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Quantitative Computed Tomography Protocols Affect Material Mapping and Quantitative Computed Tomography-Based Finite-Element Analysis Predicted Stiffness
- Source :
- Journal of biomechanical engineering. 138(9)
- Publication Year :
- 2016
-
Abstract
- Quantitative computed tomography-based finite-element analysis (QCT/FEA) has become increasingly popular in an attempt to understand and possibly reduce vertebral fracture risk. It is known that scanning acquisition settings affect Hounsfield units (HU) of the CT voxels. Material properties assignments in QCT/FEA, relating HU to Young's modulus, are performed by applying empirical equations. The purpose of this study was to evaluate the effect of QCT scanning protocols on predicted stiffness values from finite-element models. One fresh frozen cadaveric torso and a QCT calibration phantom were scanned six times varying voltage and current and reconstructed to obtain a total of 12 sets of images. Five vertebrae from the torso were experimentally tested to obtain stiffness values. QCT/FEA models of the five vertebrae were developed for the 12 image data resulting in a total of 60 models. Predicted stiffness was compared to the experimental values. The highest percent difference in stiffness was approximately 480% (80 kVp, 110 mAs, U70), while the lowest outcome was ∼1% (80 kVp, 110 mAs, U30). There was a clear distinction between reconstruction kernels in predicted outcomes, whereas voltage did not present a clear influence on results. The potential of QCT/FEA as an improvement to conventional fracture risk prediction tools is well established. However, it is important to establish research protocols that can lead to results that can be translated to the clinical setting.
- Subjects :
- 0206 medical engineering
Finite Element Analysis
Biomedical Engineering
02 engineering and technology
computer.software_genre
Models, Biological
Sensitivity and Specificity
03 medical and health sciences
0302 clinical medicine
Absorptiometry, Photon
Imaging, Three-Dimensional
Voxel
Bone Density
Physiology (medical)
Hounsfield scale
Elastic Modulus
medicine
Calibration
Cadaver
Humans
Computer Simulation
Quantitative computed tomography
Mathematics
Aged, 80 and over
medicine.diagnostic_test
business.industry
Phantoms, Imaging
Stiffness
Reproducibility of Results
Structural engineering
Torso
020601 biomedical engineering
Research Papers
Finite element method
Spine
medicine.anatomical_structure
Radiographic Image Interpretation, Computer-Assisted
Female
Tomography
Stress, Mechanical
medicine.symptom
business
Tomography, X-Ray Computed
computer
030217 neurology & neurosurgery
Subjects
Details
- ISSN :
- 15288951
- Volume :
- 138
- Issue :
- 9
- Database :
- OpenAIRE
- Journal :
- Journal of biomechanical engineering
- Accession number :
- edsair.doi.dedup.....21c9d861faabf170faa9c3685bc8d838