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Fluid-Dynamic Optimal Design of Helical Vascular Graft for Stenotic Disturbed Flow SCIE SCOPUS

Title
Fluid-Dynamic Optimal Design of Helical Vascular Graft for Stenotic Disturbed Flow
Authors
Ha, HJHwang, DChoi, WRBaek, JLee, SJ
Date Issued
2014-10-31
Publisher
PUBLIC LIBRARY SCIENCE
Abstract
Although a helical configuration of a prosthetic vascular graft appears to be clinically beneficial in suppressing thrombosis and intimal hyperplasia, an optimization of a helical design has yet to be achieved because of the lack of a detailed understanding on hemodynamic features in helical grafts and their fluid dynamic influences. In the present study, the swirling flow in a helical graft was hypothesized to have beneficial influences on a disturbed flow structure such as stenotic flow. The characteristics of swirling flows generated by helical tubes with various helical pitches and curvatures were investigated to prove the hypothesis. The fluid dynamic influences of these helical tubes on stenotic flow were quantitatively analysed by using a particle image velocimetry technique. Results showed that the swirling intensity and helicity of the swirling flow have a linear relation with a modified Germano number (Gn*) of the helical pipe. In addition, the swirling flow generated a beneficial flow structure at the stenosis by reducing the size of the recirculation flow under steady and pulsatile flow conditions. Therefore, the beneficial effects of a helical graft on the flow field can be estimated by using the magnitude of Gn*. Finally, an optimized helical design with a maximum Gn* was suggested for the future design of a vascular graft.
Keywords
SPIRAL LAMINAR-FLOW; TO-SIDE ANASTOMOSIS; WALL SHEAR-STRESS; OF-PLANE GEOMETRY; PULSATILE FLOW; STEADY FLOW; SECONDARY FLOW; BLOOD-FLOW; PIPE-FLOW; IN-VIVO
URI
https://oasis.postech.ac.kr/handle/2014.oak/14169
DOI
10.1371/JOURNAL.PONE.0111047
ISSN
1932-6203
Article Type
Article
Citation
PLOS ONE, vol. 9, no. 10, 2014-10-31
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