All issues
- 2024 Vol. 16
- 2023 Vol. 15
- 2022 Vol. 14
- 2021 Vol. 13
- 2020 Vol. 12
- 2019 Vol. 11
- 2018 Vol. 10
- 2017 Vol. 9
- 2016 Vol. 8
- 2015 Vol. 7
- 2014 Vol. 6
- 2013 Vol. 5
- 2012 Vol. 4
- 2011 Vol. 3
- 2010 Vol. 2
- 2009 Vol. 1
Choice of design of transcatheter aortic valve prosthesis frame based on finite element analysis
pdf (4899K)
/ Annotation
List of references:
- Возможности мскт-ангиографии в морфометрии корня аорты // Лучевая диагностика и терапия. — 2012. — № 2. — С. 73–79. , , , .
- Способы оптимизации геометрии ячейки каркаса самораскрывающегося протеза клапана аорты // Технологии живых систем. — 2014. — Т. 11, № 3. — С. 39–45. , , .
- Анатомическое обоснование трехмерных моделей корня аорты человека // Клиническая физиология кровообращения. — 2013. — № 2. — С. 12–20. , , , , .
- Нелинейная изотропная модель корня аорты человека // Технологии живых систем. — 2014. — № 6. — С. 43–47. , , , , .
- Shape-Memory Alloys: Macromodeling and Numerical Simulations of the Superelastic Behavior // Computer Methods in Applied Mechanics and Engineering. — 1997. — V. 146. — P. 281. — DOI: 10.1016/S0045-7825(96)01232-7. — ads: 1997CMAME.146..281A. , , .
- Shape-Memory Alloys: Modeling and Numerical Simulations of the Finite-Strain Superelastic Behavior // Computer Methods in Applied Mechanics and Engineering. — 1996. — V. 143. — P. 175–194. — DOI: 10.1016/S0045-7825(96)01147-4. — ads: 1997CMAME.143..175A. , .
- Deployment of selfexpandable stents in aneurysmatic cerebral vessels: comparison of different computational approaches for interventional planning // Computer Methods in Biomechanics and Biomedical Engineering. — 2011. — V. 15, no. 3. — P. 303–311. — DOI: 10.1080/10255842.2010.527838. , , , , , , .
- Transcatheter heart-valve replacement: update // Canadian Medical Association Journal. — 2010. — V. 182. — P. 791–795. — DOI: 10.1503/cmaj.080064. , , , .
- Deformation dynamics and mechanical properties of the aortic annulus by 4-dimensional computed tomography: insights into the functional anatomy of the aortic valve complex and implications for transcatheter aortic valve therapy // Journal of the American College of Cardiology. — 2012. — V. 59, no. 2. — P. 119–127. — DOI: 10.1016/j.jacc.2011.09.045. , , , , , , , , , , .
- Modeling collagen recruitment in hyperelastic biomaterial models with statistical distribution of the fiber orientation // International Journal of Engineering Science. — 2014. — V. 78. — P. 48–60. — DOI: 10.1016/j.ijengsci.2014.02.008. — MathSciNet: MR3182910. , , .
- Fast virtual deployment of self-expandable stents: Method and in vitro evaluation for intracranial aneurismal stenting // Medical Image Analysis. — 2012. — V. 16, no. 3. — P. 721–730. — DOI: 10.1016/j.media.2010.04.009. , , , , , .
- Automatic 4D Reconstruction of Patient-Specific Cardiac Mesh with 1-to-1 Vertex Correspondence from Segmented Contours Lines // PLoS One. — 2014. — V. 9, no. 4. — P. 117–121. , , , , , , , , .
- Patient-specific modelling of whole heart anatomy, dynamics and haemodynamics from four-dimensional cardiac CT images // Interface Focus. — 2011. — V. 6, no. 3. — P. 286–296. — DOI: 10.1098/rsfs.2010.0036. , , .
- A novel simulation strategy for stent insertion and deployment in curved coronary bifurcations: comparison of three drug-eluting stents // Annals of Biomedical Engineering. — 2010. — V. 38, no. 1. — P. 88–99. — DOI: 10.1007/s10439-009-9836-5. , , , , , , , .
- Quantification of biomechanical interaction of transcatheter aortic valve stent deployed in porcine and ovine hearts // Annals of Biomedical Engineering. — 2013. — V. 41, no. 3. — P. 577–586. — DOI: 10.1007/s10439-012-0694-1. , , .
- Computer-aided design of the human aortic root // Computers in Biology and Medicine. — 2014. — V. 54, no. 1. — P. 109–115. — DOI: 10.1016/j.compbiomed.2014.08.023. , , , , , , , .
- Large-displacement 3D structural analysis of an aortic valve model with nonlinear material properties // Journal of Medical Engineering & Technology. — 2004. — V. 28, no. 3. — P. 95–103. — DOI: 10.1080/0309190042000193847. , , , , .
- Transcatheter aortic valve replacement: current developments, ongoing issues, future outlook // Cardiology in Review. — 2013. — V. 21, no. 2. — P. 55–76. — DOI: 10.1097/CRD.0b013e318283bb3d. , , , , , , .
- Percutaneous mitral valve dilatation: single balloon versus double balloon. A finite element study // The Journal of Heart Valve Disease. — 2009. — V. 18, no. 1. — P. 28–34. , , .
- Finite element analysis of stent deployment: understanding stent fracture in percutaneous pulmonary valve implantation // Journal of Interventional Cardiology. — 2007. — V. 20, no. 6. — P. 546–554. — DOI: 10.1111/j.1540-8183.2007.00294.x. , , .
- Three-dimensional printing of models for preoperative planning and simulation of transcatheter valve replacement // The Annals of Thoracic Surgery. — 2012. — V. 93, no. 2. — P. 31–33. — DOI: 10.1016/j.athoracsur.2011.09.031. , , .
- Simulation and experimental observation of contact conditions between stents and artery models // Medical Engineering & Physics. — 2007. — V. 29, no. 3. — P. 326–335. — DOI: 10.1016/j.medengphy.2006.04.003. , , , .
- Numerical analysis of the radial force produced by the Medtronic-CoreValve and Edwards-SAPIEN after transcatheter aortic valve implantation (TAVI) // Medical Engineering & Physics. — 2013. — V. 35, no. 1. — P. 125–130. — DOI: 10.1016/j.medengphy.2012.04.009. , , , , .
Indexed in Scopus
Full-text version of the journal is also available on the web site of the scientific electronic library eLIBRARY.RU
The journal is included in the Russian Science Citation Index
The journal is included in the RSCI
International Interdisciplinary Conference "Mathematics. Computing. Education"
Copyright © 2009–2024 Institute of Computer Science