4.5 Article

Deformation-induced hydrolysis of a degradable polymeric cylindrical annulus

Journal

BIOMECHANICS AND MODELING IN MECHANOBIOLOGY
Volume 9, Issue 2, Pages 177-186

Publisher

SPRINGER HEIDELBERG
DOI: 10.1007/s10237-009-0168-z

Keywords

Degradation; Scission; Strain-softening; Damage; Internal variable; Poly(lactic acid)

Funding

  1. Fundacao para a Ciencia e Tecnologia [SFRH/BD/17060/2004]
  2. National Institute of Health [R01 EB000115]
  3. National Science Foundation
  4. CEMAT of Instituto Superior Tecnico
  5. NATIONAL INSTITUTE OF BIOMEDICAL IMAGING AND BIOENGINEERING [R01EB000115] Funding Source: NIH RePORTER

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A thermodynamically consistent framework for describing the response of materials undergoing deformation-induced degradation is developed and applied to a particular biodegradable polymer system. In the current case, energy is dissipated through the mechanism of hydrolytic degradation and its effects are incorporated in the constitutive model by appropriately stipulating the forms for the rate of dissipation and for the degradation-dependent Helmholtz potential which changes with the extent of the degradation of the material. When degradation does not occur, the response of the material follows the response of a power-law generalized neo-Hookean material that fits the response of the non-degraded poly(l-lactic acid) under uniaxial extension. We study the inflation and extension of a degrading cylindrical annulus and the influence of the deformation on the mechanism of degradation and its consequent mechanical response. Depreciation of mechanical properties due to degradation confers time-dependent characteristics to the response of the biodegradable material: the material creeps when subjected to constant loads and stresses necessary to keep a fixed deformation relax.

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