Computed tomography‐based finite element analysis predicts failure loads and fracture patterns for vertebral sections
- 1 May 1998
- journal article
- research article
- Published by Wiley in Journal of Orthopaedic Research
- Vol. 16 (3), 300-308
- https://doi.org/10.1002/jor.1100160305
Abstract
Computed tomography-based finite element analysis represents a powerful research tool for investigating the mechanics of skeletal fractures. To provide evidence that this technique can be used to predict failure loads and fracture patterns for bone structures, we compared the observed and predicted failure behaviors of 18 midsagittal sections. 10 mm thick, cut from human vertebral bodies. The specimens were scanned by computed tomography, and finite element models were generated with use of empirically determined density-property relations to assign element-specific material properties. The specimens were loaded to failure in uniaxial compression, and the models were analyzed under matching conditions. The models provided predictions of yield load that were strongly correlated with experimentally measured values (r2 > 0.86) and were typically within 25% of measured values. Predicted stiffness values were moderately correlated with measured values, but large absolute differences existed between them. Comparisons between regions of observed fracture and of high predicted strain indicated that strain was an accurate indicator of the pattern of local fracture in more than two-thirds of the bone specimens. In addition, strain contour plots provided better indicators of local fracture than did stress plots in these heterogeneous bone structures. We conclude that computed tomography-based finite element analysis can be used successfully to predict both global and local failure behavior of simplified skeletal structures.Keywords
This publication has 26 references indexed in Scilit:
- The effect of impact direction on the structural capacity of the proximal femur during fallsJournal of Bone and Mineral Research, 1996
- Static and fatigue failure properties of thoracic and lumbar vertebral bodies and their relation to regional densityJournal of Biomechanics, 1995
- Predicting the compressive mechanical behavior of boneJournal of Biomechanics, 1994
- Direct and computed tomography thickness measurements of the human, lumbar vertebral shell and endplateBone, 1994
- A 20-Year Perspective on the Mechanical Properties of Trabecular BoneJournal of Biomechanical Engineering, 1993
- Measurement and significance of three-dimensional architecture to the mechanical integrity of trabecular boneCalcified Tissue International, 1993
- Fracture Prediction for the Proximal Femur Using Finite Element Models: Part II—Nonlinear AnalysisJournal of Biomechanical Engineering, 1991
- A comparison of morphometric definitions of vertebral fractureJournal of Bone and Mineral Research, 1991
- Automated three-dimensional finite element modelling of bone: a new methodJournal of Biomedical Engineering, 1990
- Computer aided stress analysis of long bones utilizing computed tomographyJournal of Biomechanics, 1990