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Two methods to analyze microstrip antennas for Wi-Fi bandwidth

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Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents a series of designed microstrip antennas with different gain and width radiation characteristics and intended for use in Wi-Fi systems. These antennas in a multilayer system were analyzed with the use of computer programs, and then the parameters and characteristics of these antennas were measured. At the same time, to check the correctness of work, additional measurements of the temperature of the radiators were used with a thermal imaging camera. The obtained results were compared with the results of calculations and measurements. They show high compliance with both calculations and measurements. At the same time, thermovision measurements show the weaknesses of the designed power lines.
Rocznik
Strony
705--718
Opis fizyczny
Bibliogr. 16 poz., rys., wz.
Twórcy
autor
  • Military University of Technology Poland
Bibliografia
  • [1] Sharma R., Mithilesh Kumar, Dual band planar microstrip antenna for 2.5/5.8 GHz wireless cellular applications, International Journal on Communications Antenna and Propagation, vol. 3, no. 2, pp. 90–96 (2013).
  • [2] Nelson I.O., Ademola A.Y., Patch antenna array feed design for a dish antenna, International Journal on Communications Antenna and Propagation, vol. 3, no. 5, pp. 261–266 (2013).
  • [3] Maloney J.G., Smith G.S., Scott W.R., Accurate computation of radiation from simple antenas using finite – difference time domain method, IEEE Trans. Antennas and Propagation, vol. 38 (1990).
  • [4] Ghaderi B., Parhizgar N., Resource allocation in MIMO systems specific to radio communication, Archives of Electrical Engineering, vol. 68, no. 1, pp. 91–100 (2019).
  • [5] Parhizgar N., A new mutual coupling compensation method for receiving antenna array-based DOA estimation, Archives of Electrical Engineering, vol. 67, no. 2 (2018).
  • [6] Bielecki Z., Rogalski A., Optical signals detection, Scientific and Technical Publishing, Warsaw (2001).
  • [7] Minkina W., Thermovision measurements – instruments and methods, Publishing House of the Czestochowa University of Technology, Czestochowa (2004).
  • [8] Balanis C.A., Antenna theory, New Jersey, John Wiley & Sons, Inc. (2005).
  • [9] Fang D.G., Antenna theory and microstrip antennas, CRC Press (2010).
  • [10] Lo Y.T., Lee S.W., Antenna Handbook, Antenna Theory, vol. 2 (1988).
  • [11] Taflowe A., Computational electrodynamics Finite – Difference Time Domain, Artech House, Boston (1995).
  • [12] Wnuk M., Analysis of radiating structures located on a multilayer dielectric, Warsaw, MUT (1999).
  • [13] Długosz T., Mutual influence of the TEM I transmission line of the tested object, Ph.D. dissertation, Dept. Elect. Eng., Wrocław (2007).
  • [14] Keshavarz S., Nozhat N., Dual-band Wilkinson power divider based on composite right/left-handed transmission lines, 13th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON) 2016, DOI: 10.1109/ECTICon.2016. 7561268.
  • [15] Trikas P.A., Balanis C.A., Finite – difference time – domain technique for radiation by horn antennas, IEEE Antennas and Propagation Society International Symposium Digest, vol. 3 (1991).
  • [16] Gizem Toroğlu, Levent Sevgi, Finite-difference time-domain (FDTD) matlab codes for first- and second-order em differential equations, IEEE Antennas and Propagation Magazine, vol. 56, no. 2, pp. 221–239 (2014), DOI: 10.1109/MAP.2014.6837093
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a639cffd-09a8-48ce-835d-7eade2539114
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