Power network for millimeter band antenna arrays using SIW technology

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Fabricio Javier Santacruz Sulca
Fausto Ramiro Cabrera Aguayo
Jefferson Ribadeneira
Diego Fernando Veloz Cherrez

Abstract

The research proposes to design a power supply network in SIW technology (Substrate Integrated Waveguide) for antenna arrays in millimeter bands. This network is used as a base for a T-type power splitter with SIW technology. The network is useful for antenna networks with 5G technology. This T‑type power splitter has the main characteristic of symmetry in its output ports. The wavelengths of the two output branches remain the same concerning the input port. The voltage division is achieved through a central partition in the T-type power splitter. Based on the results, the benefits of the power supply network are validated, with SIW technology getting the same behavior in the electric field distribution as in a standard waveguide. Perhaps the power supply network reduces the weight and losses in the conductor presented in the traditional waveguides.

Article Details

How to Cite
Power network for millimeter band antenna arrays using SIW technology. (2018). MASKAY, 9(1), 9-14. https://doi.org/10.24133/maskay.v9i1.1062
Section
TECHNICAL PAPERS

How to Cite

Power network for millimeter band antenna arrays using SIW technology. (2018). MASKAY, 9(1), 9-14. https://doi.org/10.24133/maskay.v9i1.1062

References

[1] D. Wu et al., “Low threshold current density 1.3 μm metamorphic InGaAs/GaAs quantum well laser diodes,” Electron. Lett., vol. 44, no. 7, pp. 7–8, 2008.

[2] H. Ragad, “Design of patch array antennas for future 5G applications,” pp. 0–4, 2019.

[3] P. A. Dzagbletey and Y.-B. Jung, “Stacked Microstrip Linear Array for Millimeter-Wave 5G Baseband Communication,” IEEE Antennas Wirel. Propag. Lett., vol. 1225, no. c, pp. 1–1, 2018.

[4] D. Moreno, “Permittivity Characterization of a dielectric material using radar techniques,” Universita della Calabria, 2015.

[5] C. A. Balanis, Antenna Theory: Analysis and Design, Second. 1982.

[6] S. Germain, D. Deslandes, and K. Wu, “Development of substrate integrated waveguide power dividers,” CCECE 2003 - Can. Conf. Electr. Comput. Eng. Towar. a Caring Hum. Technol. (Cat. No.03CH37436), vol. 3, pp. 1921–1924, 2003.

[7] K. Song, Y. Fan, and Y. Zhang, “Eight-way substrate integrated waveguide power divider with low insertion loss,” IEEE Trans. Microw. Theory Tech., vol. 56, no. 6, pp. 1473–1477, 2008.

[8] K. Wu, D. Deslandes, and Y. Cassivi, “The Substrate Integrated Circuits - A New Concept for High-Frequency Electronics and Optoelectronics,” Telecommun. Mod. Satell. Cable Broadcast. Serv., pp. 2–9, 2003.

[9] D. Deslandes and K. Wu, “Integrated microstrip and rectangular waveguide in planar form,” IEEE Microw. Wirel. Components Lett., vol. 11, no. 2, pp. 68–70, 2001.

[10] A. Adabi and M. Tayarani, “Substrate Integration Of Dual Inductive Post Waveguide Filter,” Prog. Electromagn. Res. B, vol. 7, pp. 321–329, 2008.

[11] B. H. Ahmad, S. S. Sabri, and A. R. Othman, “Design of a Compact X-Band Substrate Integrated Waveguide Directional Coupler,” Int. J. Eng. Technol., vol. 5, no. 2, pp. 1905–1911, 2013.

[12] X. Xu, R. G. Bosisio, and K. Wu, “A new six-port junction based on substrate integrated waveguide technology,” IEEE Trans. Microw. Theory Tech., vol. 53, no. 7, pp. 2267–2272, 2005.

[13] Y. J. Ban, “Tunable Ferrite Phase Shifters Using Substrate Integrated Waveguide Technique,” Département Génie Electr. Ec. Polytech. Montréal, 2010.

[14] D. Eom, J. Byun, and H. Y. Lee, “Multi-layer four-way out-of-phase power divider for substrate integrated waveguide applications,” IEEE MTT-S Int. Microw. Symp. Dig., pp. 477–480, 2009.

[15] D. Deslandes and K. Wu, “Design consideration and performance analysis of substrate integrated waveguide components,” 2002 32nd Eur. Microw. Conf. EuMC 2002, no. 2, pp. 1–4, 2002.

[16] Y. Cassivi, L. Perregrini, P. Arcioni, M. Bressan, K. Wu, and G. Conciauro, “Dispersion characteristics of substrate integrated rectangular waveguide,” IEEE Microw. Wirel. Components Lett., vol. 12, no. 9, pp. 333–335, 2002.

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