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dc.contributor.authorHowson, Thomas
dc.contributor.authorDe Moortel, Ineke
dc.contributor.authorReid, Jack
dc.contributor.authorHood, Alan
dc.date.accessioned2019-09-13T09:30:02Z
dc.date.available2019-09-13T09:30:02Z
dc.date.issued2019-09
dc.identifier261146908
dc.identifierf9e71ada-7ed4-4c6c-b287-059a2c1fe991
dc.identifier000483925600005
dc.identifier85082881900
dc.identifier.citationHowson , T , De Moortel , I , Reid , J & Hood , A 2019 , ' Magnetohydrodynamic waves in braided magnetic fields ' , Astronomy & Astrophysics , vol. 629 , A60 , pp. 1-12 . https://doi.org/10.1051/0004-6361/201935876en
dc.identifier.issn0004-6361
dc.identifier.otherBibCode: 2019arXiv190803089H
dc.identifier.otherORCID: /0000-0002-1452-9330/work/61621975
dc.identifier.otherORCID: /0000-0003-2620-2068/work/61622001
dc.identifier.otherORCID: /0000-0002-6391-346X/work/63716886
dc.identifier.otherORCID: /0000-0002-4895-6277/work/66070055
dc.identifier.urihttps://hdl.handle.net/10023/18471
dc.descriptionFunding: UK Science and Technology Facilities Council (consolidated grants ST/N000609/1 and ST/S000402/1) and the European Union Horizon 2020 research and innovation programme (grant agreement No. 647214). IDM acknowledges support from the Research Council of Norway through its Centres of Excellence scheme, project number 262622 and JR acknowledges the support of the Carnegie Trust for the Universities of Scotland.en
dc.description.abstractAims. We investigate the propagation of transverse magnetohydrodynamic (MHD) wave fronts through a coronal plasma containing a braided magnetic field. Methods. We performed a series of three dimensional MHD simulations in which a small amplitude, transverse velocity perturbation is introduced into a complex magnetic field. We analysed the deformation of the wave fronts as the perturbation propagates through the braided magnetic structures and explore the nature of Alfvénic wave phase mixing in this regime. We considered the effects of viscous dissipation in a weakly non-ideal plasma and evaluate the effects of field complexity on wave energy dissipation. Results. Spatial gradients in the local Alfvén speed and variations in the length of magnetic field lines ensure that small scales form throughout the propagating wave front due to phase mixing. Additionally, the presence of complex, intricate current sheets associated with the background field locally modifies the polarisation of the wave front. The combination of these two effects enhances the rate of viscous dissipation, particularly in more complex field configurations. Unlike in classical phase mixing configurations, the greater spatial extent of Alfvén speed gradients ensures that wave energy is deposited over a larger cross-section of the magnetic structure. Further, the complexity of the background magnetic field ensures that small gradients in a wave driver can map to large gradients within the coronal plasma. Conclusions. The phase mixing of transverse MHD waves in a complex magnetic field will progress throughout the braided volume. As a result, in a non-ideal regime wave energy will be dissipated over a greater cross-section than in classical phase mixing models. The formation rate of small spatial scales in a propagating wave front is a function of the complexity of the background magnetic field. As such, if the coronal field is sufficiently complex it remains plausible that phase mixing induced wave heating can contribute to maintaining the observed temperatures. Furthermore, the weak compressibility of the transverse wave and the observed phase mixing pattern may provide seismological information about the nature of the background plasma.
dc.format.extent12
dc.format.extent10719570
dc.language.isoeng
dc.relation.ispartofAstronomy & Astrophysicsen
dc.subjectSun: coronaen
dc.subjectSun: magnetic fieldsen
dc.subjectSun: oscillationsen
dc.subjectQB Astronomyen
dc.subjectQC Physicsen
dc.subjectAstronomy and Astrophysicsen
dc.subjectSpace and Planetary Scienceen
dc.subjectNDASen
dc.subject.lccQBen
dc.subject.lccQCen
dc.titleMagnetohydrodynamic waves in braided magnetic fieldsen
dc.typeJournal articleen
dc.contributor.sponsorEuropean Research Councilen
dc.contributor.sponsorScience & Technology Facilities Councilen
dc.contributor.sponsorScience & Technology Facilities Councilen
dc.contributor.institutionUniversity of St Andrews. Applied Mathematicsen
dc.identifier.doi10.1051/0004-6361/201935876
dc.description.statusPeer revieweden
dc.identifier.urlhttp://adsabs.harvard.edu/abs/2019arXiv190803089Hen
dc.identifier.grantnumber647214en
dc.identifier.grantnumberST/S000402/1en
dc.identifier.grantnumberST/N000609/1en


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