Title :
Integrated uniplanar transition for linearly tapered slot antenna
Author :
Simons, Rainee N. ; Dib, Nihad I. ; Lee, Richard Q. ; Katehi, Linda P B
Author_Institution :
NASA Lewis Res. Center, Cleveland, OH, USA
fDate :
9/1/1995 12:00:00 AM
Abstract :
This paper presents the design, fabrication, and numerical modeling of two new uniplanar microstrip-to-coplanar strip (CPS) line transitions and a new variant of the linearly tapered slot antenna (LTSA). This new variant with an integrated uniplanar microstrip-to-coplanar strip line feed is called a V-LTSA. The advantages of these transitions in packaging and monolithic microwave integrated circuits (MMIC) integration are listed. The two transitions and the feed are modeled using finite difference time domain (FDTD) method. The overall agreement between the measured and modeled return-loss and insertion-loss characteristics of two back-to-back transitions is good. The resonance frequencies predicted by the FDTD method are within a few percentage points of the measurements. Furthermore, the V-LTSA with the feed is experimentally shown to have a wide return loss (⩽-10 dB) bandwidth, good radiation patterns, and low cross-polarization. The gain of the V-LTSA is 9 dB at the design frequency of 10 GHz. A proof-of-concept package to house the feed is experimentally evaluated and shown to have negligible effect on the antenna characteristics. This type of antenna readily integrates with MMIC packages in an array having a brick architecture. The V-LTSA has potential applications in phased arrays
Keywords :
MMIC; active antenna arrays; antenna feeds; antenna phased arrays; antenna radiation patterns; finite difference time-domain analysis; integrated circuit packaging; linear antenna arrays; microstrip antenna arrays; microstrip lines; microwave antenna arrays; satellite antennas; slot antenna arrays; 10 GHz; 9 dB; FDTD; MMIC; back-to-back transitions; bandwidth; design frequency; fabrication; finite difference time domain; insertion-loss; integrated uniplanar transition; linearly tapered slot antenna; low cross-polarization; measurements; microstrip-to-coplanar strip line transitions; monolithic microwave integrated circuits; numerical modeling; packaging; phased arrays; proof-of-concept package; radiation patterns; resonance frequencies; return-loss; strip line feed; Fabrication; Feeds; Finite difference methods; Integrated circuit packaging; MMICs; Microstrip antennas; Microwave integrated circuits; Numerical models; Phased arrays; Slot antennas;
Journal_Title :
Antennas and Propagation, IEEE Transactions on