The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method

In this paper, we propose three kinds of substrate-integrated waveguide (SIWs) based chamfered bend power divider junctions provide equal power distribution to all output ports while maintaining high isolation and operating in the 54 GHz to 60 GHz frequency band. The advantages of the SIW technolog...

Full description

Bibliographic Details
Main Authors: B. Fellah, N. Cherif, M. Abri, H. Badaoui
Format: Article
Language:English
Published: Advanced Electromagnetics 2022-09-01
Series:Advanced Electromagnetics
Subjects:
Online Access:https://metaconferences.org/aemjnew/index.php/AEM/article/view/1817
_version_ 1798000640369098752
author B. Fellah
N. Cherif
M. Abri
H. Badaoui
author_facet B. Fellah
N. Cherif
M. Abri
H. Badaoui
author_sort B. Fellah
collection DOAJ
description In this paper, we propose three kinds of substrate-integrated waveguide (SIWs) based chamfered bend power divider junctions provide equal power distribution to all output ports while maintaining high isolation and operating in the 54 GHz to 60 GHz frequency band. The advantages of the SIW technology are ease of design, fabrication and low form and full integration with planar printed circuits. In this case, the concept of the SIW H-plane power divider is implemented using a rigorous two-dimensional quick finite element method (2D-QFEM) programmed by MATLAB software. The numerical performance of this method is the Quick simulation time for using the mesh with Delaunay regularization in two dimensions, if we increase the mesh the FEM gives better results. This paper presents the transmission coefficient, return loss and the electric field distribution. The results obtained from QFEM were compared with those provided by HFSS for validation. When using the discretization with the Delaunay procedure only in two dimensions, we notice that the calculated simulation time decreases with good precision.
first_indexed 2024-04-11T11:23:33Z
format Article
id doaj.art-40df32faf9f54217abc5f12d1864cfbd
institution Directory Open Access Journal
issn 2119-0275
language English
last_indexed 2024-04-11T11:23:33Z
publishDate 2022-09-01
publisher Advanced Electromagnetics
record_format Article
series Advanced Electromagnetics
spelling doaj.art-40df32faf9f54217abc5f12d1864cfbd2022-12-22T04:26:30ZengAdvanced ElectromagneticsAdvanced Electromagnetics2119-02752022-09-0111310.7716/aem.v11i3.1817The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element methodB. Fellah0N. Cherif1M. Abri2H. Badaoui3Mascara UniversityMascara UniversityAbou Bekr Belkaid UniversityAbou Bekr Belkaid University In this paper, we propose three kinds of substrate-integrated waveguide (SIWs) based chamfered bend power divider junctions provide equal power distribution to all output ports while maintaining high isolation and operating in the 54 GHz to 60 GHz frequency band. The advantages of the SIW technology are ease of design, fabrication and low form and full integration with planar printed circuits. In this case, the concept of the SIW H-plane power divider is implemented using a rigorous two-dimensional quick finite element method (2D-QFEM) programmed by MATLAB software. The numerical performance of this method is the Quick simulation time for using the mesh with Delaunay regularization in two dimensions, if we increase the mesh the FEM gives better results. This paper presents the transmission coefficient, return loss and the electric field distribution. The results obtained from QFEM were compared with those provided by HFSS for validation. When using the discretization with the Delaunay procedure only in two dimensions, we notice that the calculated simulation time decreases with good precision. https://metaconferences.org/aemjnew/index.php/AEM/article/view/1817Substrate integrated waveguide (SIW)Finite element method2D-QFEM
spellingShingle B. Fellah
N. Cherif
M. Abri
H. Badaoui
The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
Advanced Electromagnetics
Substrate integrated waveguide (SIW)
Finite element method
2D-QFEM
title The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
title_full The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
title_fullStr The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
title_full_unstemmed The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
title_short The chamfered bend two, four and eight-way SIW power dividers analysis for millimeter wave applications using the quick finite element method
title_sort chamfered bend two four and eight way siw power dividers analysis for millimeter wave applications using the quick finite element method
topic Substrate integrated waveguide (SIW)
Finite element method
2D-QFEM
url https://metaconferences.org/aemjnew/index.php/AEM/article/view/1817
work_keys_str_mv AT bfellah thechamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT ncherif thechamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT mabri thechamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT hbadaoui thechamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT bfellah chamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT ncherif chamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT mabri chamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod
AT hbadaoui chamferedbendtwofourandeightwaysiwpowerdividersanalysisformillimeterwaveapplicationsusingthequickfiniteelementmethod