Literature DB >> 26542787

The influence of bone density and anisotropy in finite element models of distal radius fracture osteosynthesis: Evaluations and comparison to experiments.

A Synek1, Y Chevalier2, S F Baumbach3, D H Pahr4.   

Abstract

Continuum-level finite element (FE) models can be used to analyze and improve osteosynthesis procedures for distal radius fractures (DRF) from a biomechanical point of view. However, previous models oversimplified the bone material and lacked thorough experimental validation. The goal of this study was to assess the influence of local bone density and anisotropy in FE models of DRF osteosynthesis for predictions of axial stiffness, implant plate stresses, and screw loads. Experiments and FE analysis were conducted in 25 fresh frozen cadaveric radii with DRFs treated by volar locking plate osteosynthesis. Specimen specific geometries were captured using clinical quantitative CT (QCT) scans of the prepared samples. Local bone material properties were computed based on high resolution CT (HR-pQCT) scans of the intact radii. The axial stiffness and individual screw loads were evaluated in FE models, with (1) orthotropic inhomogeneous (OrthoInhom), (2) isotropic inhomogeneous (IsoInhom), and (3) isotropic homogeneous (IsoHom) bone material and compared to the experimental axial stiffness and screw-plate interface failures. FE simulated and experimental axial stiffness correlated significantly (p<0.0001) for all three model types. The coefficient of determination was similar for OrthoInhom (R(2)=0.807) and IsoInhom (R(2)=0.816) models but considerably lower for IsoHom models (R(2)=0.500). The peak screw loads were in qualitative agreement with experimental screw-plate interface failure. Individual loads and implant plate stresses of IsoHom models differed significantly (p<0.05) from OrthoInhom and IsoInhom models. In conclusion, including local bone density in FE models of DRF osteosynthesis is essential whereas local bone anisotropy hardly effects the models׳ predictive abilities.
Copyright © 2015 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Distal radius fracture; Finite element; Material mapping; Osteosynthesis

Mesh:

Year:  2015        PMID: 26542787     DOI: 10.1016/j.jbiomech.2015.10.012

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  7 in total

1.  Cement augmentation of calcar screws may provide the greatest reduction in predicted screw cut-out risk for proximal humerus plating based on validated parametric computational modelling: Augmenting proximal humerus fracture plating.

Authors:  Peter Varga; Jason A Inzana; James W A Fletcher; Ladina Hofmann-Fliri; Armin Runer; Norbert P Südkamp; Markus Windolf
Journal:  Bone Joint Res       Date:  2020-09-03       Impact factor: 5.853

2.  Finding the Optimal Surgical Incision Pattern-A Biomechanical Study.

Authors:  Nikolaus Wachtel; Paul I Heidekrueger; Carolin Brenner; Maximilian Endres; Rainer Burgkart; Carina Micheler; Niklas Thon; Denis Ehrl
Journal:  J Clin Med       Date:  2022-05-05       Impact factor: 4.964

3.  Variations in Strain Distribution at Distal Radius under Different Loading Conditions.

Authors:  Jonas A Pramudita; Wataru Hiroki; Takuya Yoda; Yuji Tanabe
Journal:  Life (Basel)       Date:  2022-05-16

4.  [Biomechanics of distal radius fractures : Basics principles and GPS treatment strategy for locking plate osteosynthesis].

Authors:  M Gabl; R Arora; G Schmidle
Journal:  Unfallchirurg       Date:  2016-09       Impact factor: 1.000

Review 5.  Finite Element Analysis of Fracture Fixation.

Authors:  Gregory S Lewis; Dominic Mischler; Hwabok Wee; J Spence Reid; Peter Varga
Journal:  Curr Osteoporos Rep       Date:  2021-06-29       Impact factor: 5.163

Review 6.  Quantitative Computed Tomography (QCT) derived Bone Mineral Density (BMD) in finite element studies: a review of the literature.

Authors:  Nikolas K Knowles; Jacob M Reeves; Louis M Ferreira
Journal:  J Exp Orthop       Date:  2016-12-09

7.  A two-layer elasto-visco-plastic rheological model for the material parameter identification of bone tissue.

Authors:  Andreas G Reisinger; Martin Frank; Philipp J Thurner; Dieter H Pahr
Journal:  Biomech Model Mechanobiol       Date:  2020-05-06
  7 in total

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