Analysis of a hybrid fractal curve antenna using the segmentation method
Abstract A microstrip‐fed hybrid Fractal antenna for WLAN application is presented in this article. The proposed antenna is composed of meander and Koch elements combined to form a longer curve that extends the electrical length. This approach simultaneously reduces the operating frequency and anten...
Main Authors: | , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Wiley
2020-11-01
|
Series: | Engineering Reports |
Subjects: | |
Online Access: | https://doi.org/10.1002/eng2.12263 |
id |
doaj-223c03ecac594588849a586f79f3bb6d |
---|---|
record_format |
Article |
spelling |
doaj-223c03ecac594588849a586f79f3bb6d2021-03-24T09:15:05ZengWileyEngineering Reports2577-81962020-11-01211n/an/a10.1002/eng2.12263Analysis of a hybrid fractal curve antenna using the segmentation methodAtif Jamil0Mohd Zuki Yusoff1Noorhana Yahya2Department of Electronic Engineering Dawood University of Engineering and Technology Karachi PakistanDepartment of Electrical and Electronic Engineering Universiti Teknologi PETRONAS Perak MalaysiaFundamental and Applied Science Department Universiti Teknologi PETRONAS Perak MalaysiaAbstract A microstrip‐fed hybrid Fractal antenna for WLAN application is presented in this article. The proposed antenna is composed of meander and Koch elements combined to form a longer curve that extends the electrical length. This approach simultaneously reduces the operating frequency and antenna size. The Green's functions and segmentation method are used to calculate the input impedance of the hybrid Fractal antenna. For analysis, the amalgamated antenna shape is decomposed into simple regular segments. The impedance parameters of the newly arranged shapes are calculated by the corresponding Green's functions. The impedance matrix equations of all the segments are presented so as to display in a single matrix whose solution determines the input impedance of the complete antenna geometry. To validate the theory, a prototype of the proposed antenna has been numerically simulated and experimentally measured.https://doi.org/10.1002/eng2.12263fractal antennaiteration function systemsegmentation method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Atif Jamil Mohd Zuki Yusoff Noorhana Yahya |
spellingShingle |
Atif Jamil Mohd Zuki Yusoff Noorhana Yahya Analysis of a hybrid fractal curve antenna using the segmentation method Engineering Reports fractal antenna iteration function system segmentation method |
author_facet |
Atif Jamil Mohd Zuki Yusoff Noorhana Yahya |
author_sort |
Atif Jamil |
title |
Analysis of a hybrid fractal curve antenna using the segmentation method |
title_short |
Analysis of a hybrid fractal curve antenna using the segmentation method |
title_full |
Analysis of a hybrid fractal curve antenna using the segmentation method |
title_fullStr |
Analysis of a hybrid fractal curve antenna using the segmentation method |
title_full_unstemmed |
Analysis of a hybrid fractal curve antenna using the segmentation method |
title_sort |
analysis of a hybrid fractal curve antenna using the segmentation method |
publisher |
Wiley |
series |
Engineering Reports |
issn |
2577-8196 |
publishDate |
2020-11-01 |
description |
Abstract A microstrip‐fed hybrid Fractal antenna for WLAN application is presented in this article. The proposed antenna is composed of meander and Koch elements combined to form a longer curve that extends the electrical length. This approach simultaneously reduces the operating frequency and antenna size. The Green's functions and segmentation method are used to calculate the input impedance of the hybrid Fractal antenna. For analysis, the amalgamated antenna shape is decomposed into simple regular segments. The impedance parameters of the newly arranged shapes are calculated by the corresponding Green's functions. The impedance matrix equations of all the segments are presented so as to display in a single matrix whose solution determines the input impedance of the complete antenna geometry. To validate the theory, a prototype of the proposed antenna has been numerically simulated and experimentally measured. |
topic |
fractal antenna iteration function system segmentation method |
url |
https://doi.org/10.1002/eng2.12263 |
work_keys_str_mv |
AT atifjamil analysisofahybridfractalcurveantennausingthesegmentationmethod AT mohdzukiyusoff analysisofahybridfractalcurveantennausingthesegmentationmethod AT noorhanayahya analysisofahybridfractalcurveantennausingthesegmentationmethod |
_version_ |
1724205114170802176 |