Literature DB >> 17089074

An experimentally derived stress resultant shell model for heart valve dynamic simulations.

Hyunggun Kim1, Krishnan B Chandran, Michael S Sacks, Jia Lu.   

Abstract

In order to achieve a more realistic and accurate computational simulation of native and bioprosthetic heart valve dynamics, a finite shell element model was developed. Experimentally derived and uncoupled in-plane and bending behaviors were implemented into a fully nonlinear stress resultant shell element. Validation studies compared the planar biaxial extension and three-point bending simulations to the experimental data and demonstrated excellent fidelity. Dynamic simulations of a pericardial bioprosthetic heart valve with the developed shell element model showed significant differences in the deformation characteristics compared to the simulation with an assumed isotropic bending model. The new finite shell element model developed in the present study can also incorporate various types of constitutive models and is expected to help us to understand the complex dynamics of native and bioprosthetic heart valve function in physiological and pathological conditions.

Mesh:

Year:  2006        PMID: 17089074     DOI: 10.1007/s10439-006-9203-8

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  20 in total

1.  Flow interactions with cells and tissues: cardiovascular flows and fluid-structure interactions. Sixth International Bio-Fluid Mechanics Symposium and Workshop, March 28-30, 2008, Pasadena, California.

Authors:  Morton H Friedman; Rob Krams; Krishnan B Chandran
Journal:  Ann Biomed Eng       Date:  2010-03       Impact factor: 3.934

Review 2.  Heart valve function: a biomechanical perspective.

Authors:  Michael S Sacks; Ajit P Yoganathan
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2007-08-29       Impact factor: 6.237

3.  The effect of patient-specific annular motion on dynamic simulation of mitral valve function.

Authors:  Yonghoon Rim; David D McPherson; Krishnan B Chandran; Hyunggun Kim
Journal:  J Biomech       Date:  2013-02-20       Impact factor: 2.712

4.  Effect of Geometry on the Leaflet Stresses in Simulated Models of Congenital Bicuspid Aortic Valves.

Authors:  Paul N Jermihov; Lu Jia; Michael S Sacks; Robert C Gorman; Joseph H Gorman; Krishnan B Chandran
Journal:  Cardiovasc Eng Technol       Date:  2011-03       Impact factor: 2.495

5.  Dynamic and fluid-structure interaction simulations of bioprosthetic heart valves using parametric design with T-splines and Fung-type material models.

Authors:  Ming-Chen Hsu; David Kamensky; Fei Xu; Josef Kiendl; Chenglong Wang; Michael C H Wu; Joshua Mineroff; Alessandro Reali; Yuri Bazilevs; Michael S Sacks
Journal:  Comput Mech       Date:  2015-06       Impact factor: 4.014

6.  Computational model of aortic valve surgical repair using grafted pericardium.

Authors:  Peter E Hammer; Peter C Chen; Pedro J del Nido; Robert D Howe
Journal:  J Biomech       Date:  2012-02-16       Impact factor: 2.712

7.  Mitral valve function following ischemic cardiomyopathy: a biomechanical perspective.

Authors:  Yonghoon Rim; David D McPherson; Hyunggun Kim
Journal:  Biomed Mater Eng       Date:  2014       Impact factor: 1.300

8.  Patient-specific wall stress analysis in cerebral aneurysms using inverse shell model.

Authors:  Xianlian Zhou; Madhavan L Raghavan; Robert E Harbaugh; Jia Lu
Journal:  Ann Biomed Eng       Date:  2009-11-21       Impact factor: 3.934

9.  Isogeometric Kirchhoff-Love shell formulations for biological membranes.

Authors:  Adrián Buganza Tepole; Hardik Kabaria; Kai-Uwe Bletzinger; Ellen Kuhl
Journal:  Comput Methods Appl Mech Eng       Date:  2015-08-15       Impact factor: 6.756

Review 10.  Biomechanical Behavior of Bioprosthetic Heart Valve Heterograft Tissues: Characterization, Simulation, and Performance.

Authors:  Joao S Soares; Kristen R Feaver; Will Zhang; David Kamensky; Ankush Aggarwal; Michael S Sacks
Journal:  Cardiovasc Eng Technol       Date:  2016-08-09       Impact factor: 2.495

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