absorption peak. According to the above characteristics, a thickness of 6mm broadband honeycomb absorbing composites had been designed with the slotted lossy frequency selective surface in front of the honeycomb medium, which presented an absorbing bandwidth 14 GHz of -10 dB. The actual test result basically accorded with the design expectation.

Key words:  metallic materials      microwave absorbing honeycomb composites      electromagnetic property      loss FSS      equivalent inductance      equivalent capacitance     
Received:  16 November 2017     
ZTFLH:  TB333  

URL: 

https://www.cjmr.org/EN/10.11901/1005.3093.2017.678     OR     https://www.cjmr.org/EN/Y2018/V32/I8/567

Fig.1  Simulation model of honeycomb absorbing materials
Fig.2  Diagram and equivalent circuit model of lossy aperture type FSS (a) sketch of the structure, (b) equivalent circuit model
Fig.3  ωL curve of traditional aperture type FSS varies with frequency
Fig.4  Diagram and equivalent circuit model of lossy aperture type FSS with slot (a) sketch of the structure, (b) equivalent circuit model
Fig.5  1/ωC curve of traditional aperture type FSS with slot varies with frequency
Fig.6  Simulation on electromagnetic property of two FSS absorbing structures before and after being slot (a) p =22 mm, (b) p =13 mm
Fig.7  Electromagnetic property of two periods slotted square FSS absorbing structures with different width of square ring (a) p =22 mm, (b) p =13 mm
Fig.8  ωL、1/ωC of slotted square FSS with different width of square ring (a) ωL, (b) 1/ωC
Fig.9  Effect of honeycomb thickness on electromagnetic property of the structure
Fig.10  Honeycomb absorbing structure with square FSS and the contrast curves of simulation and test results (a) honeycomb absorbing structure with square FSS, (b) contrast curves of simulation and test results
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