Utilize este identificador para referenciar este registo: http://hdl.handle.net/10071/13116
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dc.contributor.authorLi, F.-
dc.contributor.authorYu, P. C.-
dc.contributor.authorXu, X.-
dc.contributor.authorFiuza, F.-
dc.contributor.authorDecyk, V. K.-
dc.contributor.authorDalichaouch, T.-
dc.contributor.authorDavidson, A.-
dc.contributor.authorTableman, A.-
dc.contributor.authorAn, W.-
dc.contributor.authorTsung, F. S.-
dc.contributor.authorFonseca, R. A.-
dc.contributor.authorLu, W.-
dc.contributor.authorMori, W. B.-
dc.date.accessioned2017-04-24T08:36:26Z-
dc.date.available2017-04-24T08:36:26Z-
dc.date.issued2017-
dc.identifier.issn0010-4655-
dc.identifier.urihttp://hdl.handle.net/10071/13116-
dc.description.abstractIn this paper we present a customized finite-difference-time-domain (FDTD) Maxwell solver for the particle-in-cell (PIC) algorithm. The solver is customized to effectively eliminate the numerical Cerenkov instability (NCI) which arises when a plasma (neutral or non-neutral) relativistically drifts on a grid when using the PIC algorithm. We control the EM dispersion curve in the direction of the plasma drift of a FDTD Maxwell solver by using a customized higher order finite difference operator for the spatial derivative along the direction of the drift (1 direction). We show that this eliminates the main NCI modes with moderate broken vertical bar k(1)broken vertical bar, while keeps additional main NCI modes well outside the range of physical interest with higher broken vertical bar k(1)broken vertical bar. These main NCI modes can be easily filtered out along with first spatial aliasing NCI modes which are also at the edge of the fundamental Brillouin zone. The customized solver has the possible advantage of improved parallel scalability because it can be easily partitioned along (1) over bar which typically has many more cells than other directions for the problems of interest. We show that FFTs can be performed locally to current on each partition to filter out the main and first spatial aliasing NCI modes, and to correct the current so that it satisfies the continuity equation for the customized spatial derivative. This ensures that Gauss' Law is satisfied. We present simulation examples of one relativistically drifting plasma, of two colliding relativistically drifting plasmas, and of nonlinear laser wakefield acceleration (LWFA) in a Lorentz boosted frame that show no evidence of the NCI can be observed when using this customized Maxwell solver together with its NCI elimination scheme.eng
dc.language.isoeng-
dc.publisherElsevier B.V.-
dc.relation1339893-
dc.relation1500630-
dc.relation1614949-
dc.rightsopenAccesspor
dc.subjectPIC simulationeng
dc.subjectHybrid Maxwell solvereng
dc.subjectRelativistic plasma drifteng
dc.subjectNumerical Cerenkov instabilityeng
dc.subjectLorentz boosted frameeng
dc.titleControlling the numerical Cerenkov instability in PIC simulations using a customized finite difference Maxwell solver and a local FFT based current correctioneng
dc.typearticle-
dc.pagination6 - 17-
dc.publicationstatusPublicadopor
dc.peerreviewedyes-
dc.journalComputer Physics Communications-
dc.distributionInternacionalpor
dc.volume214-
degois.publication.firstPage6-
degois.publication.lastPage17-
degois.publication.titleControlling the numerical Cerenkov instability in PIC simulations using a customized finite difference Maxwell solver and a local FFT based current correctioneng
dc.date.updated2019-04-29T10:05:27Z-
dc.description.versioninfo:eu-repo/semantics/submittedVersion-
dc.identifier.doi10.1016/j.cpc.2017.01.001-
dc.subject.fosDomínio/Área Científica::Ciências Naturais::Matemáticaspor
dc.subject.fosDomínio/Área Científica::Ciências Naturais::Ciências da Computação e da Informaçãopor
iscte.identifier.cienciahttps://ciencia.iscte-iul.pt/id/ci-pub-36837-
iscte.alternateIdentifiers.wosWOS:000397358400002-
iscte.alternateIdentifiers.scopus2-s2.0-85011587109-
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