We sought to investigate the effects of endovascular stents with different links for treating stenotic vertebral artery and to determine the relationship between the shape of the link and in-stent restenosis (ISR). We also attempted to provide scientific guidelines for stent design and selection for clinical procedures. Models of three types of stent with different links (L-stent, V-stent, and S-stent) and an idealized stenotic vertebral artery were established. The deployment procedure for the stent in the stenotic vertebral artery was simulated for solid mechanics analysis. Next, the deformed models were extracted to construct the blood flow domain, and numerical simulations of the hemodynamics in these models were performed using the finite element method. The numerical results demonstrated that: (1) Compared with the L-stent and V-stent, the S-stent has a better flexibility and induces less stress in the stent strut. Furthermore, less stress is generated in the arterial wall. (2) Vascular straightening is scarcely influenced by the shape of the link, but it is closely related to the flexibility of the stent. (3) The S-stent has the smallest foreshortening among the three types of stents. (4) Compared with the V-stent and S-stent, the L-stent causes a smaller area with low wall shear stress, less blood stagnation area, and better blood flow close to the artery wall. From the viewpoint of the combination of solid mechanics and hemodynamics, the S-stent has better therapeutic effects because of its lower potential for inducing ISR and its better prospects in clinical applications compared with the L-stent and V-stent.
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April 2014
Research-Article
Numerical Simulation of Vertebral Artery Stenosis Treated With Different Stents
Aike Qiao,
Aike Qiao
1
Mem. ASME
College of Life Science and Bio-engineering,
e-mail: qak@bjut.edu.cn
College of Life Science and Bio-engineering,
Beijing University of Technology
,Beijing 100124
, China
e-mail: qak@bjut.edu.cn
1Corresponding author.
Search for other works by this author on:
Zhanzhu Zhang
Zhanzhu Zhang
College of Life Science and Bio-engineering,
e-mail: jsdxjwc@163.com
Beijing University of Technology
,Beijing 100124
, China
e-mail: jsdxjwc@163.com
Search for other works by this author on:
Aike Qiao
Mem. ASME
College of Life Science and Bio-engineering,
e-mail: qak@bjut.edu.cn
College of Life Science and Bio-engineering,
Beijing University of Technology
,Beijing 100124
, China
e-mail: qak@bjut.edu.cn
Zhanzhu Zhang
College of Life Science and Bio-engineering,
e-mail: jsdxjwc@163.com
Beijing University of Technology
,Beijing 100124
, China
e-mail: jsdxjwc@163.com
1Corresponding author.
Contributed by the Bioengineering Division of ASME for publication in the JOURNAL OF BIOMECHANICAL ENGINEERING. Manuscript received July 23, 2013; final manuscript received December 6, 2013; accepted manuscript posted December 12, 2013; published online March 24, 2014. Assoc. Editor: Dalin Tang.
J Biomech Eng. Apr 2014, 136(4): 041007 (9 pages)
Published Online: March 24, 2014
Article history
Received:
July 23, 2013
Revision Received:
December 6, 2013
Accepted:
December 12, 2013
Citation
Qiao, A., and Zhang, Z. (March 24, 2014). "Numerical Simulation of Vertebral Artery Stenosis Treated With Different Stents." ASME. J Biomech Eng. April 2014; 136(4): 041007. https://doi.org/10.1115/1.4026229
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