Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns

This paper presents the simulated and measured results of a dual-layer substrate integrated waveguide (SIW) beamforming network utilizing an 8 × 8 cross-configuration Butler matrix over a frequency range of 28.5 to 31.5 GHz. By arranging the input ports on the bottom SIW layer and employi...

Full description

Bibliographic Details
Main Authors: Chad Bartlett, Jens Bornemann
Format: Article
Language:English
Published: IEEE 2019-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8869749/
id doaj-b3e024eebf7b4d17aec2ed0fdda0e079
record_format Article
spelling doaj-b3e024eebf7b4d17aec2ed0fdda0e0792021-03-29T23:17:15ZengIEEEIEEE Access2169-35362019-01-01715182715183510.1109/ACCESS.2019.29474818869749Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam PatternsChad Bartlett0Jens Bornemann1https://orcid.org/0000-0002-5168-7258Department of Electrical and Computer Engineering, University of Victoria, Victoria, BC, CanadaDepartment of Electrical and Computer Engineering, University of Victoria, Victoria, BC, CanadaThis paper presents the simulated and measured results of a dual-layer substrate integrated waveguide (SIW) beamforming network utilizing an 8 × 8 cross-configuration Butler matrix over a frequency range of 28.5 to 31.5 GHz. By arranging the input ports on the bottom SIW layer and employing dual-layer passband filters as a detachment point, the top SIW layer can be interchanged with the purpose of exploring one-dimensional and two-dimensional broadside beam patterns. Although Butler matrices are not typically utilized for beamforming in this configuration, two examples of interchangeable top layer arrays are demonstrated; the first being a 2 × 8 slot antenna array for 1-D scanning, and the second being a 2 × 4 center-slot array for 2-D scanning. Each of the beamforming network's simulated and measured 10 dB bandwidth is demonstrated over a range of 28.5 to 31.5 GHz. Additional design details and dimensions are specified for the aforementioned passband filter transitions, as well as for each of the slot antenna arrays.https://ieeexplore.ieee.org/document/8869749/Butler matrixmillimeter-waveslot antenna arraysubstrate integrated waveguide (SIW)dual-layer SIW filters
collection DOAJ
language English
format Article
sources DOAJ
author Chad Bartlett
Jens Bornemann
spellingShingle Chad Bartlett
Jens Bornemann
Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
IEEE Access
Butler matrix
millimeter-wave
slot antenna array
substrate integrated waveguide (SIW)
dual-layer SIW filters
author_facet Chad Bartlett
Jens Bornemann
author_sort Chad Bartlett
title Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
title_short Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
title_full Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
title_fullStr Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
title_full_unstemmed Cross-Configuration Substrate Integrated Waveguide Beamforming Network for 1D and 2D Beam Patterns
title_sort cross-configuration substrate integrated waveguide beamforming network for 1d and 2d beam patterns
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2019-01-01
description This paper presents the simulated and measured results of a dual-layer substrate integrated waveguide (SIW) beamforming network utilizing an 8 × 8 cross-configuration Butler matrix over a frequency range of 28.5 to 31.5 GHz. By arranging the input ports on the bottom SIW layer and employing dual-layer passband filters as a detachment point, the top SIW layer can be interchanged with the purpose of exploring one-dimensional and two-dimensional broadside beam patterns. Although Butler matrices are not typically utilized for beamforming in this configuration, two examples of interchangeable top layer arrays are demonstrated; the first being a 2 × 8 slot antenna array for 1-D scanning, and the second being a 2 × 4 center-slot array for 2-D scanning. Each of the beamforming network's simulated and measured 10 dB bandwidth is demonstrated over a range of 28.5 to 31.5 GHz. Additional design details and dimensions are specified for the aforementioned passband filter transitions, as well as for each of the slot antenna arrays.
topic Butler matrix
millimeter-wave
slot antenna array
substrate integrated waveguide (SIW)
dual-layer SIW filters
url https://ieeexplore.ieee.org/document/8869749/
work_keys_str_mv AT chadbartlett crossconfigurationsubstrateintegratedwaveguidebeamformingnetworkfor1dand2dbeampatterns
AT jensbornemann crossconfigurationsubstrateintegratedwaveguidebeamformingnetworkfor1dand2dbeampatterns
_version_ 1724189807117074432