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Telecommunications and Radio Engineering

Publicou 12 edições por ano

ISSN Imprimir: 0040-2508

ISSN On-line: 1943-6009

SJR: 0.185 SNIP: 0.268 CiteScore™:: 1.5 H-Index: 22

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DESIGN OF A 2.4 GHZ INDUSTRIAL, SCIENTIFIC, AND MEDICAL BAND MICROSTRIP PATCH ANTENNA

Volume 79, Edição 11, 2020, pp. 949-954
DOI: 10.1615/TelecomRadEng.v79.i11.40
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RESUMO

This paper discusses the design process of a rectangular Microstrip patch antenna for Industrial, Scientific, and Medical (I.S.M.) Band. Antennas, as one of the primary devices of every communication system, have attracted tremendous research in recent times. This antenna design presents a good gain and directivity of 3.090 dBi and 6.992 dBi, respectively for the desired operation for which design is proposed. It uses a square design and an inset feed method to achieve a high impedance matching of 50Ω. The antenna has a length of substrate 0.65266λ1 by the width of substrate 0.79617λ and a patch dimension of 0.49341λ by 0.63691λ.

Referências
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  2. Khanjari, S.P., Jarchi, S., and Mohammad-Taheri, M., (2019) Compact and wideband planar loop antenna with microstrip to parallel strip balun feed using metamaterials, A.E.U. - Int. J. Electron. Commun., 111, p. 152883.

  3. Bhanumathi, V. and Swathi, S., (2019) Bandwidth Enhanced Microstrip Patch Antenna for UWB Applications, Online Ictact. J. Microelectron, 4, 4 p.

  4. Balanis, C.A., (2005) Antenna Theory Analysis and Design, New Jersey: John Wiley & Sons, Inc.

  5. Sarin, V.P., Nishamol, M.S., Tony, D., Aanandan, C.K. et al., (2011) A wideband stacked offset microstrip antenna with improved gain and low cross-polarization, IEEE Trans. Antennas Propag., 59(4), pp. 1376-1379.

  6. Sarin, V.P., Nishamol, M.S., Tony, D., Aanandan, C.K. et al., (2011) A broadband L-strip fed printed microstrip antenna, IEEE Trans. Antennas Propag., 59(1), pp. 281-284.

  7. Immadi, G., Swetha, K., Narayana, M.V., Sowmya, M., and Ranjana, R., (2012) Design of microstrip patch antenna for WLAN applications using Back to Back connection of Two E-Shapes, International Journal of Engineering Research and Applications, 2(3), pp. 319-323.

  8. Mathur, P. and Kumar, G., (2018) High Gain Slotted Waveguide fed Microstrip Antenna Array at Ka-band for High power Applications, IEEE Antennas Propag. Soc. Int. Symp. Usn. Natl. Radio Sci. Meet. APSURSI2018, Proc., pp. 513-514.

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  10. Nguyen-Trong, N., Hall, L., and Fumeaux, C., (2016) A frequency- and pattern-reconfigurable center-shorted microstrip antenna, IEEE Antennas Wirel. Propag. Lett., 15, pp. 1955-1958.

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  12. Babu, K.V. and Anuradha, B., (2019) Design of MIMO antenna to interference inherent for ultra-wideband systems using defected ground structure, Microw. Opt. Technol. Lett., 4, pp. 2698-2708.

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