Arreglo de Antenas Patch para Sistemas de Comunicaciones Inalámbricas MIMO-LTE (4G)

Authors

DOI:

https://doi.org/10.22335/rlct.v6i2.87

Keywords:

array of antennas, characteristic modes, Spatial correlation, multiple-input-multiple-output (MIMO), mutual coupling

Abstract

In this paper we present a compact MIMO array that operates in the 2.6 GHz for Long Term Evolution (LTE) band and wireless communication systems. The array consists of four compact patch antennas on a dielectric substrate with total dimensions of 125 mm x 62.5 mm x 1.27 mm. Modifications on the ground plane along with systematic placement and orientation of each antenna on top of the substrate plays a key role in reducing the mutual coupling which normally degrades the MIMO array performance. The Performance of this designed MIMO array is assessed through simulations and measurements of the scattering parameters, radiation patterns, and correlation coefficients.

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Author Biographies

  • Eduardo Rodríguez Araque, Unicafam

    Coordinador de Investigación. Facultad de Ingeniería.

  • Roberto G. Rojas, Ohio State University

    Ohio State University/ElectroScience Laboratory.

References

Badiola Heresmann, I. (2011). Función policial, democracia y accountability. Revista Logos Ciencia & Tecnología, 2(2), 188-201. doi:http://dx.doi.org/10.22335/rlct.v2i2.96

Blanch, S., Romeu, J. & Corbella, I. (2003). Exact representation of antenna system diversity performance from input parameter description. Electronics Letters, 39(9), 705-707.

Chebihi, A., Luxey, C., Diallo, A., Le-Thuc, P. & Staraj, R. (2009). A new method to increase the port-to-port isolation of a compact two-antenna umts system. Antennas and Propagation EuCAP2009, 3rd European Conference, 1098–1101.

Dadashzadeh, G., Dadgarpour, A., & Virdee, B. (2011). Mutual coupling suppression in closely spaced antennas. Microwaves and Antennas Propagation of IET, 5(1), 113–125.

Dama, Y. A., Hussaini, A., Abd-Alhameed, R. A., Jones, S. M., McEwan, & Rodriguez, J. (2011). Envelope correlation formula for (n,n) MIMO antenna array including power losses. Electronics, Circuits and Systems ICECS, 18th IEEE International Conference, 5-12.

Garbacz, R. (1965). Modal expansions for resonance scattering phenomena. Proceedings of the IEEE, 53(8), 324 -357.

Harrington, R., & Mautz, J. (1971). Theory of characteristic modes for conducting bodies. Antennas and Propagation on IEEE Transactions, 19(5), 622–628.

Hernández Gómez, J. (2011). Inteligencia económica. Revista Logos Ciencia & Tecnología, 3(1), 37-55. doi:http://dx.doi.org/10.22335/rlct.v3i1.105

Huertas, O. (2013). Política criminal del Estado colombiano y los derechos de las personas privadas de la libertad: Análisis legislativo y jurisdicional Corte Constitucional. Revista Logos Ciencia y Tecnología, 53.

Karaboikis, M., Soras, C., Tsachtsiris, G., & Makios, V. (2004). Compact dual-printed inverted-f antenna diversity systems for portable wireless devices. Antennas and Wireless Propagation Letters of IEEE, 3(1), 9–14.

Limongi, F. (2014). Fazendo Eleitores e Eleições: Mobilização Política e Democracia no Brasil Pós-Estado Novo. Dados. 58(2). http://dx.doi.org/10.1590/00115258201547

Li, Z., Du, Z., & Gong, K. (2008). A novel wideband printed diversity antenna for mobile phone application. Antennas and Propagation Society International Symposium of IEEE, 1–4.

Mak, A., Rowell, C., & Murch, R. (2008). Isolation enhancement between two closely packed antennas. Antennas and Propagation of IEEE Transactions, 56(11), 3411–3419.

Mavridis, G., Sahalos, J., & Chryssomallis, M. (2006). Spatial diversity two-branch antenna for wireless devices. Electronics Letters, 42(5), 266–268.

Mendoza, Ursula, Candella, Rogério N., Assad, Luiz P.F., Castillo, Federico V., Azevedo, Laura, Knoppers, Bastiaan A., & Albuquerque, Ana Luiza S.. (2014). A Model Analysis for the Design and Deployment of an Eulerian Sediment Trap Mooring Array in a Western Boundary Upwelling System from Southeast Brazil. Anais da Academia Brasileira de Ciências, 86(2), 589-600. https://dx.doi.org/10.1590/0001-37652014107112

Miranda, H. I. C., Aguiar, P. R., Euzebio, C. D. G., & Bianchi, E. C. (2010). Fuzzy logic to predict thermal damages of ground parts. Scopus, 434–441.

Yohannes, E., Nikolaus, G., & Pearson, D. J. (2013). Stable isotopes of soil collected from feet of two species of migratory Acrocephalus give clues to stopover sites. Scopus, 32, 1–9.

Wiersma, D. S., & Cavalieri, S. (2001). Light emission: A temperature-tunable random laser. Nature, 414(6865), 708-709.

Ozdemir, M., Arvas, E., & Arslan, H. (2004). Dynamics of spatial correlation and implications on mimo systems. Communications Magazine of IEEE, 42(6), S14–S19.

Park, J., Choi, J., Park, J.Y., & Kim, Y.-S. (2012). Study of a t-shaped slot with a capacitor for high isolation between mimo antennas. Antennas and Wireless Propagation Letters of IEEE, 11, 1541–1544.

See, C. H., Abd-Alhameed, R., Abidin, Z., McEwan, N., & Excell, P. (2012). Wideband printed mimo/diversity monopole antenna for wifi/wimax applications. Antennas and Propagation of IEEE Transactions, 60(4), 2028–2035.

Yang, F., & Rahmat-Samii, Y. (2003). Microstrip antennas integrated with electromagnetic band-gap (ebg) structures: a low mutual coupling design for array applications. Antennas and Propagation of IEEE Transactions, 51(10), 2013-2024.

Yang, X. M., Liu, X. G., Zhou, X. Y. & Cui, T.J. (2012). Reduction of mutual coupling between closely packed patch antennas using waveguided metamaterials. Antennas and Wireless Propagation Letters of IEEE, 11(2), 389–391.

Published

2015-11-09

Issue

Section

Artículos originales

How to Cite

Arreglo de Antenas Patch para Sistemas de Comunicaciones Inalámbricas MIMO-LTE (4G). (2015). Revista Logos Ciencia & Tecnología, 6(2), 167-176. https://doi.org/10.22335/rlct.v6i2.87