Head-on collision between solitary waves and thermocapillary instabilities in Maxwell fluid using Rayleigh-Bénard-Marangoni system

dc.contributor.authorTariq, Nafisa
dc.contributor.authorZhang, Lijun
dc.contributor.authorBhatti, M. M.
dc.contributor.authorAnwar Beg, O.
dc.contributor.authorÖztop, Hakan Fehmi
dc.date.accessioned2026-08-12T18:12:42Z
dc.date.issued2026
dc.departmentFırat Üniversitesi
dc.description.abstractPurposeThis work aims to present an analytical study of the head-on collision of bidirectional solitary waves in a Rayleigh-B & eacute;nard-Marangoni system consisting of a viscoelastic Maxwell fluid. The fluid is bounded by a rigid, nonpermeable lower surface and a deformable free surface at the top, where a constant heat flux is applied.Design/methodology/approachAn extended Poincar & eacute;-Lighthill-Kuo method is used, incorporating stretched coordinates and phase functions, with an asymptotic expansion carried out consistently at successive orders. This approach yields coupled Korteweg-de Vries-type evolution equations governing the right- and left-propagating waves. The solutions are derived up to the second-order approximation, and the expressions for phase shift, distortion profile, maximum run-up amplitude and Nusselt number are presented explicitly.FindingsThe effect of wave interaction on heat transfer is quantified through the Nusselt number, showing that viscoelastic memory induces persistent changes in the vertical temperature gradient. Explicit expressions for phase shifts show that, unlike Newtonian fluids, viscoelastic relaxation leads to persistent trajectory corrections, resulting in intrinsically inelastic collisions, lasting waveform asymmetry and nonlinear peak broadening. A feasibility analysis based on representative physical parameters indicates that these nonlinear and depression-type solitary waves are most likely observable in the B & eacute;nard-Marangoni regime under experimentally accessible conditions.Originality/valueTo the best of the authors' knowledge, the head-on collisions between solitary waves in a thermally driven Maxwell Rayleigh-B & eacute;nard-Marangoni system are studied using a perturbation approach for the first time in this paper. In contrast to earlier studies, this work has been restricted to unidirectional wave propagation. Therefore, the present results reveal intriguing facts that could be useful for experimental purposes.
dc.identifier.doi10.1108/HFF-01-2026-0066
dc.identifier.endpage2245
dc.identifier.issn0961-5539
dc.identifier.issn1758-6585
dc.identifier.issue5
dc.identifier.startpage2226
dc.identifier.urihttps://doi.org/10.1108/HFF-01-2026-0066
dc.identifier.urihttps://hdl.handle.net/11508/64006
dc.identifier.volume36
dc.identifier.wosWOS:001726584500001
dc.identifier.wosqualityQ1
dc.indekslendigikaynakWeb of Science
dc.language.isoen
dc.publisherEmerald Group Publishing Ltd
dc.relation.ispartofInternational Journal of Numerical Methods for Heat & Fluid Flow
dc.relation.publicationcategoryMakale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı
dc.rightsinfo:eu-repo/semantics/closedAccess
dc.snmzKA_WoS_20260511
dc.subjectThermal transport
dc.subjectSolitary waves
dc.subjectHead-on collision
dc.subjectKorteweg-de Vries equation
dc.subjectPLK method
dc.subjectAsymptotic solutions
dc.titleHead-on collision between solitary waves and thermocapillary instabilities in Maxwell fluid using Rayleigh-Bénard-Marangoni system
dc.typeArticle

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