Design and Full-Wave Analysis of Cavity-Backed Resistively Loaded Circular-End Bow-Tie Antennas for GPR Applications – Part I
Keywords:
Design and Full-Wave Analysis of Cavity-Backed Resistively Loaded Circular-End Bow-Tie Antennas for GPR Applications – Part IAbstract
In this paper, the design of cavitybacked bow-tie antennas for ground-penetrating radars is presented. Dielectric embedding and resistive loading of the radiating structure are employed to achieve at least 30 : 1 relative bandwidth (55 MHz? >1.5 GHz), with a maximum antenna size of 40 cm and stable antenna performance over different types of the ground. The design procedure is described in detail and provides useful guidelines for the considered class of radiators. Antenna parameters are optimized numerically to combine a large operational bandwidth with reasonably high antenna efficiency. To this end, a full-wave locally conformal finite-difference time domain procedure useful to model electromagnetic structures having complex geometrical and electrical characteristics in the vicinity of the ground is adopted.
Downloads
References
D. Daniels, Ground Penetrating Radar, 2nd ed.,
IEE Press, 2004.
A. G. Yarovoy and L. P. Ligthart, “Theoretical
and experimental analysis of GPR antennas,” in
Proc. URSI EMTS International Symposium on
Electromagnetic Theory, Pisa, Italy, vol. 1, pp.
–110, May 23-27, 2004.
W. L. Stutzman and G. A. Thiele, Antenna
Theory and Design, 2nd ed., Wiley-Interscience,
C. A. Balanis, Antenna Theory: Analysis and
Design, 3rd ed., Wiley-Interscience, 2005.
D. Caratelli, “Design and analysis of antennas
for ground penetrating radar applications,” Delft
University of Technology, the Netherlands, Tech.
Rep. IRCTR–S–041–07, Sept. 11, 2007.
D. Caratelli, “Full-wave analysis of cavity-backed
resistively loaded bow-tie antennas for GPR ap-
plications,” Delft University of Technology, the
Netherlands, Tech. Rep. IRCTR–S–001–08,
Jan. 11, 2008.
D. Caratelli, A. Yarovoy, and L. P. Ligthart,
“Full-wave analysis of cavity-backed resistively-
loaded bow-tie antennas for GPR applications,”
European Microwave Conference 2008, Amster-
dam, the Netherlands, pp. 204-207, October 27-
, 2008.
G. H. Brown and O. M. Woodward Jr., “Experi-
mentally determined radiation characteristics of
conical and triangular antennas,” RCA Rev., vol.
, pp. 425–452, Dec. 1952.
K. L. Shlager, G. S. Smith, and J. G. Maloney,
“Optimization of bow-tie antennas for pulse ra-
diation,” IEEE Trans. Antennas Propagat., vol.
, pp. 975–982, July 1994.
A. A. Lestari, A. G. Yarovoy, and L. P. Ligth-
art, “RC-loaded bow-tie antenna for improved
pulse radiation,” IEEE Trans. Antennas Propa-
gat., vol. 52, pp. 2555–2563, Oct. 2004.
A. A. Lestari, A. G. Yarovoy, and L. P. Ligthart,
“Adaptive wire bow-tie antenna for GPR appli-
cations,” IEEE Trans. Antennas Propagat., vol.
, pp. 1745–1754, May 2005.
B. Lampe and K. Holliger, “Resistively loaded
antennas for ground-penetrating radar: A mod-
eling approach,” Geophysics, vol. 70, pp. 23–32,
May-June 2005.
Y. Nishioka, O. Maeshima, T. Uno, and S.
Adachi, “FDTD analysis of resistor-loaded bow-
tie antennas covered with ferrite-coated conduct-
ing cavity for subsurface radar,” IEEE Trans.
Antennas Propagat., vol. 47, pp. 970-977, June
R. E. Collin, Foundations for Microwave Engi-
neering , 2nd ed., Wiley-IEEE Press, 2000.
D. R. Saini, V. M. Nadkarni, P. D. Grover, and
K. D. P. Nigam, “Dynamic mechanical, electrical
and magnetic properties of ferrite filled styrene-
isoprene-styrene,” Journal of Materials Science,
vol. 21, pp. 3710-3716, Oct. 1986.
Emerson & Cuming microwave products. Ec-
costock HiK500F technical datasheet. Avail-
ACES JOURNAL, VOL. 25, NO. 10, OCTOBER 2010
able online at: http://www.eccosorb.com/file/
/ek-025%20eccostock%20hik500f%20.pdf
K. C. Gupta, R. Garg, and I. J. Bahl, Microstrip
Lines and Slotlines, Artech House, 1979.
R. L. Carrel, “The characteristic impedance of
two infinite cones of arbitrary cross section,” IRE
Trans. Antennas Propagat., vol. 6, pp. 197–201,
Apr. 1958.
M. Abramovich and I. A. Stegun, Handbook
of Mathematical Functions, Dover Publications,
K. S. Yee, “Numerical solution of initial bound-
ary value problems involving Maxwell’s equa-
tions,” IEEE Trans. Antennas Propagat., vol.
, pp. 302–307, May 1966.
A. Taflove and S. C. Hagness, Computational
Electrodynamics: The Finite-Difference Time-
Domain Method, 3rd ed., Artech House, 2005.
D. Caratelli and R. Cicchetti, “A full-wave analy-
sis of interdigital capacitors for planar integrated
circuits,” IEEE Trans. Magnetics, vol. 39, pp.
–1601, May 2003.
D. Caratelli, R. Cicchetti, G. Bit-Babik, and A.
Faraone, “A perturbed E-shaped patch antenna
for wideband WLAN applications,” IEEE Trans.
Antennas Propagat., vol. 54, pp. 1871-1874,
June 2006.
S. D. Gedney, “An anisotropic perfectly matched
layer-absorbing medium for the truncation of
FDTD lattices,” IEEE Trans. Antennas Prop-
agat., vol. 44, pp. 1630-1639, Dec. 1996.
DEMINE partners. Public Report D16, Euro-
pean Project 29902 DEMINE, 2002. Available
online at: http://www.eudem.vub.ac.be/files/
demine final report.pdf
R. Persico and G. Prisco, “A reconfigurative ap-
proach for SF-GPR prospecting,” IEEE Trans.
Antennas Propagat., vol. 56, pp. 2673-2680,
Aug. 2008


