Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes

Aim. This article presents a review of the nonstationary (time-domain) discrete theory of excitation of periodic electromagnetic structures and discusses applications of the theory for simulation of traveling-wave tube (TWT) microwave power amplifiers with slow-wave structures (SWS) of different kin...

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Main Authors: Ryskin, Nikita Mikhailovich, Rozhnev, Andrej Georgievich, Minenna, Damien F.G., Elskens, Yves, Andre’, Fre’de’ric
Format: Article
Language:English
Published: Saratov State University 2021-02-01
Series:Известия высших учебных заведений: Прикладная нелинейная динамика
Subjects:
Online Access:https://andjournal.sgu.ru/sites/andjournal.sgu.ru/files/text-pdf/2021/01/ryskin1.pdf
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spelling doaj-9ab8770e527341039aa4cb85a6971b8f2021-02-01T15:14:03ZengSaratov State UniversityИзвестия высших учебных заведений: Прикладная нелинейная динамика0869-66322542-19052021-02-01291103410.18500/0869-6632-2021-29-1-10-34Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubesRyskin, Nikita Mikhailovich0Rozhnev, Andrej Georgievich1Minenna, Damien F.G.2Elskens, Yves3Andre’, Fre’de’ric4Saratov Branch of Kotel`nikov Institute of Radiophysics and Electronics of Russian Academy of Sciences, ul. Zelyonaya, 38, Saratov, 410019, RussiaSaratov Branch of Kotel`nikov Institute of Radiophysics and Electronics of Russian Academy of Sciences, ul. Zelyonaya, 38, Saratov, 410019, RussiaCentre National d’E’tudes Spatiales (CNES), 31401 Toulouse, FranceAix-Marseille Universite’, France, F-13397 MarseilleThales Group, France, 78140 Ve’lizy-VillacoublayAim. This article presents a review of the nonstationary (time-domain) discrete theory of excitation of periodic electromagnetic structures and discusses applications of the theory for simulation of traveling-wave tube (TWT) microwave power amplifiers with slow-wave structures (SWS) of different kind. Methods. The discrete theory is based on a representation of a periodic SWS as a chain of coupled cells. However, these cells are not identical to periods of the structure, and each cell is coupled with not only nearest neighbors, but, in general, with all the other cells. The discrete theory allows useful reformulation of Maxwell equations and simplifies simulation of electromagnetic wave propagation through a periodic structure by a great degree-of-freedom reduction. In this paper, we present the derivation of the basic equations of the discrete model from Maxwell equations and investigate the beam-wave interaction processes by numerical simulation. Results. Derivation of the discrete theory equations in its original form proposed by S.P. Kuznetsov is presented. The results of simulation of the С-band coupled-cavity (CC) TWT are considered, including complicated transients, which accompany spurious self-excitation near cut-off. Further developments of the discrete theory including the Hamiltonian formalism are discussed. The Hamiltonian discrete model is applied for simulation of the 170-W Ku-band helix TWT. The results of simulations are in good agreement with the experimental measurements. Conclusion. The discrete theory proposed by S.P. Kuznetsov in 1980 is a powerful tool for modeling of electromagnetic wave propagation in various periodic slow-wave structures. It allows development of computer codes for time-domain simulation of TWTs, which are promising tools that bears several advantages for industrial and research activities.https://andjournal.sgu.ru/sites/andjournal.sgu.ru/files/text-pdf/2021/01/ryskin1.pdfnonstationary discrete excitation theoryslow wave structuretraveling wave tubehamiltonian formalismnumerical modeling
collection DOAJ
language English
format Article
sources DOAJ
author Ryskin, Nikita Mikhailovich
Rozhnev, Andrej Georgievich
Minenna, Damien F.G.
Elskens, Yves
Andre’, Fre’de’ric
spellingShingle Ryskin, Nikita Mikhailovich
Rozhnev, Andrej Georgievich
Minenna, Damien F.G.
Elskens, Yves
Andre’, Fre’de’ric
Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
Известия высших учебных заведений: Прикладная нелинейная динамика
nonstationary discrete excitation theory
slow wave structure
traveling wave tube
hamiltonian formalism
numerical modeling
author_facet Ryskin, Nikita Mikhailovich
Rozhnev, Andrej Georgievich
Minenna, Damien F.G.
Elskens, Yves
Andre’, Fre’de’ric
author_sort Ryskin, Nikita Mikhailovich
title Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
title_short Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
title_full Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
title_fullStr Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
title_full_unstemmed Nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
title_sort nonstationary discrete theory of excitation of periodic structures and its application for simulation of traveling-wave tubes
publisher Saratov State University
series Известия высших учебных заведений: Прикладная нелинейная динамика
issn 0869-6632
2542-1905
publishDate 2021-02-01
description Aim. This article presents a review of the nonstationary (time-domain) discrete theory of excitation of periodic electromagnetic structures and discusses applications of the theory for simulation of traveling-wave tube (TWT) microwave power amplifiers with slow-wave structures (SWS) of different kind. Methods. The discrete theory is based on a representation of a periodic SWS as a chain of coupled cells. However, these cells are not identical to periods of the structure, and each cell is coupled with not only nearest neighbors, but, in general, with all the other cells. The discrete theory allows useful reformulation of Maxwell equations and simplifies simulation of electromagnetic wave propagation through a periodic structure by a great degree-of-freedom reduction. In this paper, we present the derivation of the basic equations of the discrete model from Maxwell equations and investigate the beam-wave interaction processes by numerical simulation. Results. Derivation of the discrete theory equations in its original form proposed by S.P. Kuznetsov is presented. The results of simulation of the С-band coupled-cavity (CC) TWT are considered, including complicated transients, which accompany spurious self-excitation near cut-off. Further developments of the discrete theory including the Hamiltonian formalism are discussed. The Hamiltonian discrete model is applied for simulation of the 170-W Ku-band helix TWT. The results of simulations are in good agreement with the experimental measurements. Conclusion. The discrete theory proposed by S.P. Kuznetsov in 1980 is a powerful tool for modeling of electromagnetic wave propagation in various periodic slow-wave structures. It allows development of computer codes for time-domain simulation of TWTs, which are promising tools that bears several advantages for industrial and research activities.
topic nonstationary discrete excitation theory
slow wave structure
traveling wave tube
hamiltonian formalism
numerical modeling
url https://andjournal.sgu.ru/sites/andjournal.sgu.ru/files/text-pdf/2021/01/ryskin1.pdf
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