Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media

The Marching On-In-Time (MOT) unstructured Partial Element Equivalent Circuit (PEEC) method for time domain electromagnetic problems is presented. The method allows the transient analysis of electrically large electromagnetic devices consisting of conductive, dielectric, and magnetic media coupled w...

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Main Authors: Riccardo Torchio, Dimitri Voltolina, Paolo Bettini, Federico Moro, Piergiorgio Alotto
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Electronics
Subjects:
Online Access:https://www.mdpi.com/2079-9292/9/2/242
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spelling doaj-6f6a9086041d43fc807466fbf1e137a22020-11-25T03:32:57ZengMDPI AGElectronics2079-92922020-02-019224210.3390/electronics9020242electronics9020242Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic MediaRiccardo Torchio0Dimitri Voltolina1Paolo Bettini2Federico Moro3Piergiorgio Alotto4Dipartimento di Ingegneria Industriale, Università degli Studi di Padova, 35131 Padova, ItalyCentro Ricerche Fusione, University of Padova, 35127 Padova, ItalyCentro Ricerche Fusione, University of Padova, 35127 Padova, ItalyDipartimento di Ingegneria Industriale, Università degli Studi di Padova, 35131 Padova, ItalyDipartimento di Ingegneria Industriale, Università degli Studi di Padova, 35131 Padova, ItalyThe Marching On-In-Time (MOT) unstructured Partial Element Equivalent Circuit (PEEC) method for time domain electromagnetic problems is presented. The method allows the transient analysis of electrically large electromagnetic devices consisting of conductive, dielectric, and magnetic media coupled with external lumped circuits. By re-formulating PEEC following the Coulombian interpretation of magnetization phenomena and by using electric and magnetic vector potentials, the proposed approach allows for a completely equivalent treatment of electric and magnetic media and inhomogeneous and anisotropic materials are accounted for as well. With respect to the recently proposed Marching On-In-Time PEEC approach, based on the standard (structured) discretization of PEEC, the method presented in this paper uses a different space and time MOT discretization, which allows for a reduction in the number of the unknowns. Analytical and industrial test cases consisting in electrically large devices are considered (e.g., the model of a Neutral Beam Injector adopted in thermonuclear fusion applications). Results obtained from the simulations show that the proposed method is accurate and yields good performances. Moreover, when rich harmonic content transient phenomena are considered, the unstructured MOT−PEEC method allows for a significant reduction of the memory and computation time when compared to techniques based on Inverse Discrete Fourier Transform applied to the frequency domain unstructured PEEC approach.https://www.mdpi.com/2079-9292/9/2/242marching on-in-timepartial element equivalent circuittdietransient analysisintegral methods
collection DOAJ
language English
format Article
sources DOAJ
author Riccardo Torchio
Dimitri Voltolina
Paolo Bettini
Federico Moro
Piergiorgio Alotto
spellingShingle Riccardo Torchio
Dimitri Voltolina
Paolo Bettini
Federico Moro
Piergiorgio Alotto
Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
Electronics
marching on-in-time
partial element equivalent circuit
tdie
transient analysis
integral methods
author_facet Riccardo Torchio
Dimitri Voltolina
Paolo Bettini
Federico Moro
Piergiorgio Alotto
author_sort Riccardo Torchio
title Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
title_short Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
title_full Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
title_fullStr Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
title_full_unstemmed Marching On-In-Time Unstructured PEEC Method for Electrically Large Structures with Conductive, Dielectric, and Magnetic Media
title_sort marching on-in-time unstructured peec method for electrically large structures with conductive, dielectric, and magnetic media
publisher MDPI AG
series Electronics
issn 2079-9292
publishDate 2020-02-01
description The Marching On-In-Time (MOT) unstructured Partial Element Equivalent Circuit (PEEC) method for time domain electromagnetic problems is presented. The method allows the transient analysis of electrically large electromagnetic devices consisting of conductive, dielectric, and magnetic media coupled with external lumped circuits. By re-formulating PEEC following the Coulombian interpretation of magnetization phenomena and by using electric and magnetic vector potentials, the proposed approach allows for a completely equivalent treatment of electric and magnetic media and inhomogeneous and anisotropic materials are accounted for as well. With respect to the recently proposed Marching On-In-Time PEEC approach, based on the standard (structured) discretization of PEEC, the method presented in this paper uses a different space and time MOT discretization, which allows for a reduction in the number of the unknowns. Analytical and industrial test cases consisting in electrically large devices are considered (e.g., the model of a Neutral Beam Injector adopted in thermonuclear fusion applications). Results obtained from the simulations show that the proposed method is accurate and yields good performances. Moreover, when rich harmonic content transient phenomena are considered, the unstructured MOT−PEEC method allows for a significant reduction of the memory and computation time when compared to techniques based on Inverse Discrete Fourier Transform applied to the frequency domain unstructured PEEC approach.
topic marching on-in-time
partial element equivalent circuit
tdie
transient analysis
integral methods
url https://www.mdpi.com/2079-9292/9/2/242
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