Literature DB >> 17408320

A biphasic model for micro-indentation of a hydrogel-based contact lens.

Xiaoming Chen1, Alison C Dunn, W Gregory Sawyer, Malisa Sarntinoranont.   

Abstract

The stiffness and hydraulic permeability of soft contact lenses may influence its clinical performance, e.g., on-eye movement, fitting, and wettability, and may be related to the occurrence of complications; e.g., lesions. It is therefore important to determine these properties in the design of comfortable contact lenses. Micro-indentation provides a nondestructive means of measuring mechanical properties of soft, hydrated contact lenses. However, certain geometrical and material considerations must be taken into account when analyzing output force-displacement (F-D) data. Rather than solely having a solid response, mechanical behavior of hydrogel contact lenses can be described as the coupled interaction between fluid transport through pores and solid matrix deformation. In addition, indentation of thin membranes ( approximately 100 microm) requires special consideration of boundary conditions at lens surfaces and at the indenter contact region. In this study, a biphasic finite element model was developed to simulate the micro-indentation of a hydrogel contact lens. The model accounts for a curved, thin hydrogel membrane supported on an impermeable mold. A time-varying boundary condition was implemented to model the contact interface between the impermeable spherical indenter and the lens. Parametric studies varying the indentation velocities and hydraulic permeability show F-D curves have a sensitive region outside of which the force response reaches asymptotic limits governed by either the solid matrix (slow indentation velocity, large permeability) or the fluid transport (high indentation velocity, low permeability). Using these results, biphasic properties (Young's modulus and hydraulic permeability) were estimated by fitting model results to F-D curves obtained at multiple indentation velocities (1.2 and 20 microm/s). Fitting to micro-indentation tests of Etafilcon A resulted in an estimated permeability range of 1.0 x 10(-15) to 5.0 x 10(-15) m(4)N s and Young's modulus range of 130 to 170 kPa.

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Year:  2007        PMID: 17408320     DOI: 10.1115/1.2472373

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  7 in total

1.  Quantifying Cartilage Contact Modulus, Tension Modulus, and Permeability With Hertzian Biphasic Creep.

Authors:  A C Moore; J F DeLucca; D M Elliott; D L Burris
Journal:  J Tribol       Date:  2016-07-26       Impact factor: 2.045

2.  Voxelized model of interstitial transport in the rat spinal cord following direct infusion into white matter.

Authors:  Jung Hwan Kim; Garrett W Astary; Xiaoming Chen; Thomas H Mareci; Malisa Sarntinoranont
Journal:  J Biomech Eng       Date:  2009-07       Impact factor: 2.097

3.  Indentation Analysis of Biphasic Viscoelastic Hydrogels.

Authors:  K S Toohey; S Kalyanam; J Palaniappan; M F Insana
Journal:  Mech Mater       Date:  2016-01-01       Impact factor: 3.266

4.  An analytical model to predict interstitial lubrication of cartilage in migrating contact areas.

Authors:  A C Moore; D L Burris
Journal:  J Biomech       Date:  2013-10-31       Impact factor: 2.712

5.  A Hybrid Biphasic Mixture Formulation for Modeling Dynamics in Porous Deformable Biological Tissues.

Authors:  Jay J Shim; Gerard A Ateshian
Journal:  Arch Appl Mech       Date:  2021-01-07       Impact factor: 1.976

6.  Finite Element Implementation of Biphasic-Fluid Structure Interactions in febio.

Authors:  Jay J Shim; Steve A Maas; Jeffrey A Weiss; Gerard A Ateshian
Journal:  J Biomech Eng       Date:  2021-09-01       Impact factor: 1.899

7.  A new framework for characterization of poroelastic materials using indentation.

Authors:  Mohammad Hadi Esteki; Ali Akbar Alemrajabi; Chloe M Hall; Graham K Sheridan; Mojtaba Azadi; Emad Moeendarbary
Journal:  Acta Biomater       Date:  2019-11-09       Impact factor: 8.947

  7 in total

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