Repository logo

Infoscience

  • English
  • French
Log In
Logo EPFL, École polytechnique fédérale de Lausanne

Infoscience

  • English
  • French
Log In
  1. Home
  2. Academic and Research Output
  3. Journal articles
  4. A Monolithic Approach to Fluid–Composite Structure Interaction
 
Loading...
Thumbnail Image
research article

A Monolithic Approach to Fluid–Composite Structure Interaction

Forti, Davide  
•
Bukac, Martina
•
Quaini, Annalisa
Show more
2017
Journal of Scientific Computing

We study a nonlinear fluid–structure interaction (FSI) problem between an incompressible, viscous fluid and a composite elastic structure consisting of two layers: a thin layer (membrane) in direct contact with the fluid, and a thick layer (3D linearly elastic structure) sitting on top of the thin layer. The coupling between the fluid and structure, and the coupling between the two structures is achieved via the kinematic and dynamic coupling conditions modeling no-slip and balance of forces, respectively. The coupling is evaluated at the moving fluid–structure interface with mass, i.e., the thin structure. To solve this nonlinear moving-boundary problem in 3D, a monolithic, fully implicit method was developed, and combined with an arbitrary Lagrangian–Eulerian approach to deal with the motion of the fluid domain. This class of problems and its generalizations are important in e.g., modeling FSI between blood flow and arterial walls, which are known to be composed of several different layers, each with different mechanical characteristics and thickness. By using this model we show how multi-layered structure of arterial walls influences the pressure wave propagation in arterial walls, and how the presence of atheroma and the presence of a vascular device called stent, influence intramural strain distribution throughout different layers of the arterial wall. The detailed intramural strain distribution provided by this model can be used in conjunction with ultrasound B-mode scans as a predictive tool for an early detection of atherosclerosis (Zahnd et al. in IEEE international on ultrasonics symposium (IUS), pp 1770–1773, 2011).

  • Details
  • Metrics
Type
research article
DOI
10.1007/s10915-017-0363-5
Web of Science ID

WOS:000403410200016

Author(s)
Forti, Davide  
•
Bukac, Martina
•
Quaini, Annalisa
•
Canic, Suncita
•
Deparis, Simone  
Date Issued

2017

Publisher

Springer Verlag

Published in
Journal of Scientific Computing
Volume

72

Start page

396

End page

421

Subjects

Fluid–structure interaction

•

Composite structure

•

Hemodynamics

•

Atheroma

•

Stent

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CMCS  
SCI-SB-SD  
Available on Infoscience
March 21, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/135616
Logo EPFL, École polytechnique fédérale de Lausanne
  • Contact
  • infoscience@epfl.ch

  • Follow us on Facebook
  • Follow us on Instagram
  • Follow us on LinkedIn
  • Follow us on X
  • Follow us on Youtube
AccessibilityLegal noticePrivacy policyCookie settingsEnd User AgreementGet helpFeedback

Infoscience is a service managed and provided by the Library and IT Services of EPFL. © EPFL, tous droits réservés