3-D numerical simulations of coronal loops oscillations

We present numerical results of 3-D MHD model of a dipole active region field containing a loop with a higher density than its surroundings. We study different ways of excitation of vertical kink oscillations by velocity perturbation: as an initial condition, and as an impulsive excitation with...

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Main Authors: M. Selwa, L. Ofman
Format: Article
Language:English
Published: Copernicus Publications 2009-10-01
Series:Annales Geophysicae
Online Access:https://www.ann-geophys.net/27/3899/2009/angeo-27-3899-2009.pdf
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spelling doaj-702767b1fb1e465bb267ca8d85a01f762020-11-25T00:49:06ZengCopernicus PublicationsAnnales Geophysicae0992-76891432-05762009-10-01273899390810.5194/angeo-27-3899-20093-D numerical simulations of coronal loops oscillationsM. Selwa0M. Selwa1L. Ofman2L. Ofman3L. Ofman4Department of Physics, The Catholic University of America, 620 Michigan Avenue, NE, 200 Hannan Hall, Washington, D.C., 20064, USANASA Goddard Space Flight Center, Code 671, Greenbelt, MD 20771, USADepartment of Physics, The Catholic University of America, 620 Michigan Avenue, NE, 200 Hannan Hall, Washington, D.C., 20064, USANASA Goddard Space Flight Center, Code 671, Greenbelt, MD 20771, USAVisiting Associate Prof. Dept. of Geophysics & Planetary Sciences Tel Aviv University, Ramat Aviv, Tel Aviv, IsraelWe present numerical results of 3-D MHD model of a dipole active region field containing a loop with a higher density than its surroundings. We study different ways of excitation of vertical kink oscillations by velocity perturbation: as an initial condition, and as an impulsive excitation with a pulse of a given position, duration, and amplitude. These properties are varied in the parametric studies. We find that the amplitude of vertical kink oscillations is significantly amplified in comparison to horizontal kink oscillations for exciters located centrally (symmetrically) below the loop, but not if the exciter is located a significant distance to the side of the loop. This explains why the pure vertical kink mode is so rarely observed in comparison to the horizontally polarized one. We discuss the role of curved magnetic field lines and the pulse overlapping at one of the loop's footpoints in 3-D active regions (AR's) on the excitation and the damping of slow standing waves. We find that footpoint excitation becomes more efficient in 3-D curved loops than in 2-D curved arcades and that slow waves can be excited within an interval of time that is comparable to the observed one wave-period due to the combined effect of the pulse inside and outside the loop. Additionally, we study the effect of AR topology on the excitation and trapping of loop oscillations. We find that a perturbation acting directly on a single loop excites oscillations, but results in an increased leakage compared to excitation of oscillations in an AR field by an external source.https://www.ann-geophys.net/27/3899/2009/angeo-27-3899-2009.pdf
collection DOAJ
language English
format Article
sources DOAJ
author M. Selwa
M. Selwa
L. Ofman
L. Ofman
L. Ofman
spellingShingle M. Selwa
M. Selwa
L. Ofman
L. Ofman
L. Ofman
3-D numerical simulations of coronal loops oscillations
Annales Geophysicae
author_facet M. Selwa
M. Selwa
L. Ofman
L. Ofman
L. Ofman
author_sort M. Selwa
title 3-D numerical simulations of coronal loops oscillations
title_short 3-D numerical simulations of coronal loops oscillations
title_full 3-D numerical simulations of coronal loops oscillations
title_fullStr 3-D numerical simulations of coronal loops oscillations
title_full_unstemmed 3-D numerical simulations of coronal loops oscillations
title_sort 3-d numerical simulations of coronal loops oscillations
publisher Copernicus Publications
series Annales Geophysicae
issn 0992-7689
1432-0576
publishDate 2009-10-01
description We present numerical results of 3-D MHD model of a dipole active region field containing a loop with a higher density than its surroundings. We study different ways of excitation of vertical kink oscillations by velocity perturbation: as an initial condition, and as an impulsive excitation with a pulse of a given position, duration, and amplitude. These properties are varied in the parametric studies. We find that the amplitude of vertical kink oscillations is significantly amplified in comparison to horizontal kink oscillations for exciters located centrally (symmetrically) below the loop, but not if the exciter is located a significant distance to the side of the loop. This explains why the pure vertical kink mode is so rarely observed in comparison to the horizontally polarized one. We discuss the role of curved magnetic field lines and the pulse overlapping at one of the loop's footpoints in 3-D active regions (AR's) on the excitation and the damping of slow standing waves. We find that footpoint excitation becomes more efficient in 3-D curved loops than in 2-D curved arcades and that slow waves can be excited within an interval of time that is comparable to the observed one wave-period due to the combined effect of the pulse inside and outside the loop. Additionally, we study the effect of AR topology on the excitation and trapping of loop oscillations. We find that a perturbation acting directly on a single loop excites oscillations, but results in an increased leakage compared to excitation of oscillations in an AR field by an external source.
url https://www.ann-geophys.net/27/3899/2009/angeo-27-3899-2009.pdf
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