Finite element analysis predicts experimental failure patterns in vertebral bodies loaded via intervertebral discs up to large deformation

被引:29
作者
Clouthier, Allison L. [1 ]
Hosseini, Hadi S. [1 ]
Maquer, Ghislain [1 ]
Zysset, Philippe K. [1 ]
机构
[1] Univ Bern, Inst Surg Technol & Biomech, CH-3014 Bern, Switzerland
关键词
Finite element analysis; Spine segment; Large deformations; Vertebral fracture; Boundary conditions; Disc degeneration; ANNULUS FIBROSUS; FRACTURE; DEGENERATION; STRENGTH; MODELS; OSTEOPOROSIS; BEHAVIOR; DAMAGE; WOMEN; RISK;
D O I
10.1016/j.medengphy.2015.03.007
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
Vertebral compression fractures are becoming increasingly common. Patient-specific nonlinear finite element (FE) models have shown promise in predicting yield strength and damage pattern but have not been experimentally validated for clinically relevant vertebral fractures, which involve loading through intervertebral discs with varying degrees of degeneration up to large compressive strains. Therefore, stepwise axial compression was applied in vitro on segments and performed in silica on their FE equivalents using a nonlocal damage-plastic model including densification at large compression for bone and a time-independent hyperelastic model for the disc. The ability of the nonlinear FE models to predict the failure pattern in large compression was evaluated for three boundary conditions: healthy and degenerated intervertebral discs and embedded endplates. Bone compaction and fracture patterns were predicted using the local volume change as an indicator and the best correspondence was obtained for the healthy intervertebral discs. These preliminary results show that nonlinear finite element models enable prediction of bone localisation and compaction. To the best of our knowledge, this is the first study to predict the collapse of osteoporotic vertebral bodies up to large compression using realistic loading via the intervertebral discs. (C) 2015 IPEM. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:599 / 604
页数:6
相关论文
共 50 条
[1]
What is intervertebral disc degeneration, and what causes it? [J].
Adams, Michael A. ;
Roughley, Peter J. .
SPINE, 2006, 31 (18) :2151-2161
[2]
Intervertebral disc degeneration: evidence for two distinct phenotypes [J].
Adams, Michael A. ;
Dolan, Patricia .
JOURNAL OF ANATOMY, 2012, 221 (06) :497-506
[3]
A patient-specific finite element methodology to predict damage accumulation in vertebral bodies under axial compression, sagittal flexion and combined loads [J].
Chevalier, Yan ;
Charlebois, Mathieu ;
Pahr, Dieter ;
Varga, Peter ;
Heini, Paul ;
Schneider, Erich ;
Zysset, Philippe .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2008, 11 (05) :477-487
[4]
Biomechanical effects of teriparatide in women with osteoporosis treated previously with alendronate and risedronate: Results from quantitative computed tomography-based finite element analysis of the vertebral body [J].
Chevalier, Yan ;
Quek, Evelyn ;
Borah, Babul ;
Gross, Gary ;
Stewart, John ;
Lang, Thomas ;
Zysset, Philippe .
BONE, 2010, 46 (01) :41-48
[5]
Mechanical Contributions of the Cortical and Trabecular Compartments Contribute to Differences in Age-Related Changes in Vertebral Body Strength in Men and Women Assessed by QCT-Based Finite Element Analysis [J].
Christiansen, Blaine A. ;
Kopperdahl, David L. ;
Kiel, Douglas P. ;
Keaveny, Tony M. ;
Bouxsein, Mary L. .
JOURNAL OF BONE AND MINERAL RESEARCH, 2011, 26 (05) :974-983
[6]
Extra-fibrillar matrix mechanics of annulus fibrosus in tension and compression [J].
Cortes, Daniel H. ;
Elliott, Dawn M. .
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY, 2012, 11 (06) :781-790
[7]
QCT-based finite element models predict human vertebral strength in vitro significantly better than simulated DEXA [J].
Dall'Ara, E. ;
Pahr, D. ;
Varga, P. ;
Kainberger, F. ;
Zysset, P. .
OSTEOPOROSIS INTERNATIONAL, 2012, 23 (02) :563-572
[8]
A nonlinear finite element model validation study based on a novel experimental technique for inducing anterior wedge-shape fractures in human vertebral bodies in vitro [J].
Dall'Ara, E. ;
Schmidt, R. ;
Pahra, D. ;
Varga, P. ;
Chevalier, Y. ;
Patsch, J. ;
Kainberger, F. ;
Zysset, P. .
JOURNAL OF BIOMECHANICS, 2010, 43 (12) :2374-2380
[9]
An accurate finite element model of the cervical spine under quasi-static loading [J].
del Palomar, A. Perez ;
Calvo, B. ;
Doblare, M. .
JOURNAL OF BIOMECHANICS, 2008, 41 (03) :523-531
[10]
EASTELL R, 1991, J BONE MINER RES, V6, P207