Current knowledge of traumatic ocular injury is still limited as most studies have focused on the ocular injuries that happened at the anterior part of the eye, whereas the damage to the optic nerve known as traumatic optic neuropathy (TON) is poorly understood. The goal of this study is to understand the mechanism of the TON following the primary blast through a fluid–structure interaction model. An axisymmetric three-dimensional (3D) eye model with detailed orbital components was developed to capture the dynamics of the eye under the blast wave. Our numerical results demonstrated a transient pressure elevation in both vitreous and cerebrospinal fluid (CSF). A high strain rate over 100 s−1 was observed throughout the optic nerve during the blast with the most vulnerable part located at the intracanalicular region. The optic nerve deforming at such a high strain rate may account for the axonal damage and vision loss in patients subjected to the primary blast. The results from this work would enhance the understanding of indirect TON and provide guidance in the design of protective eyewear against such injury.
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October 2019
Research-Article
Indirect Traumatic Optic Neuropathy Induced by Primary Blast: A Fluid–Structure Interaction Study
Junfei Tong,
Junfei Tong
Department of Mechanical and Materials
Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
e-mail: junfei.tong@huskers.unl.edu
Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
e-mail: junfei.tong@huskers.unl.edu
1Corresponding author.
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Sachin Kedar,
Sachin Kedar
Stanley Truhlsen Eye Institute,
University of Nebraska Medical Center,
Omaha, NE 68105-1119;
Department of Neurological Sciences,
University of Nebraska Medical Center,
Omaha, NE 68198-8440
University of Nebraska Medical Center,
Omaha, NE 68105-1119;
Department of Neurological Sciences,
University of Nebraska Medical Center,
Omaha, NE 68198-8440
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Deepta Ghate,
Deepta Ghate
Stanley Truhlsen Eye Institute,
University of Nebraska Medical Center,
Omaha, NE 68105-1119
University of Nebraska Medical Center,
Omaha, NE 68105-1119
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Linxia Gu
Linxia Gu
Department of Mechanical and
Materials Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
Materials Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
Search for other works by this author on:
Junfei Tong
Department of Mechanical and Materials
Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
e-mail: junfei.tong@huskers.unl.edu
Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
e-mail: junfei.tong@huskers.unl.edu
Sachin Kedar
Stanley Truhlsen Eye Institute,
University of Nebraska Medical Center,
Omaha, NE 68105-1119;
Department of Neurological Sciences,
University of Nebraska Medical Center,
Omaha, NE 68198-8440
University of Nebraska Medical Center,
Omaha, NE 68105-1119;
Department of Neurological Sciences,
University of Nebraska Medical Center,
Omaha, NE 68198-8440
Deepta Ghate
Stanley Truhlsen Eye Institute,
University of Nebraska Medical Center,
Omaha, NE 68105-1119
University of Nebraska Medical Center,
Omaha, NE 68105-1119
Linxia Gu
Department of Mechanical and
Materials Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
Materials Engineering,
University of Nebraska-Lincoln,
Lincoln, NE 68588-0656
1Corresponding author.
Manuscript received November 22, 2018; final manuscript received April 21, 2019; published online July 29, 2019. Assoc. Editor: Thao (Vicky) Nguyen.
J Biomech Eng. Oct 2019, 141(10): 101011 (7 pages)
Published Online: July 29, 2019
Article history
Received:
November 22, 2018
Revised:
April 21, 2019
Citation
Tong, J., Kedar, S., Ghate, D., and Gu, L. (July 29, 2019). "Indirect Traumatic Optic Neuropathy Induced by Primary Blast: A Fluid–Structure Interaction Study." ASME. J Biomech Eng. October 2019; 141(10): 101011. https://doi.org/10.1115/1.4043668
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