Literature DB >> 26861803

Computing the stresses and deformations of the human eye components due to a high explosive detonation using fluid-structure interaction model.

Alireza Karimi1, Reza Razaghi2, Mahdi Navidbakhsh2, Toshihiro Sera3, Susumu Kudo3.   

Abstract

INTRODUCTION: In spite the fact that a very small human body surface area is comprised by the eye, its wounds due to detonation have recently been dramatically amplified. Although many efforts have been devoted to measure injury of the globe, there is still a lack of knowledge on the injury mechanism due to Primary Blast Wave (PBW). The goal of this study was to determine the stresses and deformations of the human eye components, including the cornea, aqueous, iris, ciliary body, lens, vitreous, retina, sclera, optic nerve, and muscles, attributed to PBW induced by trinitrotoluene (TNT) explosion via a Lagrangian-Eulerian computational coupling model.
MATERIALS AND METHODS: Magnetic Resonance Imaging (MRI) was employed to establish a Finite Element (FE) model of the human eye according to a normal human eye. The solid components of the eye were modelled as Lagrangian mesh, while an explosive TNT, air domain, and aqueous were modelled using Arbitrary Lagrangian-Eulerian (ALE) mesh. Nonlinear dynamic FE simulations were accomplished using the explicit FE code, namely LS-DYNA. In order to simulate the blast wave generation, propagation, and interaction with the eye, the ALE formulation with Jones-Wilkins-Lee (JWL) equation defining the explosive material were employed.
RESULTS: The results revealed a peak stress of 135.70kPa brought about by detonation upsurge on the cornea at the distance of 25cm. The highest von Mises stresses were observed on the sclera (267.3kPa), whereas the lowest one was seen on the vitreous body (0.002kPa). The results also showed a relatively high resultant displacement for the macula as well as a high variation for the radius of curvature for the cornea and lens, which can result in both macular holes, optic nerve damage and, consequently, vision loss.
CONCLUSION: These results may have implications not only for understanding the value of stresses and strains in the human eye components but also giving an outlook about the process of PBW triggers damage to the eye.
Copyright © 2016 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Detonation; Dynamic finite element; Finite element modelling; Fluid–structure interaction; Human eye; Injury

Mesh:

Year:  2016        PMID: 26861803     DOI: 10.1016/j.injury.2016.01.030

Source DB:  PubMed          Journal:  Injury        ISSN: 0020-1383            Impact factor:   2.586


  3 in total

1.  Ocular biomechanics during improvised explosive device blast: A computational study using eye-specific models.

Authors:  Alireza Karimi; Reza Razaghi; Christopher A Girkin; J Crawford Downs
Journal:  Injury       Date:  2022-02-05       Impact factor: 2.586

2.  Computational Modeling of Ophthalmic Procedures: Computational Modeling of Ophthalmic Procedures.

Authors:  William J Foster; Brian W Berg; Steven N Luminais; Amir Hadayer; Shlomit Schaal
Journal:  Am J Ophthalmol       Date:  2022-03-28       Impact factor: 5.488

3.  Better Visual Outcome by Intraocular Lens Ejection in Geriatric Patients with Ruptured Ocular Injuries.

Authors:  Hiroki Kaneko; Tetsu Asami; Tadasu Sugita; Taichi Tsunekawa; Toshiyuki Matsuura; Kei Takayama; Kentaro Yamamoto; Shu Kachi; Yasuki Ito; Shinji Ueno; Norie Nonobe; Keiko Kataoka; Ayana Suzumura; Takeshi Iwase; Hiroko Terasaki
Journal:  PLoS One       Date:  2017-01-20       Impact factor: 3.240

  3 in total

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