DocumentCode
35860
Title
Which Spring is the Best? Comparison of Methods for Virtual Stenting
Author
Spranger, Katerina ; Ventikos, Y.
Author_Institution
Dept. of Eng. Sci., Univ. of Oxford, Oxford, UK
Volume
61
Issue
7
fYear
2014
fDate
Jul-14
Firstpage
1998
Lastpage
2010
Abstract
This paper presents a methodology for modeling the deployment of implantable devices used in minimally invasive vascular interventions. Motivated by the clinical need to perform preinterventional rehearsals of a stent deployment, we have developed methods enabling virtual device placement inside arteries, under the constraint of real-time application. This requirement of rapid execution narrowed down the search for a suitable method to the concept of a dynamic mesh. Inspired by the idea of a mesh of springs, we have found a novel way to apply it to stent modeling. The experiments conducted in this paper investigate properties of the stent models based on three different spring types: lineal, semitorsional, and torsional springs. Furthermore, this paper compares the results of various deployment scenarios for two different classes of devices: a stent graft and a flow diverter. The presented results can be of a high-potential clinical value, enabling the predictive evaluation of the outcome of a stent deployment treatment.
Keywords
blood vessels; design; geometry; haemodynamics; matrix algebra; medical computing; physiological models; real-time systems; stents; torsion; virtual reality; arteries; deployment scenario comparison; dynamic mesh; flow diverter; implantable device deployment modeling; lineal springs; minimally invasive vascular interventions; predictive outcome evaluation; rapid execution requirement; real-time application; semitorsional springs; spring mesh; spring type effect; stent deployment preinterventional rehearsals; stent deployment treatment; stent graft; stent modeling; virtual device placement; virtual stenting; Computational modeling; Crimping; Equations; Geometry; Implants; Mathematical model; Springs; Flow diverter; modeling; stent; virtual stenting;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2014.2311856
Filename
6767090
Link To Document