Literature DB >> 9882053

Finite element analysis of trabecular bone structure: a comparison of image-based meshing techniques.

D Ulrich1, B van Rietbergen, H Weinans, P Rüegsegger.   

Abstract

In this study, we investigate if finite element (FE) analyses of human trabecular bone architecture based on 168 microm images can provide relevant information about the bone mechanical characteristics. Three human trabecular bone samples, one taken from the femoral head, one from the iliac crest, and one from the lumbar spine, were imaged with micro-computed tomography (micro-CT) using a 28 microm resolution. After reconstruction the resolution was coarsened to 168 microm. First, all reconstructions were thresholded and directly converted to FE-models built of hexahedral elements. For the coarser resolutions of two samples, this resulted in a loss of trabecular connections and a subsequent loss of stiffness. To reduce this effect, a tetrahedral element meshing based on the marching cubes algorithm, as well as a modified hexahedron meshing, which thresholds the image such that load carrying bone mass is preserved, were employed. For each sample elastic moduli and tissue Von Mises stresses of the three different 168 microm models were compared to those from the hexahedron 28 microm model. For one sample the hexahedron meshing at 168 microm produced excellent results. For the other two samples the results obtained from the hexahedral models at 168 microm resolution were poor. Considerably better results were attained for these samples when using the mass-compensated or tetrahedron meshing techniques. We conclude that the accuracy of the FE-models at 168 microm strongly depends on the bone morphology, in particular its trabecular thickness. A substantial loss of trabecular connections during the hexahedron meshing process indicates that poor FE results will be obtained. In this case the tetrahedron or mass-compensated hexahedron meshing techniques can reduce the loss of connections and produce better results than the plain hexahedron meshing techniques.

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Year:  1998        PMID: 9882053     DOI: 10.1016/s0021-9290(98)00118-3

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


  24 in total

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Journal:  Int J Clin Exp Med       Date:  2015-10-15

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7.  Finite element analysis of idealised unit cell cancellous structure based on morphological indices of cancellous bone.

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8.  Biomechanics of the classic metaphyseal lesion: finite element analysis.

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Journal:  Pediatr Radiol       Date:  2017-07-18

9.  Predictive modeling of defibrillation using hexahedral and tetrahedral finite element models: recent advances.

Authors:  John K Triedman; Matthew Jolley; Jeroen Stinstra; Dana H Brooks; Rob MacLeod
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10.  Assessment of bone quality using finite element analysis based upon micro-CT images.

Authors:  Yumie Rhee; June-Huyck Hur; Ye-Yeon Won; Sung-Kil Lim; Myong-Hyun Beak; Wen-Quan Cui; Kwang-Gyoun Kim; Young Eun Kim
Journal:  Clin Orthop Surg       Date:  2009-02-06
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