Numerical Study of Flow Resistance in Endovascular Stent with Triangular Wire Cross-Section

被引:0
作者
Yang, Chunyan [1 ]
Gu, Zhaoyong [2 ]
Zhang, Hongbin [1 ]
Fu, Wenyu [2 ]
Qiao, Aike [1 ]
机构
[1] Beijing Univ Technol, Coll Life Sci & Bioengn, Beijing, Peoples R China
[2] Beijing Univ Technol, Coll Mech Eng & Appl Elect Technol, Beijing, Peoples R China
来源
6TH WORLD CONGRESS OF BIOMECHANICS (WCB 2010), PTS 1-3 | 2010年 / 31卷
基金
中国国家自然科学基金;
关键词
endovascular stent; flow resistance; triangular wire cross-section; numerical simulation; ANEURYSM MODEL; ARTERY; OCCLUSION;
D O I
暂无
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Endovascular stents with different porosities and wire cross-section shapes may create different effects on the hemodynamics of aneurysm treated with interventional therapy because stents with different wire cross-section shapes induce different flow resistances through the stent strut. In order to analyze the flow resistance of the new stent with triangular cross-section by numerical simulation method, and to provide a reference basis for the structural design and optimization of endovascular stent, four kinds of models of the triangular cross-section bare stent were constructed using Soild-Works 2007 software. Numerical simulations of steady and transient blood flows in the four models were performed respectively according to CFD method using finite element software ANSYS 11. Hemodynamics data in the four models were collected, such as the flow patterns, the distribution of pressure and the flow resistance. The results show that the stent with triangular wire cross-section can produce large resistance of blood inflow to aneurysm and small resistance of outflow from aneurysm. Thus, outflow is easy and inflow is difficult. Thereby blood perfusion and flow of aneurysm cavity is restrained, and the pressure of aneurysm cavity is reduced, which plays certain effect on the intervention treatment of aneurysm. This result provides some instructions for the design of stent structure.
引用
收藏
页码:426 / +
页数:2
相关论文
共 15 条
[1]   Modeling of flow in a straight stented and nonstented side wall aneurysm model [J].
Aenis, M ;
Stancampiano, AP ;
Wakhloo, AK ;
Lieber, BB .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1997, 119 (02) :206-212
[2]  
Ernemann UU, 2003, AM J NEURORADIOL, V24, P597
[3]  
Gonzalez NR, 2008, NEUROSURGERY, V62, P1324, DOI [10.1227/01.NEU.0000237559.93852.F1, 10.1227/01.neu.0000333797.59585.c0]
[4]  
Gu ZhaoYong Gu ZhaoYong, 2009, Yiyong Shengwu Lixue / Journal of Medical Biomechanics, V24, P64
[5]  
Hassan T, 2004, AM J NEURORADIOL, V25, P63
[6]   Intravascular stent and endovascular coil placement for a ruptured fusiform aneurysm of the basilar artery - Case report and review of the literature [J].
Higashida, RT ;
Smith, W ;
Gress, D ;
Urwin, R ;
Dowd, CF ;
Balousek, PA ;
Halbach, VV .
JOURNAL OF NEUROSURGERY, 1997, 87 (06) :944-949
[7]   Comparison of two stents in modifying cerebral aneurysm hemodynamics [J].
Kim, Minsuok ;
Taulbee, Dale B. ;
Tremmel, Markus ;
Meng, Hui .
ANNALS OF BIOMEDICAL ENGINEERING, 2008, 36 (05) :726-741
[8]  
Li Tianchang, 2000, CHINA MED DEVICES IN, V6, P6
[9]   Occlusion of experimental aneurysms with heparin-loaded, microporous stent grafts [J].
Nishi, S ;
Nakayama, Y ;
Ishibashi-Ueda, H ;
Matsuda, T .
NEUROSURGERY, 2003, 53 (06) :1397-1404
[10]  
Parodi J C, 1991, Ann Vasc Surg, V5, P491, DOI 10.1007/BF02015271