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Time-domain near-field/near-field transform with PWS operations

Published online by Cambridge University Press:  22 February 2011

B. Ravelo*
Affiliation:
IRSEEM, EA 4353, At Graduate School of Engineering ESIGELEC, Technopole du Madrillet, Avenue Galilée, BP 10024, 76801 Saint-Étienne-du-Rouvray Cedex, France
Y. Liu
Affiliation:
IRSEEM, EA 4353, At Graduate School of Engineering ESIGELEC, Technopole du Madrillet, Avenue Galilée, BP 10024, 76801 Saint-Étienne-du-Rouvray Cedex, France
J. Ben Hadj Slama
Affiliation:
National Engineering School of Sousse (ENISo), Technopole de Sousse, 4054 Sousse, Tunisia
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Abstract

This article deals with the development of computation method dedicated to the extraction of the transient EM-near-field at certain distance from the given 2D data for the baseband application up to GHz. As described in the methodological analysis, it is based on the use of fft combined with the plane wave spectrum (PWS) operation. In order to verify the efficiency of the introduced method, a radiating source formed by the combination of electric dipoles excited by a short duration transient pulse current with a spectrum bandwidth of about 5 GHz is considered. It was shown that compared to the direct calculation, one gets the same behaviors of magnetic near-field components Hx, Hy and Hz with the presented extraction method, in the planes placed at {3 mm, 8 mm, 13 mm} of the initial reference plane. To confirm the relevance of the proposed transform, validation with a standard commercial tool was performed. In future, we envisage to exploit the proposed computation method to predict the transient electromagnetic (EM) field emissions notably in the microwave electronic devices for the EMC applications.

Type
Research Article
Copyright
© EDP Sciences, 2011

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References

W. Winter, M. Herbrig, in Proc. of IEEE EMC Symp., Austin, TX, USA, 2009, pp. 109–115
S. Braun, E. Gülten, A. Frech, P. Russer, in Proc. of IEEE EMC Symp., Austin, TX, USA, 2009, pp. 232–235
J. Rioult, D. Seetharamdoo, M. Heddebaut, in Proc. of IEEE EMC Symp., Austin, TX, USA, 2009, pp. 133–138
Z. Song, S. Donglin, F. Duval, A. Louis, D. Fei, A novel electromagnetic radiated emission Source identification methodology, in Proc. of Asia-Pacific Symp. EMC, Pekin, China, 2010, pp. 645–648
Edwards, R.S., Marvin, A.C., Porter, S.J., IEEE Trans. EMC 52, 155 (2010)
Liu, L., Cui, X., Qi, L., IEEE Trans. EMC 51, 1017 (2009)
R. Jauregui, P.I. Riu, F. Silva, in Proc. of IEEE EMC Symp., Fort Lauderdale, Florida, USA, 2010, pp. 257–262
Cicchetti, R., IEEE Trans. Ant. Propag. 39, 910 (1991) CrossRef
Song, J., Chen, K.-M., IEEE Trans. Ant. Propag. 41, 1414 (1993) CrossRef
Lakhtakiaa, A., Varadana, V.K., Varadana, V.V., Int. J. Electron. 63, 819 (1987) CrossRef
Schantz, H.G., IEEE Trans. Ant. Propag. Mag. 43, 50 (2001) CrossRef
W. Jun-Hong, J. Lang, J. Shui-Sheng, Optimization of the dipole shapes for maximum peak values of the radiating pulse, in Proc. of IEEE Trans. Ant. Propag. Society Int. Symp., Montreal, Quebec, Canada, 1997, Vol. 1, pp. 526–529
Sten, J.C.-E., Hujanen, A., PIER 56, 67 (2006) CrossRef
Shanker, B., Lu, M.A., Ergin, A., Michielssen, E., IEEE Trans. Ant. Propag. 53, 3704 (2005) CrossRef
Ravelo, B., PIER B 25, 171 (2010) CrossRef
H.R. Hertz, in Untersuchungen über die Ausbreitung der elektrischen Kraft (Johann Ambrosius Barth, Leipzig, Germany, 1892)
Vives-Gilabert, Y., Arcambal, C., Louis, A., Daran, F., Eudeline, P., Mazari, B., IEEE Trans. EMC 49, 391 (2007)
Vives-Gilabert, Y., Arcambal, C., Louis, A., Eudeline, P., Mazari, B., IEEE Trans. EMC 51, 909 (2009)
Selin, V.I., Comput. Math. Math. Phys. 41, 915 (2001)
Kozlov, I.P., J. Commun. Technol. Electron. 45, 496 (2000)
Ebenezer, D.D., Stepanishen, P.R., J. Acoust. Soc. Am. 89, 39 (1991) CrossRef
Birsan, M., Int. J. Numer. Model. 17, 325 (2004) CrossRef
Chew, W.C., Kong, J.A., Geophysics 46, 309 (1981) CrossRef
Smagin, S.I., Mazalov, V.N., Doklady Phys. 50, 178 (2005) CrossRef
C.A. Balanis, Antenna theory: Analysis and design, 3rd edn. (Wiley, New York, 2005), pp. 207–208
Paris, D.T., Paris, D.T., Leach, W.M., Joy, E.B., IEEE Trans. Ant. Propag. 26, 373 (1978) CrossRef
Wang, J.J.H., IEEE Trans. Ant. Propag. 36, 741 (1988)
Leather, P.S.H., Parsons, J.D., Electron. Lett. 39, 1780 (2003) CrossRef
J. Shi, M.A. Cracraft, J. Zhang, R.E. DuBroff, in Proc. of IEEE Ant. Propag. Int. Symp., San Jose, CA, USA, 1989, Vol. 3, p. 1477
J. Higashiyama, Y. Tarusawa, in Proc. of 18th Int. Zurich Symp. EMC, Munich, Germany, 2007, pp. 417–420
Baudry, D., Kadi, M., Arcambal, C., Riah, Z., Vives, Y., Louis, A., Mazari, B., IET Sci. Meas. Technol. 3, 72 (2009) CrossRef
Ravelo, B., Riah, Z., Baudry, D., Mazari, B., Eur. Phys. J. Appl. Phys. 53, 11201 (2011) CrossRef