• LOGIN
Repository logo

BORIS Portal

Bern Open Repository and Information System

  • Publication
  • Projects
  • Funding
  • Research Data
  • Organizations
  • Researchers
  • LOGIN
Repository logo
Unibern.ch
  1. Home
  2. Publications
  3. Instability mechanisms initiating laminar–turbulent transition past bioprosthetic aortic valves
 

Instability mechanisms initiating laminar–turbulent transition past bioprosthetic aortic valves

Options
  • Details
BORIS DOI
10.48350/196395
Date of Publication
April 25, 2024
Publication Type
Article
Division/Institute

ARTORG Center for Bio...

ARTORG Center for Bio...

Author
Bornemann, Karoline-Marieorcid-logo
ARTORG Center for Biomedical Engineering Research
ARTORG Center for Biomedical Engineering Research - Cardiovascular Engineering
Obrist, Dominikorcid-logo
ARTORG Center for Biomedical Engineering Research - Cardiovascular Engineering
Subject(s)

500 - Science::570 - ...

600 - Technology::610...

600 - Technology::620...

Series
Journal of fluid mechanics
ISSN or ISBN (if monograph)
1469-7645
Publisher
Cambridge University Press
Language
English
Publisher DOI
10.1017/jfm.2024.309
Description
Bioprosthetic heart valves create turbulent flow during early systole which might be detrimental to their durability and performance. Complex mechanisms in the unsteady and heterogeneous flow field complicate the isolation of specific instability mechanisms. We use linear stability analysis and numerical simulations of the flow in a simplified model to study mechanisms initiating the laminar–turbulent transition. The analysis of a modified Orr–Sommerfeld equation, which includes a model for fluid–structure interaction (FSI), indicates Kelvin–Helmholtz and FSI instabilities for a physiological Reynolds number regime. Two-dimensional parametrized FSI simulations confirm the growth rates and phase speeds of these instabilities. The eigenmodes associated with the observed leaflet kinematics allow for decoupled leaflet oscillations. A detailed analysis of the temporal evolution of the flow field shows that the starting vortex interacts with the aortic wall leading to a secondary vortex which moves towards the shear layer in the wake of the leaflets. This appears to be connected to the onset of the shear layer instabilities that are followed by the onset of leaflet motion leading to large-scale vortex shedding and eventually to a nonlinear breakdown of the flow. Numerical results further indicate that a narrower aorta leads to an earlier onset of the shear layer instabilities. They also suggest that the growing perturbations of the shear layer instability propagate upstream and may initiate the FSI instabilities on the valve leaflets.
Handle
https://boris-portal.unibe.ch/handle/20.500.12422/177106
Show full item
File(s)
FileFile TypeFormatSizeLicensePublisher/Copright statementContent
instability-mechanisms-initiating-laminar-turbulent-transition-past-bioprosthetic-aortic-valves.pdftextAdobe PDF2.33 MBAttribution (CC BY 4.0)publishedOpen
BORIS Portal
Bern Open Repository and Information System
Build: 360c85 [14.04. 8:05]
Explore
  • Projects
  • Funding
  • Publications
  • Research Data
  • Organizations
  • Researchers
More
  • About BORIS Portal
  • Send Feedback
  • Cookie settings
  • Service Policy
Follow us on
  • Mastodon
  • YouTube
  • LinkedIn
UniBe logo