Biomechanical Modeling of Refractive Corneal Surgery
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- 23 August 2005
- journal article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 128 (1) , 150-160
- https://doi.org/10.1115/1.2132368
Abstract
The aim of refractive corneal surgery is to modify the curvature of the cornea to improve its dioptric properties. With that goal, the surgeon has to define the appropriate values of the surgical parameters in order to get the best clinical results, i.e., laser and geometric parameters such as depth and location of the incision, for each specific patient. A biomechanical study before surgery is therefore very convenient to assess quantitatively the effect of each parameter on the optical outcome. A mechanical model of the human cornea is here proposed and implemented under a finite element context to simulate the effects of some usual surgical procedures, such as photorefractive keratectomy (PRK), and limbal relaxing incisions (LRI). This model considers a nonlinear anisotropic hyperelastic behavior of the cornea that strongly depends on the physiological collagen fibril distribution. We evaluate the effect of the incision variables on the change of curvature of the cornea to correct myopia and astigmatism. The obtained results provided reasonable and useful information in the procedures analyzed. We can conclude from those results that this model reasonably approximates the corneal response to increasing pressure. We also show that tonometry measures of the IOP, underpredicts its actual value after PRK or LASIK surgery.Keywords
This publication has 29 references indexed in Scilit:
- X-Ray Scattering Used to Map the Preferred Collagen Orientation in the Human Cornea and LimbusStructure, 2004
- Subject‐specific finite element analysis of the human medial collateral ligament during valgus knee loadingJournal of Orthopaedic Research, 2003
- Consistent tangent operators for rate-independent elastoplasticityPublished by Elsevier ,2003
- A formulation of elasticity and viscoelasticity for fibre reinforced material at small and finite strainsComputer Methods in Applied Mechanics and Engineering, 2000
- Finite element implementation of incompressible, transversely isotropic hyperelasticityComputer Methods in Applied Mechanics and Engineering, 1996
- Three-dimensional incompressible viscoelasticity in large strains: Formulation and numerical approximationComputer Methods in Applied Mechanics and Engineering, 1993
- Strip Extensiometry for Comparison of the Mechanical Response of Bovine, Rabbit, and Human CorneasJournal of Biomechanical Engineering, 1992
- A microstructurally-based finite element model of the incised human corneaJournal of Biomechanics, 1991
- Computer simulation of arcuate and radial incisions involving the corneoscleral limbusEye, 1989
- Consistent linearization in mechanics of solids and structuresComputers & Structures, 1978