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A Linear Array Antenna of Microstrip Patch Antennas Fed by the Open-End of Coplanar Waveguides

DOI: 10.4236/wet.2017.82003, PP. 37-49

Keywords: Microstrip Patch Antenna, Coplanar Waveguide, Linear Array Antenna, Short Stub, Undesired Resonance Suppression

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Abstract:

In this study, we constructed a 4-element linear array antenna using four 20 GHz band microstrip patch antennas with a structure such that the signal is fed to the patch antennas from open-end coplanar waveguides without contact. We investigated factors related to the design of linear array patch antennas. To adjust the maximum radiation direction and reduce return loss, we optimized the spacing between the elements and their shape. With an element spacing of 11.50 mm, patch width of 3.90 mm, and patch length of 4.15 mm, we obtained a resonance frequency of 20.05 GHz and a return loss of -29.59 dB at the resonance frequency. However, in the case of a 4-element linear array antenna structure, undesired resonances occurred in frequency bands other than the design resonance frequency band of 20 GHz. To suppress these undesired resonances and obtaining stable operation at the design frequency, we propose a new structure in which the feed line is loaded with a short stub, and show through computer simulations that the occurrence of undesired resonances can be sufficiently suppressed. Furthermore, we demonstrate the problem of radiation gain reduction caused by introducing a short stub, propose a design method for a new structure in which the feed line has slits between the stubs, and show improvement of the antenna gain by 0.5 dBi.

References

[1]  International Telecommunication Union (2016) Use of the Frequency Bands 19.7-20.2 GHz and 29.5-30.0 GHz by Earth Stations in Motion Communicating with Geostationary Space Stations in the Fixed Satellite Service. Resolution 156. Proceedings of the World Radiocommunication Conference (WRC-15), Geneva, 2-27 November 2015.
[2]  Kamei, T., Utsumi, Y., Moritake, H., Toda, K. and Suzuki, S. (2003) Measurements of the Dielectric Properties of Nematic Liquid Crystal at 10 kHz to 40 GHz and Application to a Variable Delay Line. Electronics and Communications in Japan (Part II: Electronics), 86, 49-60.
https://doi.org/10.1002/ecjb.10130
[3]  Utsumi, Y., Kamei, T., Saito, K. and Moritake, H. (2005) Increasing the Speed of Microstrip-Line-Type Polymer-Dispersed Liquid-Crystal Loaded Variable Phase Shifter. IEEE Transactions on Microwave Theory and Techniques, 53, 3345-3353.
https://doi.org/10.1109/TMTT.2005.857123
[4]  Utsumi, Y., Kamei, T., Maeda, T. and Dinh, N.Q. (2007) Microwave High-Speed Liquid Crystal Devices Using CPW with Floating Electrode. Molecular Crystals and Liquid Crystals, 476, 249-259.
https://doi.org/10.1080/15421400701739121
[5]  International Telecommunication Union (2012) Recommendation, ITU-R BO. 1776-1. Maximum Power Flux-Density for the Broadcasting-Satellite Service in the Band 21.4-22.0 GHz in Regions 1 and 3. International Telecommunication Union, Geneva.
[6]  Kamei, T., Yokota, M., Ozaki, R., Moritake, H. and Onodera, N. (2011) Microstrip Array Antenna with Liquid Crystals Loaded Phase Shifter. Molecular Crystals and Liquid Crystals, 542, 689-697.
https://doi.org/10.1080/15421406.2011.570555
[7]  Kamei, T., Utsumi, Y., Dinh, N.Q. and Thanh, N. (2007) Wide-Band Coaxial-to-Coplanar Transition. IEICE Transactions on Electronics, E90-C, 2030-2036.
https://doi.org/10.1093/ietele/e90-c.10.2030
[8]  Kamei, T., Ohshima, Y. and Kawano, T. (2014) A Study for Patch Length L of Microstrip Patch Antenna Excited By Coplanar Waveguide Edge Slot. Proceedings of APCOM 2014, Tokyo, 24-27 August 2014, 76-79.
[9]  Ohshima, Y., Kamei, T. and Kawano, T. (2014) Design of Microstrip Patch Antenna Excited by Coplanar Waveguide Edge Slot. Proceedings of Asia-Pacific Microwave Conference 2014, Sendai, 4-7 November 2014, FR3G-39, 1396-1398.
[10]  Ohshima, Y., Kamei, T. and Kawano,T. (2015) A Study for Design of Microstrip Patch Antenna Fed by Open-End of Coplanar Waveguide. IEICE Transactions on Electronics, J98-C, 348-355.
[11]  Lalezari, F. and Massey, C.D. (1987) MM-Wave Microstrip Antennas. Microwave Journal, 30, 87-96.
[12]  Takiguchi, Y., Ma, Z. and Kobayashi, Y. (2000) SCE2000-26/MW2000-90 Design of a Novel 30 GHz Band-Pass Filter Using Coplanar Waveguide Structures [in Japanese].Technical Report of IEICE, 100, 105-109.

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