Warianty tytułu
Projekt patcha trapezowego z anteną wieloszczelinową do zastosowań w komunikacji bezprzewodowej
Języki publikacji
Abstrakty
This research presents a low-cost FR4 trapezoidal patch antenna design with multi-slot techniques combined with a microstrip feed for wireless communication applications at operating frequencies 2.45GHz ISM band. Initially, this research aimed to demonstrate the design and fabrication of a trapezoidal patch antenna with a radiating patch size of 47×25 mm. After that, the multi-slot technique is applied to reduce the patch size to 35×25 mm., as well as improve the bandwidth. The simulation results show that the antenna designed and presented in this research can support all of ISM bandwidth at the operating frequency of 2.45GHz., that is, it covers from 2.3957GHz to 2.5014GHz and has an antenna’s gain of 4.67 dB. The prototype antenna was built with FR-4 for measurements at a -10 dB bandwidth impedance of 2.3859GHz to 2.5020GHz, and a gain of 4.35 dB. The measurement results of the prototype antennas are consistent with the simulation results.
Niniejsze badanie przedstawia niedrogą konstrukcję trapezoidalnej anteny krosowej FR4 z technikami wieloszczelinowymi w połączeniu z zasilaniem mikropaskowym do aplikacji komunikacji bezprzewodowej na częstotliwościach roboczych w paśmie ISM 2,45 GHz. Początkowo badania te miały na celu zademonstrowanie projektu i wykonania trapezowej anteny łatowej o promieniującym rozmiarze łaty 47 × 25 mm. Następnie stosowana jest technika wieloszczelinowa w celu zmniejszenia rozmiaru łatki do 35×25 mm., a także poprawy przepustowości. Wyniki symulacji pokazują, że zaprojektowana i zaprezentowana w badaniach antena może obsłużyć całe pasmo ISM przy częstotliwości roboczej 2,45 GHz, czyli obejmuje zakres od 2,3957 GHz do 2,5014 GHz i ma zysk anteny 4,67 dB. Prototypowa antena została zbudowana z FR-4 do pomiarów przy impedancji pasma -10 dB od 2,3859 GHz do 2,5020 GHz i wzmocnieniu 4,35 dB. Wyniki pomiarów prototypowych anten są zgodne z wynikami symulacji.
Czasopismo
Rocznik
Tom
Strony
294--297
Opis fizyczny
Bibliogr. 14 poz., rys., tab.
Twórcy
autor
- Department of Electronics and Telecommunication Engineering. Faculty of Engineering, Rajamangala University of Technology Isan, Khon-Kean Campus, Thailand, charinsak.sa@rmuti.ac.th
autor
- Department of Electronics and Telecommunication Engineering, Faculty of Engineering, Rajamangala University of Technology Isan Khonkaen Campus, Thailand, suthasinee.la@rmuti.ac.th
autor
- Department of Electronics and Telecommunication Engineering. Faculty of Engineering, Rajamangala University of Technology Isan, Khon-Kean Campus, Thailand, suwit.pc@rmuti.ac.th
Bibliografia
- [1] Lamultree S., Thachantheuk U., Krasinhom K., Chuwong and Phongcharoenpanich C., An Ultra-Wideband Rectangular Monopole with Circular Ring Antenna for Wireless Communication Applications, Przegląd Elektrotechniczny, 1 (2021), R. 97, 8-11.
- [2] Saetiaw C., Juntakun A., Taonok C. and Phuchaduek S., "The 4G Monopole Antenna Design for Vehicular Wireless Communication," in The 12th International Conference on Science, Technology and Innovation for Sustainable Well-Being (STISWB XII), Silpakorn University, Thailand, 2020.
- [3] Saetiaw C. and Thongsopa C.. "Multilayer Strip Dipole Antenna Using Stacking Technique and Its Application for Curved Surface”, International Journal of Antennas and Propagation, 2013 (2013), 1-10.
- [4] Saetiaw C. and Phuchaduek S., 3D Printed Capsule-shaped Dipole with Multi-Slot Antenna Based on Metallic Filament Material, Przegląd Elektrotechniczny, 8 (2021), R. 97, 48-51.
- [5] Taonok C., Saetiaw C., "Design of Unbalance Slot Printed Dipole Antenna with Triangle Parasitic Element for DTV Receiver," 17th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON), Phuket, Thailand, June 2020, pp. 238-241.
- [6] Mobashsher, A. T., and Abbosh, A. M. (2014). Slot-loaded folded dipole antenna with wideband and unidirectional performance for L-band applications. IEEE Antennas Wireless Propagation Letter, 13, 798–801.
- [7] Saetiaw, C. "Design of Textile Capsule-Shaped Patch Antennafor WBAN Applications," 9th International Conference on Information Technology and Electrical Engineering (ICITEE),Phuket, October 2017, pp.1-4.
- [8] Maetiaw C. and Phuchaduek S., "The Design and Measurement of Modified Capsules-Shaped Patch Antenna with Textile Material," Engineering Access, 7 (2021), R. 2, 126-130.
- [9] Shimu N. J. and Ahmed A., "Design and performance analysis of rectangular microstrip patch antenna at 2.45 GHz," 2016 5th International Conference on Informatics, Electronics and Vision(ICIEV), May 2016, pp. 1062-1066.
- [10] Wahiba B., Miloud B. and Mohammed M. S., "Microstrip Antenna Based on Crystal Polymer Liquid (LCP) Textile for RFID Medical application.," 2nd International Conference on Advanced Electrical Engineering (ICAEE), February 2022, pp. 1-6.
- [11] Luzon M. A. and Gerasta O. J., "Slotted Circular PolarizedRectangular Microstrip Patch Antenna with Enhanced Bandwidth for Wireless Communication in 2.45GHz," IEEE 10th International Conference on Humanoid, Nanotechnology, Information Technology,Communication and Control, Environment and Management (HNICEM), November 2018, pp. 1-6.
- [12] Balanis, C. A., Antenna Theory: Analysis and Design, 4th Ed, Wiley, 2016.
- [13] Milligan, T. A., Modern antenna design, 2nd ed., John Wiley & Sons, 2005.
- [14] CST® Microwave Studio, Research Base, 2016
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.baztech-39861bc6-524a-4dc6-9ffa-447b5a066575