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Investigation on electromagnetic field refraction of inhomogeneous plasma cylinder

Published online by Cambridge University Press:  02 October 2014

Yuan ZhongCai*
Affiliation:
State Key Laboratory of Pulse Power Laser Technology, Key Lab of Infrared and Low Temperature Plasma of Anhui Province, Hefei Electronic Engineering Institute, Hefei 230037, China
Shi JiaMing
Affiliation:
State Key Laboratory of Pulse Power Laser Technology, Key Lab of Infrared and Low Temperature Plasma of Anhui Province, Hefei Electronic Engineering Institute, Hefei 230037, China
Wang JiaChun
Affiliation:
State Key Laboratory of Pulse Power Laser Technology, Key Lab of Infrared and Low Temperature Plasma of Anhui Province, Hefei Electronic Engineering Institute, Hefei 230037, China
Zhao DaPeng
Affiliation:
State Key Laboratory of Pulse Power Laser Technology, Key Lab of Infrared and Low Temperature Plasma of Anhui Province, Hefei Electronic Engineering Institute, Hefei 230037, China
*
Email address for correspondence: Yuaneei@163.com

Abstract

The interaction between incident transverse magnetic (TM) waves and nonuniform plasma cylinder is investigated. The forward and backscattering fields of incident TM microwave are calculated and analyzed by using the scattering matrix model. The dependences of the scattering field on plasma electron density, collision frequency, and incident frequency are analyzed, respectively. The electric field distribution across the section of the plasma cylinder is deduced, visually shown, and discussed.

Type
Research Article
Copyright
Copyright © Cambridge University Press 2014 

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References

REFERENCES

Albertsen, N. C. 1989 IEEE Trans. Antennas Propag. 37 (12), 16421644.Google Scholar
Ginzberg, V. L. 1970 The Propagation of Electromagnetic Waves in Plasmas. New York: Pergammon Press.Google Scholar
Helaly, A., et al. 1997 IEEE Proc-Microw, Antennas Propag 144 (2), 6166.Google Scholar
Koretzky, E., et al. 1998 Phys. Plasmas 5, 3774.Google Scholar
Lai-xuan, et al. 2010 Analysis on the refraction stealth characteristic of cylinder plasma envelopes. ICMMT Proceedings, 1695–1698.Google Scholar
Laroussi, M., et al. 1993 IEEE Trans. Plasma Sci. 21, 366.Google Scholar
Li, C., et al. 2012 Plasma Sci. Technol. 14 (1), 3739.Google Scholar
Moisan, M., et al. 1991 J. Phys D: Appl. Phys. 24 (9), 10251048.Google Scholar
Rayner, J. P., et al. 2004 IEEE Trans. Plasma Sci. 32 (1), 269281.Google Scholar
Shi, J. M., et al. 1995 Int. J. Infrared Millim. Waves 16, 11.Google Scholar
Usui, H., et al. 1999 Adv. Space Res. 24 (8), 10691072.Google Scholar
Vidmar, R. J. 1990 IEEE Trans. Plasma Sci. 18, 733.Google Scholar
Yang, Y.Q. May 2004 Time-resolved measurements of plasma electron number density and electron-neutral collision frequency using a microwave diagnostic method, Master Thesis, Department of Engineering Science, University of Tennessee, Knoxville.Google Scholar