Literature DB >> 19449960

Comparison of near-wall hemodynamic parameters in stented artery models.

Nandini Duraiswamy1, Richard T Schoephoerster, James E Moore.   

Abstract

Four commercially available stent designs (two balloon expandable-Bx Velocity and NIR, and two self-expanding-Wallstent and Aurora) were modeled to compare the near-wall flow characteristics of stented arteries using computational fluid dynamics simulations under pulsatile flow conditions. A flat rectangular stented vessel model was constructed and simulations were carried out using rigid walls and sinusoidal velocity input (nominal wall shear stress of 10+/-5 dyn/cm2). Mesh independence was determined from convergence (<10%) of the axial wall shear stress (WSS) along the length of the stented model. The flow disturbance was characterized and quantified by the distributions of axial and transverse WSS, WSS gradients, and flow separation parameters. Normalized time-averaged effective WSS during the flow cycle was the smallest for the Wallstent (2.9 dyn/cm2) compared with the others (5.8 dyn/cm2 for the Bx Velocity stent, 5.0 dyn/cm2 for the Aurora stent, and 5.3 dyn/cm2 for the NIR stent). Regions of low mean WSS (<5 dyn/cm2) and elevated WSS gradients (>20 dyn/cm3) were also the largest for the Wallstent compared with the others. WSS gradients were the largest near the struts and remained distinctly nonzero for most of the region between the struts for all stent designs. Fully recirculating regions (as determined by separation parameter) were the largest for the Bx Velocity stent compared with the others. The most hemodynamically favorable stents from our computational analysis were the Bx Velocity and NIR stents, which were slotted-tube balloon-expandable designs. Since clinical data indicate lower restenosis rates for the Bx Velocity and NIR stents compared with the Wallstent, our data suggest that near-wall hemodynamics may predict some aspects of in vivo performance. Further consideration of biomechanics, including solid mechanics, in stent design is warranted.

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Year:  2009        PMID: 19449960      PMCID: PMC2767376          DOI: 10.1115/1.3118764

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  28 in total

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8.  Restenosis after coronary placement of various stent types.

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3.  Establishment of an Automated Algorithm Utilizing Optical Coherence Tomography and Micro-Computed Tomography Imaging to Reconstruct the 3-D Deformed Stent Geometry.

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4.  In vitro hemocompatibility of thin film nitinol in stenotic flow conditions.

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5.  Quantification of local hemodynamic alterations caused by virtual implantation of three commercially available stents for the treatment of aortic coarctation.

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7.  Hemodynamics in Idealized Stented Coronary Arteries: Important Stent Design Considerations.

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8.  Constraining OCT with Knowledge of Device Design Enables High Accuracy Hemodynamic Assessment of Endovascular Implants.

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Review 9.  Computational medical imaging and hemodynamics framework for functional analysis and assessment of cardiovascular structures.

Authors:  Kelvin K L Wong; Defeng Wang; Jacky K L Ko; Jagannath Mazumdar; Thu-Thao Le; Dhanjoo Ghista
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  9 in total

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