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Study of Forward and Backward Modes in Double-Sided Dielectric-Filled Corrugated Waveguides
KTH, School of Electrical Engineering and Computer Science (EECS), Electrical Engineering, Electromagnetic Engineering.
Univ Seville, ETS Ingn Informat, Dept Appl Phys 1, Seville 41012, Spain..ORCID iD: 0000-0001-8943-9068
Univ Mississippi, Dept Elect & Comp Engn, Oxford, MS 38677 USA..
Sorbonne Univ, CNRS, Lab Genie Elect & Elect Paris, F-75252 Paris, France.;Univ Paris Saclay, Lab Genie Elect & Elect Paris, CentraleSupelec, CNRS, F-91192 Paris, France..
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2021 (English)In: Sensors, E-ISSN 1424-8220, Vol. 21, no 18, article id 6293Article in journal (Refereed) Published
Abstract [en]

This work studies the propagation characteristics of a rectangular waveguide with aligned/misaligned double-sided dielectric-filled metallic corrugations. Two modes are found to propagate in the proposed double-sided configuration below the hollow-waveguide cutoff frequency: a quasi-resonant mode and a backward mode. This is in contrast to the single-sided configuration, which only allows for backward propagation. Moreover, the double-sided configuration can be of interest for waveguide miniaturization on account of the broader band of its backward mode. The width of the stopband between the quasi-resonant and backward modes can be controlled by the misalignment of the top and bottom corrugations, being null for the glide-symmetric case. The previous study is complemented with numerical results showing the impact of the height of the corrugations, as well as the filling dielectric permittivity, on the bandwidth and location of the appearing negative-effective-permeability band. The multi-modal transmission-matrix method has also been employed to estimate the rejection level and material losses in the structure and to determine which port modes are associated with the quasi-resonant and backward modes. Finally, it is shown that glide symmetry can advantageously be used to reduce the dispersion and broadens the operating band of the modes.

Place, publisher, year, edition, pages
MDPI AG , 2021. Vol. 21, no 18, article id 6293
Keywords [en]
corrugated waveguide, glide symmetry, higher symmetries, Bloch analysis
National Category
Other Electrical Engineering, Electronic Engineering, Information Engineering
Identifiers
URN: urn:nbn:se:kth:diva-303193DOI: 10.3390/s21186293ISI: 000701124000001PubMedID: 34577500Scopus ID: 2-s2.0-85115142355OAI: oai:DiVA.org:kth-303193DiVA, id: diva2:1601960
Note

QC 20211011

Available from: 2021-10-11 Created: 2021-10-11 Last updated: 2022-09-21Bibliographically approved
In thesis
1. The Multimodal Transfer Matrix Method: And its application to higher-symmetric periodic structures
Open this publication in new window or tab >>The Multimodal Transfer Matrix Method: And its application to higher-symmetric periodic structures
2022 (English)Licentiate thesis, comprehensive summary (Other academic)
Abstract [en]

This thesis focuses on the understanding and computation of the dispersion properties of periodic structures possessing higher symmetries with the multimodal transfer matrix method (MMTMM). Periodic structures with higher symmetries are invariant after additional symmetry operations over the translation operation. To demonstrate the potential of the MMTMM, three structures with spatial higher symmetries are proposed and their operation explained based on the constituent modes. 

In this thesis, I propose, analyze and explain the operation of two structures possessing glide symmetry and one with twist symmetry. Glide-symmetric structures remain invariant after a mirroring and a translation whereas twist-symmetric structures remain invariant after n rotations and translations. These structures inherently have low dispersion due to the interactions of the fundamental mode with higher order modes.

The MMTMM has been implemented in order to efficiently compute the complex propagation constant of these structures. This is a hybrid method that models a unit cell as a multiport network. Each port accounts for one mode, so the coupling between modes is considered. Commercial software is used to compute the ABCD-matrix, then post-processing is used to get both the phase and attenuation constant due to material losses, electromagnetic bandgaps and/or radiation. This method permits the study of complex structures while enabling a fundamental understanding of the modes that contribute to the dispersion properties, as well as their interactions. 

The first periodic structure analyzed in this thesis is a dielectric-filled corrugated waveguide. It allows the propagation of a backward mode in a wide frequency band. A discussion on the convergence of the method concludes that it is needed families of TE/TM modes with the same number of variations in the x direction. 

The second structure is a glide-symmetric dielectric unit cell placed in a parallel plate waveguide. This unit cell can be used to produce planar lens antennas that can be cost-effectively manufactured with dielectric 3D-printers. The attenuation constant due to material losses in two different directions is computed using the MMTMM.

Finally, a 3-fold twist-symmetric dielectric open waveguide is analyzed. Its interest lies in its inherent circular polarization selectivity. Here, the MMTMM is used to compute the attenuation constant from material losses and the stopband, as well as to understand the interaction between linear and circularly polarized modes.

Place, publisher, year, edition, pages
KTH Royal Institute of Technology, 2022. p. 38
Series
TRITA-EECS-AVL ; 2022:39
National Category
Other Electrical Engineering, Electronic Engineering, Information Engineering
Research subject
Electrical Engineering
Identifiers
urn:nbn:se:kth:diva-318520 (URN)978-91-8040-247-7 (ISBN)
Presentation
2022-10-21, H1 room, Teknikringen 33, floor 5, Stockholm, 15:00 (English)
Opponent
Supervisors
Note

QC 20220926

Available from: 2022-09-26 Created: 2022-09-21 Last updated: 2022-10-28Bibliographically approved

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Castillo Tapia, PilarQuevedo-Teruel, Oscar

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