cardiovascular fluid mechanics
Recently Published Documents


TOTAL DOCUMENTS

13
(FIVE YEARS 4)

H-INDEX

6
(FIVE YEARS 1)

2014 ◽  
Vol 24 (12) ◽  
pp. 2437-2486 ◽  
Author(s):  
Kenji Takizawa ◽  
Yuri Bazilevs ◽  
Tayfun E. Tezduyar ◽  
Christopher C. Long ◽  
Alison L. Marsden ◽  
...  

This paper provides a review of the space–time (ST) and Arbitrary Lagrangian–Eulerian (ALE) techniques developed by the first three authors' research teams for patient-specific cardiovascular fluid mechanics modeling, including fluid–structure interaction (FSI). The core methods are the ALE-based variational multiscale (ALE-VMS) method, the Deforming-Spatial-Domain/Stabilized ST formulation, and the stabilized ST FSI technique. A good number of special techniques targeting cardiovascular fluid mechanics have been developed to be used with the core methods. These include: (i) arterial-surface extraction and boundary condition techniques, (ii) techniques for using variable arterial wall thickness, (iii) methods for calculating an estimated zero-pressure arterial geometry, (iv) techniques for prestressing of the blood vessel wall, (v) mesh generation techniques for building layers of refined fluid mechanics mesh near the arterial walls, (vi) a special mapping technique for specifying the velocity profile at an inflow boundary with non-circular shape, (vii) a scaling technique for specifying a more realistic volumetric flow rate, (viii) techniques for the projection of fluid–structure interface stresses, (ix) a recipe for pre-FSI computations that improve the convergence of the FSI computations, (x) the Sequentially-Coupled Arterial FSI technique and its multiscale versions, (xi) techniques for calculation of the wall shear stress (WSS) and oscillatory shear index (OSI), (xii) methods for stent modeling and mesh generation, (xiii) methods for calculation of the particle residence time, and (xiv) methods for an estimated element-based zero-stress state for the artery. Here we provide an overview of the special techniques for WSS and OSI calculations, stent modeling and mesh generation, and calculation of the residence time with application to pulsatile ventricular assist device (PVAD). We provide references for some of the other special techniques. With results from earlier computations, we show how these core and special techniques work.


Author(s):  
Neelakantan Saikrishnan ◽  
Jean-Pierre Rabbah ◽  
Paul Gunning ◽  
Ikay Okafor ◽  
Arvind Santhanakrishnan ◽  
...  

This paper describes three different versions of left heart simulators that have been developed at the Cardiovascular Fluid Mechanics Laboratory at Georgia Institute of Technology, specifically designed to provide high fidelity experimental datasets necessary for rigorous validation of computational tools. These systems are capable of simulating physiological and pathological flow, pressure and geometric conditions, and can be investigated using a variety of experimental tools to measure relevant biomechanical quantities. The development of such robust simulators is a critical step in ensuring applicability of patient specific computational tools.


2009 ◽  
Vol 1161 (1) ◽  
pp. 1-25 ◽  
Author(s):  
Lakshmi P. Dasi ◽  
Philippe Sucosky ◽  
Diane De Zelicourt ◽  
Kartik Sundareswaran ◽  
Jorge Jimenez ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document