Performance of a Nitinol Honeycomb Stent for the Management of Atherosclerotic Aortic Plaque: Crimping, Sealing, and Fluid-Structure Interaction Analysis

被引:1
作者
Jayendiran, Raja [1 ]
Nour, Bakr [2 ]
Ruimi, Annie [1 ]
机构
[1] Texas A&M Univ Qatar, Mech Engn Program, Doha, Qatar
[2] Weill Cornell Med Qatar, Div Gen Surg, Doha, Qatar
来源
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME | 2021年 / 88卷 / 03期
关键词
nitinol stent; superelasticity; crimping; sealing stress; plaque; fluid-structure interaction; wall shear stress; MECHANICAL-PROPERTIES; ARTERIAL-WALL; SHEAR-STRESS; MODEL; VULNERABILITY; RUPTURE; DESIGN; FLOW; ANGIOPLASTY; REPLACEMENT;
D O I
10.1115/1.4049139
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We present the results of a computational study to investigate the performance of a nitinol honeycomb stent used in the management of an aortic atherosclerotic plaque with 70% stenosis. Such is considered severe and is associated with a higher risk of cardiovascular death. Traditionally, plaque size, composition, shape, and location are thought as important factors in determining the potential for the plaque to rupture (aka plaque vulnerability). The study looks at two plaque shapes and two plaque compositions. The stent used in the simulations is our own design. It compresses and expands due to nitinol's superelastic property. The human aorta is represented by the Gasser-Ogden-Holzapfel (GOH) model, a sophisticated hyperelastic model which accounts for the dispersion of fibers present in the tissues. We proceed to investigate how the stent-aorta-plaque structure behaves under a physiological blood flow. Results indicate that the stent as designed can sustain realistic blood flow conditions and that hypocellular plaques are more prone to rupture, in agreement with results published in the literature. It also shows that neither plaque composition nor shape affect the wall shear stress (WSS). This study can be useful to surgeons to identify regions of stenotic aorta subjected to high stress, to select the appropriate stent diameter for aortae with plaques with various compositions and plaque shapes, and to decide on the optimal site for stent implantation.
引用
收藏
页数:11
相关论文
共 67 条
  • [1] Akhter S, 2012, NIRMA UNIV INT CONF
  • [2] Aortic dissection simulation models for clinical support: fluid-structure interaction vs. rigid wall models
    Alimohammadi, Mona
    Sherwood, Joseph M.
    Karimpour, Morad
    Agu, Obiekezie
    Balabani, Stavroula
    Diaz-Zuccarini, Vanessa
    [J]. BIOMEDICAL ENGINEERING ONLINE, 2015, 14
  • [3] A three-layer model for buckling of a human aortic segment under specific flow-pressure conditions
    Amabili, M.
    Karazis, K.
    Mongrain, R.
    Paidoussis, M. P.
    Cartier, R.
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN BIOMEDICAL ENGINEERING, 2012, 28 (05) : 495 - 512
  • [4] Nonlinear Dynamics of Human Aortas for Material Characterization
    Amabili, Marco
    Balasubramanian, Prabakaran
    Bozzo, Isabella
    Breslavskyi, Ivan
    Ferrari, Giovanni
    Franchini, Giulio
    Giovanniello, Francesco
    Pogue, Chloe
    [J]. PHYSICAL REVIEW X, 2020, 10 (01)
  • [5] Layer-specific hyperelastic and viscoelastic characterization of human descending thoracic aortas
    Amabili, Marco
    Balasubramanian, Prabakaran
    Bozzo, Isabella
    Breslaysky, Ivan D.
    Ferrari, Giovanni
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2019, 99 : 27 - 46
  • [6] [Anonymous], 2013, AN US MAN
  • [7] Anisotropic fractional viscoelastic constitutive models for human descending thoracic aortas
    Arnabili, Marco
    Balasubramanian, Prabakaran
    Breslaysky, Ivan
    [J]. JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2019, 99 : 186 - 197
  • [8] Shape-memory alloys: Macromodelling and numerical simulations of the superelastic behavior
    Auricchio, F
    Taylor, RL
    Lubliner, J
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1997, 146 (3-4) : 281 - 312
  • [9] Deployment of a self-expanding stent inside an artery: A finite element analysis
    Azaouzi, M.
    Makradi, A.
    Belouettar, S.
    [J]. MATERIALS & DESIGN, 2012, 41 : 410 - 420
  • [10] Basser PJ, 2000, MAGNET RESON MED, V44, P625, DOI 10.1002/1522-2594(200010)44:4<625::AID-MRM17>3.0.CO