In order to evaluate the performance of stents used in transcatheter aortic valve implantation (TAVI), finite element simulations are setup to reconstruct patient-specific contact forces between implant and its surrounding tissue. Previous work used structural beam elements to setup a numerical model of the CoreValve stent used in TAVI and developed a procedure for implementing kinematic boundary conditions from noisy computer tomography (CT) scanning data. This study evaluates element size selection and quantitatively investigates the choice of a linear elastic constitutive model for the Nitinol stent under physiological loading conditions. It is shown that this simplification leads to reliable results and enables a huge reduction in computation time. Further, the procedure used to compensate for noisy postoperative CT data is tested by adding artificial noise. It is concluded that for physiologically relevant loading ranges, the procedure yields convergent results and successfully eliminates the influence of the noise.
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June 2017
Research-Article
Finite Element Stent Modeling for the Postoperative Analysis of Transcatheter Aortic Valve Implantation
Raoul Hopf,
Raoul Hopf
Institute of Mechanical Systems,
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland
e-mail: rhopf@ethz.ch
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland
e-mail: rhopf@ethz.ch
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Michael Gessat,
Michael Gessat
Hybrid Laboratory for Cardiovascular
Technologies,
Division of Cardiovascular Surgery,
University Hospital Zurich,
Zurich 8091, Switzerland;
Technologies,
Division of Cardiovascular Surgery,
University Hospital Zurich,
Zurich 8091, Switzerland;
Computer Vision Laboratory,
ETH Zurich,
Zurich 8092, Switzerland
ETH Zurich,
Zurich 8092, Switzerland
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Christoph Russ,
Christoph Russ
Computer Vision Laboratory,
ETH Zurich,
Zurich 8092, Switzerland
ETH Zurich,
Zurich 8092, Switzerland
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Simon H. Sündermann,
Simon H. Sündermann
Klinik für Herz-Thorax-Gefässchirurgie,
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
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Volkmar Falk,
Volkmar Falk
Klinik für Herz-Thorax-Gefässchirurgie,
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
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Edoardo Mazza
Edoardo Mazza
Institute of Mechanical Systems,
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland;
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland;
Swiss Federal Laboratories
for Materials Testing and Research,
EMPA,
Dübendorf 8600, Switzerland
for Materials Testing and Research,
EMPA,
Dübendorf 8600, Switzerland
Search for other works by this author on:
Raoul Hopf
Institute of Mechanical Systems,
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland
e-mail: rhopf@ethz.ch
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland
e-mail: rhopf@ethz.ch
Michael Gessat
Hybrid Laboratory for Cardiovascular
Technologies,
Division of Cardiovascular Surgery,
University Hospital Zurich,
Zurich 8091, Switzerland;
Technologies,
Division of Cardiovascular Surgery,
University Hospital Zurich,
Zurich 8091, Switzerland;
Computer Vision Laboratory,
ETH Zurich,
Zurich 8092, Switzerland
ETH Zurich,
Zurich 8092, Switzerland
Christoph Russ
Computer Vision Laboratory,
ETH Zurich,
Zurich 8092, Switzerland
ETH Zurich,
Zurich 8092, Switzerland
Simon H. Sündermann
Klinik für Herz-Thorax-Gefässchirurgie,
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Volkmar Falk
Klinik für Herz-Thorax-Gefässchirurgie,
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Deutsches Herzzentrum Berlin,
Berlin 13353, Germany
Edoardo Mazza
Institute of Mechanical Systems,
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland;
Department of Mechanical Engineering,
ETH Zurich,
Zurich 8012, Switzerland;
Swiss Federal Laboratories
for Materials Testing and Research,
EMPA,
Dübendorf 8600, Switzerland
for Materials Testing and Research,
EMPA,
Dübendorf 8600, Switzerland
1Corresponding author.
Manuscript received June 23, 2016; final manuscript received February 22, 2017; published online May 3, 2017. Assoc. Editor: Marc Horner.
J. Med. Devices. Jun 2017, 11(2): 021002 (7 pages)
Published Online: May 3, 2017
Article history
Received:
June 23, 2016
Revised:
February 22, 2017
Citation
Hopf, R., Gessat, M., Russ, C., Sündermann, S. H., Falk, V., and Mazza, E. (May 3, 2017). "Finite Element Stent Modeling for the Postoperative Analysis of Transcatheter Aortic Valve Implantation." ASME. J. Med. Devices. June 2017; 11(2): 021002. https://doi.org/10.1115/1.4036334
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