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A Molecular Dynamics Simulation of Vesicle Deformation and Rupture in Confined Poiseuille Flow

dc.contributor.authorHarman, Alison
dc.contributor.supervisorJoos, Bela
dc.date.accessioned2013-09-16T20:16:24Z
dc.date.available2013-09-16T20:16:24Z
dc.date.created2013
dc.date.issued2013
dc.degree.disciplineSciences / Science
dc.degree.levelmasters
dc.degree.nameMSc
dc.description.abstractVesicles are simple structures, but display complex, non-linear dynamics in fluid flow. I investigate the deformation of nanometer-sized vesicles, both fully-inflated and those with excess area, as they travel in tightly confined capillaries. By varying both channel size and flow strength, I simulate vesicles as they transition from steady-state to unstable shapes, and then rupture in strong flow fields. By employing a molecular dynamics model of the vesicle, fluid, and capillary system one is able to rupture the lipid bilayer of these vesicles. This is unique in that most other numerical methods for modelling vesicles are unable to show rupture. The rupture of fully-inflated vesicles is applicable to drug delivery in which the release of the encapsulated medicine needs to be controlled. The deformation and rupture of vesicles with excess area could be applicable to red blood cells which have similar rheological properties.
dc.embargo.termsimmediate
dc.faculty.departmentPhysique / Physics
dc.identifier.urihttp://hdl.handle.net/10393/26127
dc.identifier.urihttp://dx.doi.org/10.20381/ruor-3225
dc.language.isoen
dc.publisherUniversité d'Ottawa / University of Ottawa
dc.subjectvesicles
dc.subjectlipid bilayers
dc.subjectbiophysics
dc.subjectsimulations
dc.subjectpoiseuille flow
dc.subjectliposomes
dc.subjectbiological membranes
dc.titleA Molecular Dynamics Simulation of Vesicle Deformation and Rupture in Confined Poiseuille Flow
dc.typeThesis
thesis.degree.disciplineSciences / Science
thesis.degree.levelMasters
thesis.degree.nameMSc
uottawa.departmentPhysique / Physics

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