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Design and Implementation of a Printed Circuit Model for a Wideband Circularly Polarized Bow-Tie Antenna
by
Dodd, Matthew J.
, Elsherbeni, Atef Z.
in
Antenna design
/ Antennas
/ Antennas (Electronics)
/ Bandwidths
/ Broadband
/ C band
/ Circuit printing
/ Circular polarization
/ Design
/ Design analysis
/ Equivalent circuits
/ Impedance matching
/ Microstrip antennas
/ Network design
/ Optimization
/ Printed circuits
/ Radiation
/ Satellites
/ Software
2024
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Design and Implementation of a Printed Circuit Model for a Wideband Circularly Polarized Bow-Tie Antenna
by
Dodd, Matthew J.
, Elsherbeni, Atef Z.
in
Antenna design
/ Antennas
/ Antennas (Electronics)
/ Bandwidths
/ Broadband
/ C band
/ Circuit printing
/ Circular polarization
/ Design
/ Design analysis
/ Equivalent circuits
/ Impedance matching
/ Microstrip antennas
/ Network design
/ Optimization
/ Printed circuits
/ Radiation
/ Satellites
/ Software
2024
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Do you wish to request the book?
Design and Implementation of a Printed Circuit Model for a Wideband Circularly Polarized Bow-Tie Antenna
by
Dodd, Matthew J.
, Elsherbeni, Atef Z.
in
Antenna design
/ Antennas
/ Antennas (Electronics)
/ Bandwidths
/ Broadband
/ C band
/ Circuit printing
/ Circular polarization
/ Design
/ Design analysis
/ Equivalent circuits
/ Impedance matching
/ Microstrip antennas
/ Network design
/ Optimization
/ Printed circuits
/ Radiation
/ Satellites
/ Software
2024
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Design and Implementation of a Printed Circuit Model for a Wideband Circularly Polarized Bow-Tie Antenna
Journal Article
Design and Implementation of a Printed Circuit Model for a Wideband Circularly Polarized Bow-Tie Antenna
2024
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Overview
A crossed bow-tie antenna design for S- and C-Band (2.44–7.62 GHz) with a peak gain of 7.29 dBi is presented to achieve wideband radiation efficiency greater than 90% and circular polarization with a single feed point. The polarization of the antenna is modeled by the input admittance of crossed bow-ties, and the model predictions are validated by experiments. A wideband matching network is designed to be tightly integrated with the antenna and produce a 103% impedance bandwidth. The matching network is decomposed into an equivalent circuit model, and an analysis is presented to demonstrate the principles of the matching network design. A prototype of the optimized antenna design is fabricated and measured to validate the analysis.
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