Eigenvalue extraction from time domain computations

In this paper we address a fast approach for an accurate eigenfrequency extraction, taken into consideration the evaluated electric field computations in time domain of a superconducting resonant structure. Upon excitation of the cavity, the electric field intensity is recorded at different detectio...

Full description

Bibliographic Details
Main Authors: T. Banova, W. Ackermann, T. Weiland
Format: Article
Language:deu
Published: Copernicus Publications 2013-07-01
Series:Advances in Radio Science
Online Access:http://www.adv-radio-sci.net/11/23/2013/ars-11-23-2013.pdf
id doaj-cc5fd430d28345cd8bcbcb504ebbea26
record_format Article
spelling doaj-cc5fd430d28345cd8bcbcb504ebbea262020-11-24T21:51:54ZdeuCopernicus PublicationsAdvances in Radio Science 1684-99651684-99732013-07-0111232910.5194/ars-11-23-2013Eigenvalue extraction from time domain computationsT. Banova0W. Ackermann1T. Weiland2Technische Universität Darmstadt, Graduate School of Computational Engineering, Dolivostraße 15, 64293 Darmstadt, GermanyTechnische Universität Darmstadt, Institut für Theorie Elektromagnetischer Felder (TEMF), Schlossgartenstraße 8, 64289 Darmstadt, GermanyTechnische Universität Darmstadt, Institut für Theorie Elektromagnetischer Felder (TEMF), Schlossgartenstraße 8, 64289 Darmstadt, GermanyIn this paper we address a fast approach for an accurate eigenfrequency extraction, taken into consideration the evaluated electric field computations in time domain of a superconducting resonant structure. Upon excitation of the cavity, the electric field intensity is recorded at different detection probes inside the cavity. Thereafter, we perform Fourier analysis of the recorded signals and by means of fitting techniques with the theoretical cavity response model (in support of the applied excitation) we extract the requested eigenfrequencies by finding the optimal model parameters in least square sense. The major challenges posed by our work are: first, the ability of the approach to tackle the large scale eigenvalue problem and second, the capability to extract many, i.e. order of thousands, eigenfrequencies for the considered cavity. At this point, we demonstrate that the proposed approach is able to extract many eigenfrequencies of a closed resonator in a relatively short time. In addition to the need to ensure a high precision of the calculated eigenfrequencies, we compare them side by side with the reference data available from CEM3D eigenmode solver. Furthermore, the simulations have shown high accuracy of this technique and good agreement with the reference data. Finally, all of the results indicate that the suggested technique can be used for precise extraction of many eigenfrequencies based on time domain field computations.http://www.adv-radio-sci.net/11/23/2013/ars-11-23-2013.pdf
collection DOAJ
language deu
format Article
sources DOAJ
author T. Banova
W. Ackermann
T. Weiland
spellingShingle T. Banova
W. Ackermann
T. Weiland
Eigenvalue extraction from time domain computations
Advances in Radio Science
author_facet T. Banova
W. Ackermann
T. Weiland
author_sort T. Banova
title Eigenvalue extraction from time domain computations
title_short Eigenvalue extraction from time domain computations
title_full Eigenvalue extraction from time domain computations
title_fullStr Eigenvalue extraction from time domain computations
title_full_unstemmed Eigenvalue extraction from time domain computations
title_sort eigenvalue extraction from time domain computations
publisher Copernicus Publications
series Advances in Radio Science
issn 1684-9965
1684-9973
publishDate 2013-07-01
description In this paper we address a fast approach for an accurate eigenfrequency extraction, taken into consideration the evaluated electric field computations in time domain of a superconducting resonant structure. Upon excitation of the cavity, the electric field intensity is recorded at different detection probes inside the cavity. Thereafter, we perform Fourier analysis of the recorded signals and by means of fitting techniques with the theoretical cavity response model (in support of the applied excitation) we extract the requested eigenfrequencies by finding the optimal model parameters in least square sense. The major challenges posed by our work are: first, the ability of the approach to tackle the large scale eigenvalue problem and second, the capability to extract many, i.e. order of thousands, eigenfrequencies for the considered cavity. At this point, we demonstrate that the proposed approach is able to extract many eigenfrequencies of a closed resonator in a relatively short time. In addition to the need to ensure a high precision of the calculated eigenfrequencies, we compare them side by side with the reference data available from CEM3D eigenmode solver. Furthermore, the simulations have shown high accuracy of this technique and good agreement with the reference data. Finally, all of the results indicate that the suggested technique can be used for precise extraction of many eigenfrequencies based on time domain field computations.
url http://www.adv-radio-sci.net/11/23/2013/ars-11-23-2013.pdf
work_keys_str_mv AT tbanova eigenvalueextractionfromtimedomaincomputations
AT wackermann eigenvalueextractionfromtimedomaincomputations
AT tweiland eigenvalueextractionfromtimedomaincomputations
_version_ 1725877915155955712