Literature DB >> 17136596

Elastic and rupture properties of porcine aortic tissue measured using inflation testing.

Steven P Marra1, Francis E Kennedy, Jeffrey N Kinkaid, Mark F Fillinger.   

Abstract

A new inflation test device was developed to study the mechanical properties of aortic tissue. The device was used to measure failure (rupture) strength and to determine the nonlinear, anisotropic elastic properties of porcine thoracic aorta. The tester was designed to stretch initially flat, circular tissue specimens to rupture under uniform biaxial loading. Water was chosen as the pressurizing fluid. Mechanical stretch and radius of curvature during inflation were measured optically in two orthogonal directions, and the Cauchy stress components were calculated from the deformation and the applied pressure. All porcine samples that ruptured successfully did so via a tear in the circumferential direction. Thus, the failure strength was taken to be the stress in the axial direction immediately prior to rupture. The mean failure strength was 1.75 MPa and mean axial stretch at failure was 1.52. These values agree well with published data for other arterial tissues. The nonlinearly elastic deformation behavior was modeled using a hyperelastic constitutive law of the type proposed by Holzapfel et al. [Holzapfel GA, Gasser TC, Ogden RW. J Elasticity 2000;61:1-48]. The results showed that the dominant directions of anisotropy in the porcine aortas were approximately 45 degrees to the axial and circumferential directions, and that the isotropic contribution to the constitutive model was insignificant.

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Year:  2006        PMID: 17136596     DOI: 10.1007/s10558-006-9021-5

Source DB:  PubMed          Journal:  Cardiovasc Eng        ISSN: 1567-8822


  9 in total

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Authors:  Spandan Maiti; James R Thunes; Ronald N Fortunato; Thomas G Gleason; David A Vorp
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5.  Characterization of human female breast and abdominal skin elasticity using a bulge test.

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Journal:  J Mech Behav Biomed Mater       Date:  2019-12-26

6.  Fluid-structure interaction modeling of aneurysmal arteries under steady-state and pulsatile blood flow: a stability analysis.

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7.  The functional limits of the aneurysmal aortic root. A unique pressure testing apparatus.

Authors:  Timothy Luke Surman; John Matthew Abrahams; Dermot O'Rourke; Karen Jane Reynolds; James Edwards; Michael George Worthington; John Beltrame
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8.  Novel biaxial tensile test for studying aortic failure phenomena at a microscopic level.

Authors:  Shukei Sugita; Takeo Matsumoto
Journal:  Biomed Eng Online       Date:  2013-01-11       Impact factor: 2.819

Review 9.  Biomechanical evaluation of ascending aortic aneurysms.

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Journal:  Biomed Res Int       Date:  2014-06-04       Impact factor: 3.411

  9 in total

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