A Nonlinear Biphasic Fiber-Reinforced Porohyperviscoelastic Model of Soft Hydrated Tissue

Publish Year: 1395
نوع سند: مقاله کنفرانسی
زبان: English
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شناسه ملی سند علمی:

NCOFME09_095

تاریخ نمایه سازی: 29 مهر 1396

Abstract:

A nonlinear biphasic fiber-reinforced porohyperviscoelastic (BFPHVE) model of articular cartilage incorporating fiber reorientation effects during applied load was used to predict the response of ovine articular cartilage at relatively high strains(20%). The constitutive material parameters were determined using a coupled finite element-optimization algorithm that utilized stress relaxation indentation tests at relatively high strains. The proposed model incorporates the strainhardening,tension-compression, permeability, and finite deformation nonlinearities that inherently exist in cartilage, and accounts for effects associated with fiber dispersion and reorientation and intrinsic viscoelasticity at relatively high strains. The optimized material parameters were found to be insensitive to the initial guesses. Using experimental data from the literature, the model wasalso able to predict both the lateral displacement and reaction force in unconfined compression, and the reaction force in an indentation test with a single set of material parameters. There was an indication that the proposed BFPHVE model, which includes the intrinsic viscoelasticity of the nonfibrillar matrix (proteoglycan), might be used to model the behavior of cartilage up to relativelyhigh strains (20%). The maximum percentage error between the indentation force predicted by the FE model using the optimized material parameters and that measured experimentally was 3%.

Authors

A. Seifzadeh

Assistant Professor, Islamic Azad university, khomeinisahr Branch, Esfahan, Iran.

M. Mahdian

PhD. Candidate, Islamic Azad university, khomeinisahr Branch, Esfahan, Iran.