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Nonlinear dynamic analysis of D-alpha signals for type I edge localized modes characterization on JET with a carbon wallPrimeFaces.cw("AccordionPanel","widget_formSmash_some",{id:"formSmash:some",widgetVar:"widget_formSmash_some",multiple:true}); PrimeFaces.cw("AccordionPanel","widget_formSmash_all",{id:"formSmash:all",widgetVar:"widget_formSmash_all",multiple:true}); PrimeFaces.cw("SelectBooleanButton","widget_formSmash_j_idt293",{id:"formSmash:j_idt293",widgetVar:"widget_formSmash_j_idt293",onLabel:"Hide others and affiliations",offLabel:"Show others and affiliations"});
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Number of Authors: 11092018 (English)In: Plasma Physics and Controlled Fusion, ISSN 0741-3335, E-ISSN 1361-6587, Vol. 60, no 2, article id 025010Article in journal (Refereed) Published
##### Abstract [en]

##### Place, publisher, year, edition, pages

2018. Vol. 60, no 2, article id 025010
##### Keywords [en]

type-I ELMs, nonlinear dynamic analysis, pseudoperiodic ELM model
##### National Category

Fusion, Plasma and Space Physics
##### Identifiers

URN: urn:nbn:se:uu:diva-398194DOI: 10.1088/1361-6587/aa96cdISI: 000418145500003OAI: oai:DiVA.org:uu-398194DiVA, id: diva2:1374921
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##### Funder

EU, Horizon 2020, 633053
##### Note

In this paper, the dynamic characteristics of type-I ELM time-series from the JET tokamak, the world's largest magnetic confinement plasma physics experiment, have been investigated. The dynamic analysis has been focused on the detection of nonlinear structure in D a radiation time series. Firstly, the method of surrogate data has been applied to evaluate the statistical significance of the null hypothesis of static nonlinear distortion of an underlying Gaussian linear process. Several nonlinear statistics have been evaluated, such us the time delayed mutual information, the correlation dimension and the maximal Lyapunov exponent. The obtained results allow us to reject the null hypothesis, giving evidence of underlying nonlinear dynamics. Moreover, no evidence of low-dimensional chaos has been found; indeed, the analysed time series are better characterized by the power law sensitivity to initial conditions which can suggest a motion at the 'edge of chaos', at the border between chaotic and regular non-chaotic dynamics. This uncertainty makes it necessary to further investigate about the nature of the nonlinear dynamics. For this purpose, a second surrogate test to distinguish chaotic orbits from pseudoperiodic orbits has been applied. In this case, we cannot reject the null hypothesis which means that the ELM time series is possibly pseudo-periodic. In order to reproduce pseudo-periodic dynamical properties, a periodic state-of-the-art model, proposed to reproduce the ELM cycle, has been corrupted by a dynamical noise, obtaining time series qualitatively in agreement with experimental time series.

For complete list of authors see http://dx.doi.org/10.1088/1361-6587/aa96cd

Available from: 2019-12-03 Created: 2019-12-03 Last updated: 2019-12-03Bibliographically approved
doi
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