Computational investigations on the hemodynamic performance of a new swirl generator in bifurcated arteries

dc.contributor.authorPrashantha, B.
dc.contributor.authorAnish, S.
dc.date.accessioned2026-02-05T09:30:15Z
dc.date.issued2019
dc.description.abstractHemodynamic behaviour of blood in the bifurcated arteries are closely related to the development of cardiovascular disease. The secondary flows generated at the bifurcation zone promotes the deposition of atherogenic particles on the outer walls. The present study aims at suppressing the development of atherosclerosis plaque by inducing helical flow structure in the arterial passage. To realize this objective a novel swirl generator (stent like structure with an internal groove) has been developed to induce helicity in the bifurcated passage. The functional requirement of the swirl generator is to minimize the relative residence time (RRT) of the fluid layer near the endothelial wall without generating any additional pressure drop. Different configurations of the swirl generator have been tested computationally using large eddy simulation (LES) model. It is observed that the induced helical flow redistributes the kinetic energy from the centre to the periphery. A single rib swirl flow generator proximal to the stent treated passage can generate sufficient helicity to bring down the RRT by 36% without generating any additional pressure drop. The swirl flow adds azimuthal instability which increase vortex formations in the passage. The induced helical flow in the domain provokes more linked vortices, which may act as self-cleaning mechanism to the arterial wall. © 2018, © 2019 Informa UK Limited, trading as Taylor & Francis Group.
dc.identifier.citationComputer Methods in Biomechanics and Biomedical Engineering, 2019, 22, 4, pp. 364-375
dc.identifier.issn10255842
dc.identifier.urihttps://doi.org/10.1080/10255842.2018.1556974
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/24646
dc.publisherTaylor and Francis Ltd. michael.wagreich@univie.ac.at
dc.subjectDiseases
dc.subjectDrops
dc.subjectKinetic energy
dc.subjectKinetics
dc.subjectLarge eddy simulation
dc.subjectPressure drop
dc.subjectStents
dc.subjectVortex flow
dc.subjectAdditional pressure drops
dc.subjectBifurcated artery
dc.subjectCardio-vascular disease
dc.subjectComputational investigation
dc.subjectHelicities
dc.subjectResidence time
dc.subjectSelf-cleaning mechanism
dc.subjectSwirl flow
dc.subjectHemodynamics
dc.subjecttranscription factor Sox2
dc.subjectArticle
dc.subjectatherosclerosis
dc.subjectcardiovascular disease
dc.subjectcarotid artery bifurcation
dc.subjectcarotid atherosclerosis
dc.subjectcommon carotid artery
dc.subjectcomputer analysis
dc.subjectfinite element analysis
dc.subjectgeometry
dc.subjecthemodynamics
dc.subjecthypertension
dc.subjectinternal carotid artery
dc.subjectkinetics
dc.subjectphenotype
dc.subjectpriority journal
dc.subjectretention time
dc.subjectrib cage
dc.subjectshear stress
dc.subjectsimulation
dc.subjectvalidation process
dc.subjectartery
dc.subjectbiological model
dc.subjectblood flow velocity
dc.subjectcomputer simulation
dc.subjectdiastole
dc.subjecthuman
dc.subjectphysiology
dc.subjectpressure
dc.subjectstent
dc.subjecttime factor
dc.subjectArteries
dc.subjectBlood Flow Velocity
dc.subjectComputer Simulation
dc.subjectDiastole
dc.subjectHumans
dc.subjectModels, Cardiovascular
dc.subjectPressure
dc.subjectTime Factors
dc.titleComputational investigations on the hemodynamic performance of a new swirl generator in bifurcated arteries

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