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Implementation of a Miniaturized Planar Tri-Band Microstrip Patch Antenna for Wireless Sensors in Mobile Applications.
Elkorany, Ahmed Saad; Mousa, Alyaa Nehru; Ahmad, Sarosh; Saleeb, Demyana Adel; Ghaffar, Adnan; Soruri, Mohammad; Dalarsson, Mariana; Alibakhshikenari, Mohammad; Limiti, Ernesto.
Afiliación
  • Elkorany AS; Department of Electronics and Electrical Communication Engineering, Faculty of Electronic Engineering, Menoufia University, Menouf 32952, Egypt.
  • Mousa AN; Department of Electronics and Electrical Communication Engineering, Faculty of Electronic Engineering, Menoufia University, Menouf 32952, Egypt.
  • Ahmad S; Department of Electrical Engineering and Technology, Government College University Faisalabad (GCUF), Faisalabad 38000, Pakistan.
  • Saleeb DA; Department of Signal Theory and Communications, Universidad Carlos III de Madrid, Leganés, 28911 Madrid, Spain.
  • Ghaffar A; Faculty of Engineering, Kafrelsheikh University, Kafrelsheikh 33516, Egypt.
  • Soruri M; Department of Electrical and Electronic Engineering, Auckland University of Technology, Auckland 1010, New Zealand.
  • Dalarsson M; Technical Faculty of Ferdows, University of Birjand, Birjand 9717434765, Iran.
  • Alibakhshikenari M; School of Electrical Engineering and Computer Science, KTH Royal Institute of Technology, SE 100-44 Stockholm, Sweden.
  • Limiti E; Department of Signal Theory and Communications, Universidad Carlos III de Madrid, Leganés, 28911 Madrid, Spain.
Sensors (Basel) ; 22(2)2022 Jan 16.
Article en En | MEDLINE | ID: mdl-35062628
ABSTRACT
Antennas in wireless sensor networks (WSNs) are characterized by the enhanced capacity of the network, longer range of transmission, better spatial reuse, and lower interference. In this paper, we propose a planar patch antenna for mobile communication applications operating at 1.8, 3.5, and 5.4 GHz. A planar microstrip patch antenna (MPA) consists of two F-shaped resonators that enable operations at 1.8 and 3.5 GHz while operation at 5.4 GHz is achieved when the patch is truncated from the middle. The proposed planar patch is printed on a low-cost FR-4 substrate that is 1.6 mm in thickness. The equivalent circuit model is also designed to validate the reflection coefficient of the proposed antenna with the S11 obtained from the circuit model. It contains three RLC (resistor-inductor-capacitor) circuits for generating three frequency bands for the proposed antenna. Thereby, we obtained a good agreement between simulation and measurement results. The proposed antenna has an elliptically shaped radiation pattern at 1.8 and 3.5 GHz, while the broadside directional pattern is obtained at the 5.4 GHz frequency band. At 1.8, 3.5, and 5.4 GHz, the simulated peak realized gains of 2.34, 5.2, and 1.42 dB are obtained and compared to the experimental peak realized gains of 2.22, 5.18, and 1.38 dB at same frequencies. The results indicate that the proposed planar patch antenna can be utilized for mobile applications such as digital communication systems (DCS), worldwide interoperability for microwave access (WiMAX), and wireless local area networks (WLAN).
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Texto completo: 1 Bases de datos: MEDLINE Tipo de estudio: Sysrev_observational_studies Idioma: En Revista: Sensors (Basel) Año: 2022 Tipo del documento: Article País de afiliación: Egipto

Texto completo: 1 Bases de datos: MEDLINE Tipo de estudio: Sysrev_observational_studies Idioma: En Revista: Sensors (Basel) Año: 2022 Tipo del documento: Article País de afiliación: Egipto