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Morphométrie par micro-CT×Remodelage osseux par EFM×
DomaineBiomécaniqueBiomécanique
FamilleProcess / pipelineProcess / pipeline
Année d'origine19891987
Auteur d'origineFeldkampRik Huiskes
Type3D image acquisition and quantitative analysisMulti-physics finite element pipeline
Source fondatriceFeldkamp, L. A., Davis, L. C., & Kress, J. W. (1984). Practical cone-beam algorithm. Journal of the Optical Society of America A, 1(6), 612-619. DOI ↗Huiskes, R., Weinans, H., Grootenboer, H. J., Dalstra, M., Fudala, B., & Slooff, T. J. (1987). Adaptive bone-remodeling theory applied to prosthetic-design analysis. Journal of Biomechanics, 20(11-12), 1135-1150. DOI ↗
AliasmicroCT, Micro-CT analysis, 3D bone morphometryBone remodeling simulation, Trabecular architecture adaptation, Mechano-regulation
Apparentées33
RésuméMicro-computed tomography (microCT) morphometry quantifies 3D bone and tissue architecture at micrometer resolution, enabling detailed assessment of bone density, trabecular structure, and porosity. Developed by Feldkamp and colleagues and standardized by the American Society for Bone and Mineral Research, microCT is the gold standard for preclinical bone analysis and has expanded to tissue engineering and material characterization.Finite element analysis (FEA) for bone remodeling predicts how bone tissue density and architecture adapt to changes in mechanical loading over time. Pioneered by Rik Huiskes and Donald Carter in the 1980s, this computational approach integrates stress analysis with biophysical remodeling rules to simulate the long-term response of bone to disease, aging, or surgical intervention.
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ScholarGateComparer des méthodes: Micro-CT Morphometry · FEA Bone Remodeling. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare