scholarly journals Wide-Angle Wideband Frequency-Independent Beam-Scanning Leaky Wave Antenna

Author(s):  
Shu-Lin Chen ◽  
Debabrata K. Karmokar ◽  
Richard W. Ziolkowski ◽  
Y. Jay Guo
2018 ◽  
Vol 17 (8) ◽  
pp. 1571-1574 ◽  
Author(s):  
Karthik Rudramuni ◽  
Krishnamoorthy Kandasamy ◽  
Qingfeng Zhang ◽  
Xiao-Lan Tang ◽  
Abhishek Kandwal ◽  
...  

2019 ◽  
Vol 67 (7) ◽  
pp. 4418-4428 ◽  
Author(s):  
Shu-Lin Chen ◽  
Debabrata K. Karmokar ◽  
Zheng Li ◽  
Pei-Yuan Qin ◽  
Richard W. Ziolkowski ◽  
...  

Electronics ◽  
2018 ◽  
Vol 7 (12) ◽  
pp. 348 ◽  
Author(s):  
Leilei Liu ◽  
Jian Wang ◽  
Xiaoxing Yin ◽  
Zhi Chen

This paper proposes a wide-angle beam scanning leaky-wave antenna (LWA) fed by a novel spoof surface plasmon polaritons (SSPP) transmission line (TL). In the proposed LWA, circular metallic patches are periodically loaded on both sides of the SSPP TL alternately, and convert guided waves into radiating waves. The transmission characteristics of the proposed SSPP TL are analyzed, and the transmission characteristics and radiation patterns of the proposed LWA are simulated and measured. The simulated and measured results show that the proposed LWA provides approximately 12.5 dBi of radiation gain within a frequency range of 8–24 GHz, and a beam scanning range of 90° from forward to backward continuously by increasing the feeding frequency. The proposed LWA, based on a novel SSPP TL, has advantages of single-layer conductor, continuous wide-angle beam scanning, and high gain especially at the broadside direction, which are difficult realize using conventional LWAs.


Author(s):  
Ruchi Agarwal ◽  
Prakhar Pratap Singh ◽  
Suresh Kumar ◽  
Umang Singh ◽  
Vipul Agarwal

Author(s):  
Hao Jiang ◽  
Kuiwen Xu ◽  
Qingfeng Zhang ◽  
Yang Yang ◽  
Debabrata K. Karmokar ◽  
...  

2020 ◽  
Vol 10 (6) ◽  
pp. 1927 ◽  
Author(s):  
Shaoyi Xie ◽  
Jiawei Li ◽  
Guangjian Deng ◽  
Jiaxin Feng ◽  
Shaoqiu Xiao

This paper presents a frequency-independent, wide-angle scanning leaky-wave antenna (LWA), based on the composite right/left-handed transmission line (CRLH TL). The proposed LWA consists of a coplanar waveguide-grounded (CPWG) structure loaded by varactors. Loaded varactors are used to control the phase constant of the fundamental mode of the LWA by adjusting the applied DC voltage. The LWA has an excellent wide-angle scanning capability, a simple structure, and low cost. Results show that the main beam of an LWA with 20unit cells can scan from −66° to 62° at the operation frequency of3.0 GHz, with a peak gain of 9.9 dBi, and a gain fluctuation of less than 4.9 dB. The operation bandwidth and radiation efficiency are about 13% and over 50%, respectively. A 10-unit cascaded LWA prototype was designed, fabricated, and measured to verify the design concept.


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