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Erschienen in: Wireless Personal Communications 2/2020

02.04.2020

Design of Multiband Frequency Reconfigurable Antenna with Defected Ground Structure for Wireless Applications

verfasst von: M. Jenath Sathikbasha, V. Nagarajan

Erschienen in: Wireless Personal Communications | Ausgabe 2/2020

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Abstract

A novel printed rectangular shape, multi-band frequency reconfigurable antenna with defected ground structure (FRDGS) for multi standard wireless communication systems is designed in this article. The ground plane is modified by embedding U shaped slots with open ends and I shaped slot in short ends to realize the multi band frequency of the antenna and to improve the parameters of the antenna design. The two U shape slots are etched symmetrical to each other to reduce the cross polarization of the antenna. The DGS in the ground plane altered the modeling characteristics of transmission lines with the equivalent values of inductance, capacitance and resistance. Three PIN diodes are inserted in the ground plane to acquire the switching characteristics of multi-resonance frequency. Simulated and measured output clearly depict that the antenna proposed is efficient to change between twelve dissimilar resonant frequency bands centered at 1.36, 1.8, 3.0, 3.9, 5.0, 6.2, 6.4, 7.4, 7.9, 8.2, 8.4, 8.6 GHz through different states of modes over the frequency spectrum from 1.33 to 8.7 GHz. The parameters such as reflection coefficient, VSWR, 2D and 3D radiation pattern, bandwidth, peak gain, peak directivity, gain and directivity are simulated using Ansoft HFSS 17.0v. The proposed antenna finds application in various wireless communication system such as Wi-Fi (5 GHz), WLAN (5 GHz), WI-MAX, UWB (3.1–10.6 GHz) system, fixed mobile and satellite communication systems.

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Literatur
1.
Zurück zum Zitat Balanis, C. A. (2005). Antenna theory: Analysis and design (3rd ed.). Hoboken: Wiley. Balanis, C. A. (2005). Antenna theory: Analysis and design (3rd ed.). Hoboken: Wiley.
2.
Zurück zum Zitat Peroulis, D., Sarabandi, K., & Katehi, L. P. B. (2005). Design of reconfigurable slot antennas. IEEE Transactions on Antennas and Propagation,53(2), 645–654.CrossRef Peroulis, D., Sarabandi, K., & Katehi, L. P. B. (2005). Design of reconfigurable slot antennas. IEEE Transactions on Antennas and Propagation,53(2), 645–654.CrossRef
3.
Zurück zum Zitat Shynu, S. V., Augustin, G., Aanandan, C. K., Mohanan, P., & Vasudevan, K. (2005). A reconfigurable dual frequency slot-loaded microstrip antenna controlled by PIN diodes. Microwave Optical Technology Letters,44, 374–376.CrossRef Shynu, S. V., Augustin, G., Aanandan, C. K., Mohanan, P., & Vasudevan, K. (2005). A reconfigurable dual frequency slot-loaded microstrip antenna controlled by PIN diodes. Microwave Optical Technology Letters,44, 374–376.CrossRef
4.
Zurück zum Zitat Shynu, S. V., Augustin, G., Aanandan, C. K., Mohanan, P., & Vasudevan, K. (2006). Design of compact reconfigurable dual frequency microstrip antennas using varactor diodes. Progress in Electromagnetics Research,60, 197–205.CrossRef Shynu, S. V., Augustin, G., Aanandan, C. K., Mohanan, P., & Vasudevan, K. (2006). Design of compact reconfigurable dual frequency microstrip antennas using varactor diodes. Progress in Electromagnetics Research,60, 197–205.CrossRef
5.
Zurück zum Zitat Al-Maznaee, T., & Abed-El-Raouf, H. E. (2009). Design of reconfigurable patch antenna with a switchable V-slot. Progress in Electromagnetics Research C,6, 145–158.CrossRef Al-Maznaee, T., & Abed-El-Raouf, H. E. (2009). Design of reconfigurable patch antenna with a switchable V-slot. Progress in Electromagnetics Research C,6, 145–158.CrossRef
6.
Zurück zum Zitat Majid, H. A., Abdul Rahim, M. K., Hamid, M. R., Murad, N. A., & Ismail, M. F. (2013). Frequency-reconfigurable microstrip patch-slot antenna. IEEE Antennas Wireless Propagation Letters,12, 218–220.CrossRef Majid, H. A., Abdul Rahim, M. K., Hamid, M. R., Murad, N. A., & Ismail, M. F. (2013). Frequency-reconfigurable microstrip patch-slot antenna. IEEE Antennas Wireless Propagation Letters,12, 218–220.CrossRef
7.
Zurück zum Zitat Jothichitra, R., & Nagarajan, V. (2014). Frequency reconfigurable using PIN diodes. In 2014 twentieth national conference on IEEE communications (NCC), February 28–March 2, 2014. Jothichitra, R., & Nagarajan, V. (2014). Frequency reconfigurable using PIN diodes. In 2014 twentieth national conference on IEEE communications (NCC), February 28–March 2, 2014.
8.
Zurück zum Zitat Rajagopalan, H., Kovitz, J. M., & Rahmat-Samii, Y. (2014). MEMS reconfigurable optimized E-shaped patch antenna design for cognitive radio. IEEE Transactions on Antennas and Propagation,62(3), 1056–1064.CrossRef Rajagopalan, H., Kovitz, J. M., & Rahmat-Samii, Y. (2014). MEMS reconfigurable optimized E-shaped patch antenna design for cognitive radio. IEEE Transactions on Antennas and Propagation,62(3), 1056–1064.CrossRef
9.
Zurück zum Zitat Sim, C. Y. D., Han, T. Y., & Liao, Y. J. (2014). A frequency reconfigurable half annular ring slot antenna design. IEEE Transactions on Antennas and Propagation,62(6), 3428–3431.CrossRef Sim, C. Y. D., Han, T. Y., & Liao, Y. J. (2014). A frequency reconfigurable half annular ring slot antenna design. IEEE Transactions on Antennas and Propagation,62(6), 3428–3431.CrossRef
10.
Zurück zum Zitat Sharma, S., & Tripathi, C. C. (2015). Frequency reconfigurable U-slot antenna for SDR application. Progress in Electromagnetics Research Letters,55, 129–136.CrossRef Sharma, S., & Tripathi, C. C. (2015). Frequency reconfigurable U-slot antenna for SDR application. Progress in Electromagnetics Research Letters,55, 129–136.CrossRef
11.
Zurück zum Zitat Bhattacharya, A., & Jyoti, R. (2015). Frequency reconfigurable patch antenna using PIN diode at X-band. In 2015 IEEE 2nd international conference on recent trends in information systems (ReTIS), July 9–11, 2015. Bhattacharya, A., & Jyoti, R. (2015). Frequency reconfigurable patch antenna using PIN diode at X-band. In 2015 IEEE 2nd international conference on recent trends in information systems (ReTIS), July 9–11, 2015.
12.
Zurück zum Zitat Han, L., Wang, C., Chen, X., & Zhang, W. (2016). Compact frequency reconfigurable slot antenna for wireless applications. IEEE Antennas and Wireless Propagation Letters,15, 1795–1798.CrossRef Han, L., Wang, C., Chen, X., & Zhang, W. (2016). Compact frequency reconfigurable slot antenna for wireless applications. IEEE Antennas and Wireless Propagation Letters,15, 1795–1798.CrossRef
13.
Zurück zum Zitat Yang, X., Chen, Y., Ye, L., Wang, M., Yu, M., & Liu, Q. H. (2016). Frequency reconfigurable circular patch antenna using PIN diodes. In 2016 IEEE international conference on microwave and millimeter wave technology (ICMMT), June 5–8, 2016. Yang, X., Chen, Y., Ye, L., Wang, M., Yu, M., & Liu, Q. H. (2016). Frequency reconfigurable circular patch antenna using PIN diodes. In 2016 IEEE international conference on microwave and millimeter wave technology (ICMMT), June 5–8, 2016.
14.
Zurück zum Zitat Kakhki, M. B., & Rezaei, P. (2017). Reconfigurable microstrip slot antenna with DGS for UWB applications. International Journal of Microwave and Wireless Technologies,9, 1517–1522.CrossRef Kakhki, M. B., & Rezaei, P. (2017). Reconfigurable microstrip slot antenna with DGS for UWB applications. International Journal of Microwave and Wireless Technologies,9, 1517–1522.CrossRef
15.
Zurück zum Zitat Jenath, M., & Nagarajan, V. (2017). Review on frequency reconfigurable antenna for wireless applications. In 2017 IEEE international conference on communication and signal processing (ICCSP), April 6–8, 2017. Jenath, M., & Nagarajan, V. (2017). Review on frequency reconfigurable antenna for wireless applications. In 2017 IEEE international conference on communication and signal processing (ICCSP), April 6–8, 2017.
16.
Zurück zum Zitat Boukarkar, A., Lin, X. Q., Jiang, Y., & Yang, X. F. (2018). A compact frequency-reconfigurable 36-states patch antenna for wireless applications. IEEE Antennas and Wireless Propagation Letters,17, 1349–1353.CrossRef Boukarkar, A., Lin, X. Q., Jiang, Y., & Yang, X. F. (2018). A compact frequency-reconfigurable 36-states patch antenna for wireless applications. IEEE Antennas and Wireless Propagation Letters,17, 1349–1353.CrossRef
Metadaten
Titel
Design of Multiband Frequency Reconfigurable Antenna with Defected Ground Structure for Wireless Applications
verfasst von
M. Jenath Sathikbasha
V. Nagarajan
Publikationsdatum
02.04.2020
Verlag
Springer US
Erschienen in
Wireless Personal Communications / Ausgabe 2/2020
Print ISSN: 0929-6212
Elektronische ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-020-07256-8

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