Literature DB >> 23864393

How preconditioning affects the measurement of poro-viscoelastic mechanical properties in biological tissues.

Sayyed Mohsen Hosseini1, Wouter Wilson, Keita Ito, Corrinus C van Donkelaar.   

Abstract

It is known that initial loading curves of soft biological tissues are substantially different from subsequent loadings. The later loading curves are generally used for assessing the mechanical properties of a tissue, and the first loading cycles, referred to as preconditioning, are omitted. However, slow viscoelastic phenomena related to fluid flow or collagen viscoelasticity are initiated during these first preconditioning loading cycles and may persist during the actual data collection. When these data are subsequently used for fitting of material properties, the viscoelastic phenomena that occurred during the initial cycles are not accounted for. The aim of the present study is to explore whether the above phenomena are significant for articular cartilage, by evaluating the effect of such time-dependent phenomena by means of computational modeling. Results show that under indentation, collagen viscoelasticity dominates the time-dependent behavior. Under UC, fluid-dependent effects are more important. Interestingly, viscoelastic and poroelastic effects may act in opposite directions and may cancel each other out in a stress-strain curve. Therefore, equilibrium may be apparent in a stress-strain relationship, even though internally the tissue is not in equilibrium. Also, the time-dependent effects of viscoelasticity and poroelasticity may reinforce each other, resulting in a sustained effect that lasts longer than suggested by their individual effects. Finally, the results illustrate that data collected from a mechanical test may depend on the preconditioning protocol. In conclusion, preconditioning influences the mechanical response of articular cartilage significantly and therefore cannot be neglected when determining the mechanical properties. To determine the full viscoelastic and poroelastic properties of articular cartilage requires fitting to both preconditioning and post-preconditioned loading cycles.

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Year:  2013        PMID: 23864393     DOI: 10.1007/s10237-013-0511-2

Source DB:  PubMed          Journal:  Biomech Model Mechanobiol        ISSN: 1617-7940


  3 in total

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2.  Mechanics of Porcine Heart Valves' Strut Chordae Tendineae Investigated as a Leaflet-Chordae-Papillary Muscle Entity.

Authors:  Colton J Ross; Devin W Laurence; Ming-Chen Hsu; Ryan Baumwart; Yan D Zhao; Arshid Mir; Harold M Burkhart; Gerhard A Holzapfel; Yi Wu; Chung-Hao Lee
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3.  An investigation of the anisotropic mechanical properties and anatomical structure of porcine atrioventricular heart valves.

Authors:  Samuel Jett; Devin Laurence; Robert Kunkel; Anju R Babu; Katherine Kramer; Ryan Baumwart; Rheal Towner; Yi Wu; Chung-Hao Lee
Journal:  J Mech Behav Biomed Mater       Date:  2018-07-18
  3 in total

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