Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series

The deterministic chaotic behaviour of magnetosphere was analyzed, using AE index time series. The significant chaotic quantifiers like, Lyapunov exponent, spatio-temporal entropy and nonlinear prediction error for AE index time series under various physical conditions were estimated and compare...

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Main Author: K. Unnikrishnan
Format: Article
Language:English
Published: Copernicus Publications 2008-05-01
Series:Annales Geophysicae
Online Access:https://www.ann-geophys.net/26/941/2008/angeo-26-941-2008.pdf
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spelling doaj-a06369a6b0954997bd5d43498a8afd262020-11-24T22:21:09ZengCopernicus PublicationsAnnales Geophysicae0992-76891432-05762008-05-012694195310.5194/angeo-26-941-2008Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time seriesK. Unnikrishnan0K. Unnikrishnan1School of Pure and Applied Physics, Mahatma Gandhi University, Priyadarshini Hills, Kottayam &ndash; 686 560, Kerala, Indiaalso at: Department of Physics, N. S. S. Hindu College, Changanacherry &ndash; 686 102, Kerala, IndiaThe deterministic chaotic behaviour of magnetosphere was analyzed, using AE index time series. The significant chaotic quantifiers like, Lyapunov exponent, spatio-temporal entropy and nonlinear prediction error for AE index time series under various physical conditions were estimated and compared. During high solar activity (1991), the values of Lyapunov exponent for AE index time series representing quiet conditions (yearly mean = 0.5&plusmn;0.1 min<sup>&minus;1</sup>) have no significant difference from those values for corresponding storm conditions (yearly mean = 0.5&plusmn;0.17 min<sup>&minus;1</sup>). This implies that, for the cases considered here, geomagnetic storms may not be an additional source to increase or decrease the deterministic chaotic aspects of magnetosphere, especially during high solar activity. During solar minimum period (1994), the seasonal mean value of Lyapunov exponent for AE index time series belong to quiet periods in winter (0.7&plusmn;0.11 min<sup>&minus;1</sup>) is higher compared to corresponding value of storm periods in winter (0.36&plusmn;0.09 min<sup>&minus;1</sup>). This may be due to the fact that, stochastic part, which is <I>D<sub>st</sub></I> dependent could be more prominent during storms, thereby increasing fluctuations/stochasticity and reducing determinism in AE index time series during storms. It is observed that, during low solar active period (1994), the seasonal mean value of entropy for time series representing storm periods of equinox is greater than that for quiet periods. However, significant difference is not observed between storm and quiet time values of entropy during high solar activity (1991), which is also true for nonlinear prediction error for both low and high solar activities. In the case of both high and low solar activities, the higher standard deviations of yearly mean Lyapunov exponent values for AE index time series for storm periods compared to those for quiet periods might be due to the strong interplay between stochasticity and determinism during storms. <br><br> It is inferred that, the external driving forces, mainly due to solar wind, make the solar-magnetosphere-ionosphere coupling more complex, which generates many active degrees of freedom with various levels of coupling among them, under various physical conditions. Hence, the superposition of a large number of active degrees of freedom can modify the stability/instability conditions of magnetosphere.https://www.ann-geophys.net/26/941/2008/angeo-26-941-2008.pdf
collection DOAJ
language English
format Article
sources DOAJ
author K. Unnikrishnan
K. Unnikrishnan
spellingShingle K. Unnikrishnan
K. Unnikrishnan
Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
Annales Geophysicae
author_facet K. Unnikrishnan
K. Unnikrishnan
author_sort K. Unnikrishnan
title Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
title_short Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
title_full Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
title_fullStr Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
title_full_unstemmed Comparison of chaotic aspects of magnetosphere under various physical conditions using AE index time series
title_sort comparison of chaotic aspects of magnetosphere under various physical conditions using ae index time series
publisher Copernicus Publications
series Annales Geophysicae
issn 0992-7689
1432-0576
publishDate 2008-05-01
description The deterministic chaotic behaviour of magnetosphere was analyzed, using AE index time series. The significant chaotic quantifiers like, Lyapunov exponent, spatio-temporal entropy and nonlinear prediction error for AE index time series under various physical conditions were estimated and compared. During high solar activity (1991), the values of Lyapunov exponent for AE index time series representing quiet conditions (yearly mean = 0.5&plusmn;0.1 min<sup>&minus;1</sup>) have no significant difference from those values for corresponding storm conditions (yearly mean = 0.5&plusmn;0.17 min<sup>&minus;1</sup>). This implies that, for the cases considered here, geomagnetic storms may not be an additional source to increase or decrease the deterministic chaotic aspects of magnetosphere, especially during high solar activity. During solar minimum period (1994), the seasonal mean value of Lyapunov exponent for AE index time series belong to quiet periods in winter (0.7&plusmn;0.11 min<sup>&minus;1</sup>) is higher compared to corresponding value of storm periods in winter (0.36&plusmn;0.09 min<sup>&minus;1</sup>). This may be due to the fact that, stochastic part, which is <I>D<sub>st</sub></I> dependent could be more prominent during storms, thereby increasing fluctuations/stochasticity and reducing determinism in AE index time series during storms. It is observed that, during low solar active period (1994), the seasonal mean value of entropy for time series representing storm periods of equinox is greater than that for quiet periods. However, significant difference is not observed between storm and quiet time values of entropy during high solar activity (1991), which is also true for nonlinear prediction error for both low and high solar activities. In the case of both high and low solar activities, the higher standard deviations of yearly mean Lyapunov exponent values for AE index time series for storm periods compared to those for quiet periods might be due to the strong interplay between stochasticity and determinism during storms. <br><br> It is inferred that, the external driving forces, mainly due to solar wind, make the solar-magnetosphere-ionosphere coupling more complex, which generates many active degrees of freedom with various levels of coupling among them, under various physical conditions. Hence, the superposition of a large number of active degrees of freedom can modify the stability/instability conditions of magnetosphere.
url https://www.ann-geophys.net/26/941/2008/angeo-26-941-2008.pdf
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