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  4. Wideband Leaky-Wave Antennas Loaded with Gradient Metasurface for Fixed-Beam Radiations with Customized Tilting Angles
 
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Wideband Leaky-Wave Antennas Loaded with Gradient Metasurface for Fixed-Beam Radiations with Customized Tilting Angles

Publikationstyp
Journal Article
Date Issued
2020-01
Sprache
English
Author(s)
Chen, Jian Feng  
Yuan, Wei  
Zhang, Cheng  
Tang, Wenxuan  
Wang, Lei  
Cheng, Qiang  
Cui, Tie Jun  
Institut
Theoretische Elektrotechnik E-18  
TORE-URI
http://hdl.handle.net/11420/4652
Journal
IEEE transactions on antennas and propagation  
Volume
68
Issue
1
Start Page
161
End Page
170
Article Number
8842610
Citation
IEEE Transactions on Antennas and Propagation 1 (68): 8842610 (2020-01)
Publisher DOI
10.1109/TAP.2019.2940542
Scopus ID
2-s2.0-85077960965
We propose a hybrid dispersion compensation method to design wideband fixed-beam leaky-wave antennas (LWAs), with the tilting angle customizable in both forward and backward quadrants. In a previous work, a triangular dispersive prism constituted by metallic pins was presented to compensate for the dispersion of traditional LWAs and achieve a squint-free radiation in a relative bandwidth of 20%. However, that design suffered from the drawbacks of large geometry and limited angular range. To overcome these limitations, here a broadband gradient metasurface based on geometric phase theory is loaded in front of the prism to customize the radiation angle and reduce the total prism size. In addition, a novel ridged gap waveguide is employed to improve the linearity of LWA dispersion, which is beneficial to maintain the bandwidth of LWA with reduced size. Two examples are presented to demonstrate the excellent performance of the designed antennas. One antenna radiates at an angle of 39.5° in a squint-free bandwidth of 20%, but the prism size is decreased to a quarter of the original one, while the other realizes a broadside radiation with a squint-free bandwidth of 18%. Good agreement is exhibited between simulated and experimental results. The proposed method can be further extended to compensate for the dispersion of antenna arrays and improve the angular stability of the radiation beams in a large frequency band.
Subjects
Dispersive compensation
dispersive prism
gradient metasurface
groove gap waveguide (GW)
leaky-wave antenna (LWA)
DDC Class
600: Technology
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