| Literature DB >> 29358151 |
O Castillo-Cruz1, C Pérez-Aranda1, F Gamboa2, J V Cauich-Rodríguez3, D Mantovani4, F Avilés1.
Abstract
The circumferential compliance and burst strength of vascular grafts are predicted through the conically modified von Mises and elasticity theories, providing an analytical closed form solution for both parameters. Besides the graft's radii, the model for circumferential compliance depends solely on the elastic modulus and Poisson's ratio of the polymer material, and its accuracy was verified by finite element analysis and measurements. The analytical expression of the burst strength requires accurate determination of the material's tensile and compressive yield stress, which were carefully obtained by using digital image correlation measurements in uniaxial tensile and compressive tests of the constitutive material. The average measured circumferential compliance and burst strength of an 8mm graft made of a commonly used biomaterial, Tecoflex® SG-80A, are 1.05%/100mmHg-1 and 34.1psi (1763mmHg) and the proposed analytical predictions fall within the experimental scattering. Thus, it is shown that the circumferential compliance and burst strength of vascular grafts can be analytically predicted by knowing the elastic and yield material properties accurately, without needing to actually test the graft under radial pressure. This is a major advantage which can aid in the design and tailoring of vascular grafts.Entities:
Keywords: Burst strength; Circumferential compliance; Conically modified von Mises criteria; Elasticity theory; Predictive model; Thick-walled cylinders
Mesh:
Year: 2018 PMID: 29358151 DOI: 10.1016/j.jmbbm.2017.12.031
Source DB: PubMed Journal: J Mech Behav Biomed Mater ISSN: 1878-0180