Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure

The electrodynamic analysis and calculation of the phasing structure of a waveguide ferrite Faraday phase shifter with longitudinal magnetization of a ferrite rod with a square cross-section are performed. In the strict electrodynamic formulation, the Galerkin method solves the key problem for the d...

Full description

Bibliographic Details
Main Authors: Komissarova Elena V., Krekhtunov Vladimir M., Rusov Yury S.
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:ITM Web of Conferences
Online Access:https://www.itm-conferences.org/articles/itmconf/pdf/2019/07/itmconf_crimico2019_06013.pdf
id doaj-2f7ee1830f49419a9b2259a9deef7153
record_format Article
spelling doaj-2f7ee1830f49419a9b2259a9deef71532021-02-02T05:08:02ZengEDP SciencesITM Web of Conferences2271-20972019-01-01300601310.1051/itmconf/20193006013itmconf_crimico2019_06013Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structureKomissarova Elena V.0Krekhtunov Vladimir M.1Rusov Yury S.2Bauman Moscow State Technical UniversityBauman Moscow State Technical UniversityBauman Moscow State Technical UniversityThe electrodynamic analysis and calculation of the phasing structure of a waveguide ferrite Faraday phase shifter with longitudinal magnetization of a ferrite rod with a square cross-section are performed. In the strict electrodynamic formulation, the Galerkin method solves the key problem for the design of the phase shifter: the problem of eigenwaves finding with a second-order differential magnetic operator in the projection procedure for a rectangular waveguide with a transversely inhomogeneous ferrite-dielectric filling under longitudinal magnetization. The problem is reduced to solving the complete eigenvalue problem of a complex matrix. The computational algorithm, implemented as a computer program in DELPHI, gives in one procedure the numerical values of the coefficients of the decomposition of fields in the form of eigenvectors of the matrix, and the coefficients of wave propagation in the form of its eigenvalues. The results of calculations of the phasing structure activity for two particular cases of its implementation are presented: on the basis of a ferrite rod both with a conductive coating and without a coating, it is shown that in the second case the activity of the phase shifter is 1.5 times higher. For the real parameters of the ferrite medium, the length of the phasing structure is calculated depending on the transverse dimensions of the ferrite rod and the square waveguide, which ensures the creation of a 360° controlled phase shift.https://www.itm-conferences.org/articles/itmconf/pdf/2019/07/itmconf_crimico2019_06013.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Komissarova Elena V.
Krekhtunov Vladimir M.
Rusov Yury S.
spellingShingle Komissarova Elena V.
Krekhtunov Vladimir M.
Rusov Yury S.
Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
ITM Web of Conferences
author_facet Komissarova Elena V.
Krekhtunov Vladimir M.
Rusov Yury S.
author_sort Komissarova Elena V.
title Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
title_short Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
title_full Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
title_fullStr Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
title_full_unstemmed Analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
title_sort analysis of a fast-acting waveguide ferrite phase shifter with longitudinal magnetization phasing structure
publisher EDP Sciences
series ITM Web of Conferences
issn 2271-2097
publishDate 2019-01-01
description The electrodynamic analysis and calculation of the phasing structure of a waveguide ferrite Faraday phase shifter with longitudinal magnetization of a ferrite rod with a square cross-section are performed. In the strict electrodynamic formulation, the Galerkin method solves the key problem for the design of the phase shifter: the problem of eigenwaves finding with a second-order differential magnetic operator in the projection procedure for a rectangular waveguide with a transversely inhomogeneous ferrite-dielectric filling under longitudinal magnetization. The problem is reduced to solving the complete eigenvalue problem of a complex matrix. The computational algorithm, implemented as a computer program in DELPHI, gives in one procedure the numerical values of the coefficients of the decomposition of fields in the form of eigenvectors of the matrix, and the coefficients of wave propagation in the form of its eigenvalues. The results of calculations of the phasing structure activity for two particular cases of its implementation are presented: on the basis of a ferrite rod both with a conductive coating and without a coating, it is shown that in the second case the activity of the phase shifter is 1.5 times higher. For the real parameters of the ferrite medium, the length of the phasing structure is calculated depending on the transverse dimensions of the ferrite rod and the square waveguide, which ensures the creation of a 360° controlled phase shift.
url https://www.itm-conferences.org/articles/itmconf/pdf/2019/07/itmconf_crimico2019_06013.pdf
work_keys_str_mv AT komissarovaelenav analysisofafastactingwaveguideferritephaseshifterwithlongitudinalmagnetizationphasingstructure
AT krekhtunovvladimirm analysisofafastactingwaveguideferritephaseshifterwithlongitudinalmagnetizationphasingstructure
AT rusovyurys analysisofafastactingwaveguideferritephaseshifterwithlongitudinalmagnetizationphasingstructure
_version_ 1724304270643167232