Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid

The finite difference time domain method contains additional techniques for modeling thin wires whose diameter is substantially smaller than the cell size. Among them, there is a group of techniques where thin wires are modeled by correcting the medium surrounding the wire. Although in this case onl...

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Main Author: Kuklin D. V.
Format: Article
Language:Russian
Published: Murmansk State Technical University 2018-12-01
Series:Vestnik MGTU
Subjects:
Online Access:http://vestnik.mstu.edu.ru/show-eng.shtml?art=1986
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spelling doaj-1d39cd3532ad4ca19072046b495688742020-11-25T00:45:59ZrusMurmansk State Technical UniversityVestnik MGTU1560-92781997-47362018-12-0121461662410.21443/1560-9278-2018-21-4-616-624Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational gridKuklin D. V. 0Northern Energetics Research Centre – Branch of the Federal Research Centre KSC RASThe finite difference time domain method contains additional techniques for modeling thin wires whose diameter is substantially smaller than the cell size. Among them, there is a group of techniques where thin wires are modeled by correcting the medium surrounding the wire. Although in this case only the wires located along the electric field nodes can be modeled, techniques of this group do not cause calculation errors if the wires are located in the absorbing boundary conditions necessary to model thin wires with infinite length. Several techniques have been compared for the case when two wires are separated by one-cell gap. Influence of magnetic field modification around the gap between wires on calculation results has been examined. By calculations with the dipole antenna, it has been shown that correction of the magnetic field around the gap does not increase calculation accuracy (at least for the considered cases). However, this correction eliminates numerical instability. In this paper, it has been proposed to apply a magnetic field correction at the ends of the conductor only in cases where the conductors are separated by one cell, but not at each end of the conductors, as previously suggested.http://vestnik.mstu.edu.ru/show-eng.shtml?art=1986finite difference time domain (FDTD) methodnumerical instabilitydipole antennawire modeling techniquecalculation errors
collection DOAJ
language Russian
format Article
sources DOAJ
author Kuklin D. V.
spellingShingle Kuklin D. V.
Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
Vestnik MGTU
finite difference time domain (FDTD) method
numerical instability
dipole antenna
wire modeling technique
calculation errors
author_facet Kuklin D. V.
author_sort Kuklin D. V.
title Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
title_short Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
title_full Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
title_fullStr Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
title_full_unstemmed Calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
title_sort calculation of errors in the finite difference time domain method when modeling thin wires separated by a single cell of the computational grid
publisher Murmansk State Technical University
series Vestnik MGTU
issn 1560-9278
1997-4736
publishDate 2018-12-01
description The finite difference time domain method contains additional techniques for modeling thin wires whose diameter is substantially smaller than the cell size. Among them, there is a group of techniques where thin wires are modeled by correcting the medium surrounding the wire. Although in this case only the wires located along the electric field nodes can be modeled, techniques of this group do not cause calculation errors if the wires are located in the absorbing boundary conditions necessary to model thin wires with infinite length. Several techniques have been compared for the case when two wires are separated by one-cell gap. Influence of magnetic field modification around the gap between wires on calculation results has been examined. By calculations with the dipole antenna, it has been shown that correction of the magnetic field around the gap does not increase calculation accuracy (at least for the considered cases). However, this correction eliminates numerical instability. In this paper, it has been proposed to apply a magnetic field correction at the ends of the conductor only in cases where the conductors are separated by one cell, but not at each end of the conductors, as previously suggested.
topic finite difference time domain (FDTD) method
numerical instability
dipole antenna
wire modeling technique
calculation errors
url http://vestnik.mstu.edu.ru/show-eng.shtml?art=1986
work_keys_str_mv AT kuklindv calculationoferrorsinthefinitedifferencetimedomainmethodwhenmodelingthinwiresseparatedbyasinglecellofthecomputationalgrid
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