Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate

This paper presents a simple design analysis and performance evaluation of rectangular, slotted, microstrip feed patch antenna. The design processes are performed by employing the finite element method (FEM)-based commercial EM simulation software High-Frequency Structural Simulator (HFSS). The prop...

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Main Authors: Ahsan Md Rezwanul, Islam Mohammad Tariqul, Ullah Mohammad Habib
Format: Article
Language:English
Published: De Gruyter 2016-11-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2014-0409
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spelling doaj-b1161d12e6f44f5aa3de0a16971cbf4f2021-09-05T14:00:31ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592016-11-0123672973510.1515/secm-2014-0409Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrateAhsan Md Rezwanul0Islam Mohammad Tariqul1Ullah Mohammad Habib2Faculty of Engineering and Built Environment, Department of Electrical, Electronics and Systems Engineering, Universiti Kebangsaan Malaysia (UKM), Bangi, Selangor 43600, MalaysiaFaculty of Engineering and Built Environment, Department of Electrical, Electronics and Systems Engineering, Universiti Kebangsaan Malaysia (UKM), Bangi, Selangor 43600, MalaysiaFaculty of Engineering, Department of Electrical Engineering, University of Malaya (UM), Kuala Lumpur 50603, MalaysiaThis paper presents a simple design analysis and performance evaluation of rectangular, slotted, microstrip feed patch antenna. The design processes are performed by employing the finite element method (FEM)-based commercial EM simulation software High-Frequency Structural Simulator (HFSS). The proposed multiband antenna is composed of a rectangular, slotted radiator formed with four arc slots and central square slot, reduced ground plane, and microstrip line for feeding. The patch antenna is excited through the standard 50 Ω RF transmission line, impedance-compliant SMA connector that is connected to the microstrip line. The optimal parametric dimensions from the numerical simulations are used for constructing the physical prototype on a custom-made, ceramic-filled biopolymer substrate of εr=10.0. Based on simulation results, the experimental data are collected, analyzed, and compared; the surface current distributions on the patch, gain, and radiation patterns are critically discussed. The measured results show the impedance bandwidths for S11 less than -10 dB are 712 MHz at 0.788 GHz band, 1.38 GHz at 3.34 GHz band, and 2.46 GHz at 8.01 GHz band. The good radiation pattern performances, almost stable gain over the bands, and appreciable bandwidths recommend the antenna for operating in RFID, WiMAX, and C/X-band applications.https://doi.org/10.1515/secm-2014-0409biopolymer substratec/x-band applicationsmicrostrip antennamultiband antennarfidwimax
collection DOAJ
language English
format Article
sources DOAJ
author Ahsan Md Rezwanul
Islam Mohammad Tariqul
Ullah Mohammad Habib
spellingShingle Ahsan Md Rezwanul
Islam Mohammad Tariqul
Ullah Mohammad Habib
Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
Science and Engineering of Composite Materials
biopolymer substrate
c/x-band applications
microstrip antenna
multiband antenna
rfid
wimax
author_facet Ahsan Md Rezwanul
Islam Mohammad Tariqul
Ullah Mohammad Habib
author_sort Ahsan Md Rezwanul
title Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
title_short Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
title_full Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
title_fullStr Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
title_full_unstemmed Design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
title_sort design and performance analysis of small-sized multiband microstrip patch antenna on custom-made biopolymer substrate
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 0792-1233
2191-0359
publishDate 2016-11-01
description This paper presents a simple design analysis and performance evaluation of rectangular, slotted, microstrip feed patch antenna. The design processes are performed by employing the finite element method (FEM)-based commercial EM simulation software High-Frequency Structural Simulator (HFSS). The proposed multiband antenna is composed of a rectangular, slotted radiator formed with four arc slots and central square slot, reduced ground plane, and microstrip line for feeding. The patch antenna is excited through the standard 50 Ω RF transmission line, impedance-compliant SMA connector that is connected to the microstrip line. The optimal parametric dimensions from the numerical simulations are used for constructing the physical prototype on a custom-made, ceramic-filled biopolymer substrate of εr=10.0. Based on simulation results, the experimental data are collected, analyzed, and compared; the surface current distributions on the patch, gain, and radiation patterns are critically discussed. The measured results show the impedance bandwidths for S11 less than -10 dB are 712 MHz at 0.788 GHz band, 1.38 GHz at 3.34 GHz band, and 2.46 GHz at 8.01 GHz band. The good radiation pattern performances, almost stable gain over the bands, and appreciable bandwidths recommend the antenna for operating in RFID, WiMAX, and C/X-band applications.
topic biopolymer substrate
c/x-band applications
microstrip antenna
multiband antenna
rfid
wimax
url https://doi.org/10.1515/secm-2014-0409
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