A Three-Dimensional Finite Element Method for Large Elastic Deformations of Ventricular Myocardium: I—Cylindrical and Spherical Polar Coordinates

Author:

Costa K. D.1,Hunter P. J.2,Rogers J. M.3,Guccione J. M.4,Waldman L. K.5,McCulloch A. D.1

Affiliation:

1. Department of Bioengineering, University of California San Diego, La Jolla, CA

2. Department of Engineering Science, University of Auckland, Auckland, New Zealand

3. Department of Medicine, University of Alabama at Birmingham, Birmingham, AL

4. Department of Mechanical Engineering, Washington University, St. Louis, MI

5. Department of Medicine, University of California San Diego, La Jolla, CA

Abstract

A three-dimensional Galerkin finite element method was developed for large deformations of ventricular myocardium and other incompressible, nonlinear elastic, anisotropic materials. Cylindrical and spherical elements were used to solve axisymmetric problems with r.m.s. errors typically less than 2 percent. Isochoric interpolation and pressure boundary constraint equations enhanced low-order curvilinear elements under special circumstances (69 percent savings in degrees of freedom, 78 percent savings in solution time for inflation of a thick-walled cylinder). Generalized tensor products of linear Lagrange and cubic Hermite polynomials permitted custom elements with improved performance, including 52 percent savings in degrees of freedom and 66 percent savings in solution time for compression of a circular disk. Such computational efficiencies become significant for large scale problems such as modeling the heart.

Publisher

ASME International

Subject

Physiology (medical),Biomedical Engineering

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