Stent deployment has been widely used to treat narrowed coronary artery. Its acute outcome in terms of stent under expansion and malapposition depends on the extent and shape of calcifications. However, no clear understanding as to how to quantify or categorize the impact of calcification. We have conducted ex vivo stenting characterized by the optical coherence tomography (OCT). The goal of this work is to capture the ex vivo stent deployment and quantify the effect of calcium morphology on the stenting. A three dimensional model of calcified plaque was reconstructed from ex vivo OCT images. The crimping, balloon expansion and recoil process of the Express stent were characterized. Three cross-sections with different calcium percentages were chosen to evaluated the effect of the calcium in terms of stress/strain, lumen gains and malapposition. Results will be used to the pre-surgical planning.
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ASME 2017 International Mechanical Engineering Congress and Exposition
November 3–9, 2017
Tampa, Florida, USA
Conference Sponsors:
- ASME
ISBN:
978-0-7918-5836-3
PROCEEDINGS PAPER
OCT-Based Three Dimensional Modeling of Stent Deployment
Pengfei Dong,
Pengfei Dong
University of Nebraska-Lincoln, Lincoln, NE
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David Prabhu,
David Prabhu
Case Western Reserve University, Cleveland, OH
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David L. Wilson,
David L. Wilson
Case Western Reserve University, Cleveland, OH
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Hiram G. Bezerra,
Hiram G. Bezerra
UH Cleveland Medical Center, Cleveland, OH
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Linxia Gu
Linxia Gu
University of Nebraska-Lincoln, Lincoln, NE
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Pengfei Dong
University of Nebraska-Lincoln, Lincoln, NE
David Prabhu
Case Western Reserve University, Cleveland, OH
David L. Wilson
Case Western Reserve University, Cleveland, OH
Hiram G. Bezerra
UH Cleveland Medical Center, Cleveland, OH
Linxia Gu
University of Nebraska-Lincoln, Lincoln, NE
Paper No:
IMECE2017-72146, V003T04A029; 6 pages
Published Online:
January 10, 2018
Citation
Dong, P, Prabhu, D, Wilson, DL, Bezerra, HG, & Gu, L. "OCT-Based Three Dimensional Modeling of Stent Deployment." Proceedings of the ASME 2017 International Mechanical Engineering Congress and Exposition. Volume 3: Biomedical and Biotechnology Engineering. Tampa, Florida, USA. November 3–9, 2017. V003T04A029. ASME. https://doi.org/10.1115/IMECE2017-72146
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