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dc.creatorVlachomitrou M., Pelekasis N.en
dc.date.accessioned2023-01-31T11:36:54Z
dc.date.available2023-01-31T11:36:54Z
dc.date.issued2017
dc.identifier10.1017/jfm.2017.301
dc.identifier.issn00221120
dc.identifier.urihttp://hdl.handle.net/11615/80638
dc.description.abstractA numerical method is developed to study the dynamic behaviour of an encapsulated bubble when the viscous forces of the surrounding liquid are accounted for. The continuity and Navier-Stokes equations are solved for the liquid, whereas the coating is described as a viscoelastic shell with bending resistance. The Galerkin Finite Element Methodology is employed for the spatial discretization of the flow domain surrounding the bubble, with the standard staggered grid arrangement that uses biquadratic and bilinear Lagrangian basis functions for the velocity and pressure in the liquid, respectively, coupled with a superparametric scheme with -cubic splines as basis functions pertaining to the location of the interface. The spine method and the elliptic mesh generation technique are used for updating the mesh points in the interior of the flow domain as the shape of the interface evolves with time, with the latter being distinctly superior in capturing severely distorted shapes. The stabilizing effect of the liquid viscosity is demonstrated, as it alters the amplitude of the disturbance for which a bubble deforms and/or collapses. For a step change in the far-field pressure the dynamic evolution of the microbubble is captured until a static equilibrium is achieved. Static shapes that are significantly compressed are captured in the post-buckling regime, leading to symmetric or asymmetric shapes, depending on the relative dilatation to bending stiffness ratio. As the external overpressure increases, shapes corresponding to all the solution families that were captured evolve to exhibit contact as the two poles approach each other. Shell viscosity prevents jet formation by relaxing compressive stresses and bending moments around the indentation generated at the poles due to shell buckling. This behaviour is conjectured to be the inception process leading to static shapes with contact regions. © 2017 Cambridge University Press.en
dc.language.isoenen
dc.sourceJournal of Fluid Mechanicsen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85020685404&doi=10.1017%2fjfm.2017.301&partnerID=40&md5=75809a4b8ae7256469102312f7180e1d
dc.subjectBiologyen
dc.subjectBucklingen
dc.subjectDynamicsen
dc.subjectFunctionsen
dc.subjectLiquidsen
dc.subjectMesh generationen
dc.subjectNumerical methodsen
dc.subjectPolesen
dc.subjectViscoelasticityen
dc.subjectBending resistanceen
dc.subjectBiological fluidsen
dc.subjectBubble dynamicsen
dc.subjectGalerkin finite elementsen
dc.subjectGeneration techniquesen
dc.subjectSpatial discretizationsen
dc.subjectStabilizing effectsen
dc.subjectStatic equilibriumen
dc.subjectNavier Stokes equationsen
dc.subjectbubbleen
dc.subjectfluid dynamicsen
dc.subjectNavier-Stokes equationsen
dc.subjectnumerical methoden
dc.subjectoverpressureen
dc.subjectviscosityen
dc.subjectCambridge University Pressen
dc.titleDynamic simulation of a coated microbubble in an unbounded flow: Response to a step change in pressureen
dc.typejournalArticleen


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