Publication:
2D MHD simulation of spontaneous magnetic fields generated during interaction of 1315.2-nm laser radiation with copper slabs at 1016 W/cm2

dc.contributor.authorJach, K.
dc.contributor.authorPisarczyk, T.
dc.contributor.authorStepniewski, W.
dc.contributor.authorSwierczynski, R.
dc.contributor.authorKochetkov, I. U.
dc.contributor.authorКочетков, Юрий Владимирович
dc.date.accessioned2024-11-29T20:03:44Z
dc.date.available2024-11-29T20:03:44Z
dc.date.issued2021
dc.description.abstract© 2021 Author(s).Multidimensional modeling of phenomena and processes occurring during the expansion of the laser-produced plasma for different irradiation conditions related to both the laser beam parameters and the target constructions is a very complex issue, especially when modeling requires consideration of kinetic processes associated with the development of various types of microscopic instability. Multidimensional PIC codes create such a possibility, but their use is limited to modeling phenomena even in a very narrow timescale due to the limited computational capabilities of current supercomputers. For this reason, the paper attempts to interpret the results of the spontaneous magnetic field (SMF) measurements obtained during the PALS (Prague Asterix Laser System) experiment [Pisarczyk et al., AIP Adv. 10, 115201 (2020); Pisarczyk et al., Phys. Plasmas 22, 102706 (2015)] based on the 2D magneto-hydrodynamic (MHD) model [Jach et al., Computer Modeling of Dynamic Interaction of Bodies by Free Point Method (PWN, Warsaw, 2011)]. The MHD equations were used with included arbitrary (i) current of hot electrons treating it as an additional external current and (ii) ion-sound instability responsible for the increase in anomalous resistance in areas with high temperature and low-density plasma. The spatial distribution of magnetic fields and current density obtained from 2D modeling are in acceptable agreement with the experimental results [Pisarczyk et al., Plasma Phys. Controlled Fusion 62, 115020 (2020); Zaraś-Szydłowska et al., AIP Adv. 10, 115201 (2020); Pisarczyk et al., Phys. Plasmas 22, 102706 (2015)]. The inclusion of temporal changes in anomalous resistance in modeling allowed us to explain the persistence of high SMF amplitude at the level of several megagauss after the laser pulse ended due to the effect of magnetic field freezing.
dc.identifier.citation2D MHD simulation of spontaneous magnetic fields generated during interaction of 1315.2-nm laser radiation with copper slabs at 1016 W/cm2 / Jach, K. [et al.] // Physics of Plasmas. - 2021. - 28. - № 9. - 10.1063/5.0054283
dc.identifier.doi10.1063/5.0054283
dc.identifier.urihttps://www.doi.org/10.1063/5.0054283
dc.identifier.urihttps://www.scopus.com/record/display.uri?eid=2-s2.0-85114454147&origin=resultslist
dc.identifier.urihttp://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=Alerting&SrcApp=Alerting&DestApp=WOS_CPL&DestLinkType=FullRecord&UT=WOS:000724128200003
dc.identifier.urihttps://openrepository.mephi.ru/handle/123456789/24654
dc.relation.ispartofPhysics of Plasmas
dc.title2D MHD simulation of spontaneous magnetic fields generated during interaction of 1315.2-nm laser radiation with copper slabs at 1016 W/cm2
dc.typeArticle
dspace.entity.typePublication
oaire.citation.issue9
oaire.citation.volume28
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relation.isAuthorOfPublication.latestForDiscovery78270804-59b8-4aa6-9232-4876cdddbda9
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relation.isOrgUnitOfPublication.latestForDiscoverydcdb137c-0528-46a5-841b-780227a67cce
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