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Elastic overtaking collisions of large-amplitude ion-acoustic solitons

dc.contributor.authorOlivier, Carel P
dc.date.accessioned2025-11-26T12:57:29Z
dc.date.issued2024
dc.descriptionJournal Article. Pure and Applied Analytics, School of Mathematical and Statistical Sciences, North-West University,
dc.description.abstractOvertaking collisions of large-amplitude solitons are investigated via fluid simulations for a plasma consisting of cold ions and Boltzmann-distributed electrons. To achieve this, a new fluid simulation code is presented. In addition, a novel approach to construct soliton initial conditions is developed. Using these ideas, initial conditions are combined that allows the simulation of overtaking collisions. It is shown that, in the small-amplitude regime, simulation results agree well with the two-soliton solution obtained from reductive perturbation theory. Interestingly, in the large amplitude regime, both the slow and fast solitons re-emerge after the collision with no significant change, showing that the collisions remain elastic. A comparison between reductive perturbation analysis and the simulations show that the only significant effect of higher order nonlinearities on overtaking collisions is a reduction in the magnitude of the phase shifts of both solitons.
dc.identifier.citationOlivier, C.P., 2024. Elastic overtaking collisions of large-amplitude ion-acoustic solitons. Journal of Plasma Physics, 90(3), p.905900305.https://doi.org/10.1017/S002237782400062X
dc.identifier.urihttp://hdl.handle.net/10394/44364
dc.language.isoen
dc.publisherCambridge University Press
dc.subjectPlasma
dc.subjectNonlinear
dc.subjectPhenomena
dc.titleElastic overtaking collisions of large-amplitude ion-acoustic solitons
dc.typeArticle

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