Knowledge of the material properties of soft collagenous tissues, such as heart valves, aorta, and ligaments, is fundamental to the understanding of both normal function and disease states. Many studies have reported 1 or 2D material properties; however, there are very few published 3D studies. This lack of data severely hinders development and validation of 3D models. The objective of this proposed research is therefore to (i) develop 3D, anisotropic non-linear viscoelastic models, and (ii) a new experimental/analytical system for measuring 3D load-deformation behavior. 3D finite element models will be created to represent uniaxial, indentation, and shear tests (Specific Aim 1). A hyperelastic version of Fung's quasilinear viscoelasticity theory will be developed. Triaxial stress relaxation and creep tests will be performed using a novel technique for applying combined tension, compression, and shear loads (Specific Aim 2). During loading, high-resolution (appx. 15 pro), multiaxial, 3D video of specimen deformations will be obtained. Using these data, 3D material properties will then be estimated for the different constitutive models via inverse finite element methods with global optimization (Specific Aim 3). These models and data will provide new insights into the constitutive relationships for soft tissue mechanics, and will be of paramount value for the validation of finite element models of biological tissues, and ultimately for bioprosthetic heart valve design. ? ? ?

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Postdoctoral Individual National Research Service Award (F32)
Project #
1F32HL072598-01
Application #
6585034
Study Section
Special Emphasis Panel (ZRG1-F10 (20))
Program Officer
Commarato, Michael
Project Start
2003-02-03
Project End
2004-02-02
Budget Start
2003-02-03
Budget End
2004-02-02
Support Year
1
Fiscal Year
2003
Total Cost
$46,420
Indirect Cost
Name
Cleveland Clinic Lerner
Department
Type
DUNS #
017730458
City
Cleveland
State
OH
Country
United States
Zip Code
44195
Doehring, Todd C; Kahelin, Michael; Vesely, Ivan (2009) Direct measurement of nonuniform large deformations in soft tissues during uniaxial extension. J Biomech Eng 131:061001
Freed, Alan D; Doehring, Todd C (2005) Elastic model for crimped collagen fibrils. J Biomech Eng 127:587-93