Material properties of human lumbar intervertebral discs across strain rates
File(s)Manuscript_answered_cleaned_forSpiral.docx (866.22 KB)
Accepted version
Author(s)
Newell, Nicolas
Carpanen, Diagarajen
Grigoriadis, Grigorios
Little, J Paige
Masouros, Spyros
Type
Journal Article
Abstract
Background context:
The use of finite-element (FE) methods to study the biomechanics of the intervertebral disc (IVD) has increased over recent decades due to their ability to quantify internal stresses and strains throughout the tissue. Their accuracy is dependent upon realistic, strain-rate dependent material properties, which are challenging to acquire.
Purpose:
The aim of this study was to use the inverse FE technique to characterize the material properties of human lumbar IVDs across strain rates.
Study Design:
A human cadaveric experimental study coupled with an inverse finite element study.
Methods:
To predict the structural response of the IVD accurately, the material response of the constituent structures was required. Therefore, compressive experiments were conducted on 16 lumbar IVDs (39 ± 19 years) to obtain the structural response. An FE model of each of these experiments was developed and then run through an inverse FE algorithm to obtain subject-specific constituent material properties, such that the structural response was accurate.
Results:
Experimentally, a log-linear relationship between IVD stiffness and strain rate was observed. The material properties obtained through the subject-specific inverse FE optimization of the anulus fibrosus (AF) fiber and AF fiber ground matrix allowed a good match between the experimental and FE response. This resulted in a Young’s Modulus of AF fibers (YMAF - MPa) to strain rate (ε ̇ - /s) relationship of YMAF=31.5ln(ε ̇ )+435.5, and the C10 parameter of the Neo-Hookean material model of the AF ground matrix was found to be strain-rate independent with an average value of 0.68 MPa.
Conclusions:
These material properties can be used to improve the accuracy, and therefore predictive ability of FE models of the spine that are used in a wide range of research areas and clinical applications.
Clinical Significance
Finite element models can be used for many applications including investigating low-back pain, spinal deformities, injury biomechanics, implant design, design of protective systems, and degenerative disc disease. The accurate material properties obtained in this study will improve the predictive ability, and therefore clinical significance of these models
The use of finite-element (FE) methods to study the biomechanics of the intervertebral disc (IVD) has increased over recent decades due to their ability to quantify internal stresses and strains throughout the tissue. Their accuracy is dependent upon realistic, strain-rate dependent material properties, which are challenging to acquire.
Purpose:
The aim of this study was to use the inverse FE technique to characterize the material properties of human lumbar IVDs across strain rates.
Study Design:
A human cadaveric experimental study coupled with an inverse finite element study.
Methods:
To predict the structural response of the IVD accurately, the material response of the constituent structures was required. Therefore, compressive experiments were conducted on 16 lumbar IVDs (39 ± 19 years) to obtain the structural response. An FE model of each of these experiments was developed and then run through an inverse FE algorithm to obtain subject-specific constituent material properties, such that the structural response was accurate.
Results:
Experimentally, a log-linear relationship between IVD stiffness and strain rate was observed. The material properties obtained through the subject-specific inverse FE optimization of the anulus fibrosus (AF) fiber and AF fiber ground matrix allowed a good match between the experimental and FE response. This resulted in a Young’s Modulus of AF fibers (YMAF - MPa) to strain rate (ε ̇ - /s) relationship of YMAF=31.5ln(ε ̇ )+435.5, and the C10 parameter of the Neo-Hookean material model of the AF ground matrix was found to be strain-rate independent with an average value of 0.68 MPa.
Conclusions:
These material properties can be used to improve the accuracy, and therefore predictive ability of FE models of the spine that are used in a wide range of research areas and clinical applications.
Clinical Significance
Finite element models can be used for many applications including investigating low-back pain, spinal deformities, injury biomechanics, implant design, design of protective systems, and degenerative disc disease. The accurate material properties obtained in this study will improve the predictive ability, and therefore clinical significance of these models
Date Issued
2019-12
Date Acceptance
2019-07-17
Citation
Spine Journal, 2019, 19 (12), pp.2013-2024
ISSN
1529-9430
Publisher
Elsevier
Start Page
2013
End Page
2024
Journal / Book Title
Spine Journal
Volume
19
Issue
12
Copyright Statement
© 2019 Published by Elsevier Inc. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/
Sponsor
The Royal British Legion
Engineering & Physical Science Research Council (EPSRC)
Identifier
https://www.sciencedirect.com/science/article/pii/S1529943019308939?via%3Dihub
Grant Number
Centre for Blast Injury Studie
EP/M022242/1
Subjects
Finite element method
Intervertebral disc
Lumbar spine
Optimization
Sensitivity
Strain rate
1103 Clinical Sciences
1109 Neurosciences
Orthopedics
Publication Status
Published
Date Publish Online
2019-07-18