ParkJHChungJWChooIW. Fenestrated stent-grafts for preserving visceral arterial branches in the treatment of abdominal aortic aneurysms: preliminary experience. J Vasc Interv Radiol. 1996;7:819–823.
2.
RichterGMPalmazJCNoeldgeG. Relationship between blood flow, thrombosis and neointima in stents. J Vasc Interv Radiol. 1999;10:598–604.
3.
BeythienCGutensohnKBauJ. Influence of stent length and heparin coating on platelet activation: a flow cytometric analysis in a pulsed floating model. Thromb Res. 1999;94:79–86.
4.
PeacockJHankinsSJonesT. Flow instabilities induced by coronary artery stents: assessment with an in vitro pulse duplicator. J Biomech. 1995;28:17–26.
5.
KandailHHamadyMXuXY. Comparison of blood flow in branched and fenestrated stent-grafts for endovascular repair of abdominal aortic aneurysms. J Endovasc Ther. 2015;22:578–590.
6.
SutaloIDLawrence-BrownMMAhmedS. Modeling of antegrade and retrograde flow into a branch artery of the aorta: implications for endovascular stent-grafting and extra-anatomical visceral bypass. J Endovasc Ther. 2008;15:300–309.
7.
KenwrightDNHenzeCLevitC. Feature extraction of separation and attachment lines. IEEE Trans Vis Comput Graph. 1999;5:135–144.
8.
PoelmaCWattonPNVentikosY. Transitional flow in aneurysms and the computation of haemodynamic parameters. J R Soc Interface. 2015;12(105). doi:10.1098/rsif.2014.1394.
9.
DoyleBKavanaghEMcGloughlinT, et al.From detection to rupture: a serial computational fluid dynamics case study of a rapidly expanding, patient-specific, ruptured abdominal aortic aneurysm. In: DoyleBJMillerKWittekA eds. Computational Biomechanics for Medicine. New York, NY: Springer; 2014:53–68.
GeorgakarakosEXenakisAGeorgiadisGS. The hemodynamic impact of misalignment of fenestrated endografts: a computational study. Eur J Vasc Endovasc Surg. 2014;47:151–159.
12.
HardmanDDoyleBJSempleSI. On the prediction of monocyte deposition in abdominal aortic aneurysms using computational fluid dynamics. Proc Inst Mech Eng H. 2013;227:1114–1124.
13.
BascianoCKleinstreuerCHyunS. A relation between near-wall particle-hemodynamics and onset of thrombus formation in abdominal aortic aneurysms. Ann Biomed Eng. 2011;39:2010–2026.
14.
ChengZRigaCChanJ. Initial findings and potential applicability of computational simulation of the aorta in acute type B dissection. J Vasc Surg. 2013;57(2 suppl):35S–43S.
15.
SunZAllenYBNadkarniS. CT virtual intravascular endoscopy in the visualization of fenestrated stent-grafts. J Endovasc Ther. 2008;15:42–51.
16.
SunZAllenYBMwipatayiBP. Multislice CT angiography in the follow-up of fenestrated endovascular grafts: effect of slice thickness on 2D and 3D visualization of the fenestrated stents. J Endovasc Ther. 2008;15:417–426.
17.
MoulakakisKGMylonasSNDalainasI. The chimney-graft technique for preserving supra-aortic branches: a review. Ann Cardiothorac Surg. 2013;2:339–346.
18.
SunZChaichanaT. Fenestrated stent graft repair of abdominal aortic aneurysm: hemodynamic analysis of the effect of fenestrated stents on the renal arteries. Korean J Radiol. 2010;11:95–106.