Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography

The Poisson ratio (PR) is a fundamental mechanical parameter that approximates the ratio of relative change in cross sectional area to tensile elongation. However, the PR of extraocular muscle (EOM) is almost never measured because of experimental constraints. The problem was overcome by determining...

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Main Authors: Hansang Kim, Lawrence Yoo, Andrew Shin, Joseph L. Demer
Format: Article
Language:English
Published: Hindawi Limited 2013-01-01
Series:BioMed Research International
Online Access:http://dx.doi.org/10.1155/2013/197479
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spelling doaj-669f83528f0e455f9c6d4e09821e930d2020-11-24T23:55:34ZengHindawi LimitedBioMed Research International2314-61332314-61412013-01-01201310.1155/2013/197479197479Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray TomographyHansang Kim0Lawrence Yoo1Andrew Shin2Joseph L. Demer3Department of Mechanical and Automotive Engineering, Gachon University, Seongnam-Si, Gyeonggi-do 461-701, Republic of KoreaDepartment of Ophthalmology, Jules Stein Eye Institute, University of California, Los Angeles, CA 90095-7002, USADepartment of Ophthalmology, Jules Stein Eye Institute, University of California, Los Angeles, CA 90095-7002, USADepartment of Ophthalmology, Jules Stein Eye Institute, University of California, Los Angeles, CA 90095-7002, USAThe Poisson ratio (PR) is a fundamental mechanical parameter that approximates the ratio of relative change in cross sectional area to tensile elongation. However, the PR of extraocular muscle (EOM) is almost never measured because of experimental constraints. The problem was overcome by determining changes in EOM dimensions using computed X-ray tomography (CT) at microscopic resolution during tensile elongation to determine transverse strain indicated by the change in cross-section. Fresh bovine EOM specimens were prepared. Specimens were clamped in a tensile fixture within a CT scanner (SkyScan, Belgium) with temperature and humidity control and stretched up to 35% of initial length. Sets of 500–800 contiguous CT images were obtained at 10-micron resolution before and after tensile loading. Digital 3D models were then built and discretized into 6–8-micron-thick elements. Changes in longitudinal thickness of each microscopic element were determined to calculate strain. Green’s theorem was used to calculate areal strain in transverse directions orthogonal to the stretching direction. The mean PR from discretized 3D models for every microscopic element in 14 EOM specimens averaged (SD). The measured PR of bovine EOM is thus near the limit of incompressibility.http://dx.doi.org/10.1155/2013/197479
collection DOAJ
language English
format Article
sources DOAJ
author Hansang Kim
Lawrence Yoo
Andrew Shin
Joseph L. Demer
spellingShingle Hansang Kim
Lawrence Yoo
Andrew Shin
Joseph L. Demer
Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
BioMed Research International
author_facet Hansang Kim
Lawrence Yoo
Andrew Shin
Joseph L. Demer
author_sort Hansang Kim
title Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
title_short Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
title_full Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
title_fullStr Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
title_full_unstemmed Determination of Poisson Ratio of Bovine Extraocular Muscle by Computed X-Ray Tomography
title_sort determination of poisson ratio of bovine extraocular muscle by computed x-ray tomography
publisher Hindawi Limited
series BioMed Research International
issn 2314-6133
2314-6141
publishDate 2013-01-01
description The Poisson ratio (PR) is a fundamental mechanical parameter that approximates the ratio of relative change in cross sectional area to tensile elongation. However, the PR of extraocular muscle (EOM) is almost never measured because of experimental constraints. The problem was overcome by determining changes in EOM dimensions using computed X-ray tomography (CT) at microscopic resolution during tensile elongation to determine transverse strain indicated by the change in cross-section. Fresh bovine EOM specimens were prepared. Specimens were clamped in a tensile fixture within a CT scanner (SkyScan, Belgium) with temperature and humidity control and stretched up to 35% of initial length. Sets of 500–800 contiguous CT images were obtained at 10-micron resolution before and after tensile loading. Digital 3D models were then built and discretized into 6–8-micron-thick elements. Changes in longitudinal thickness of each microscopic element were determined to calculate strain. Green’s theorem was used to calculate areal strain in transverse directions orthogonal to the stretching direction. The mean PR from discretized 3D models for every microscopic element in 14 EOM specimens averaged (SD). The measured PR of bovine EOM is thus near the limit of incompressibility.
url http://dx.doi.org/10.1155/2013/197479
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