Biological requirements call for substantial porosities in clinical biomaterials – challenging the mechanical integrity and strength of the latter. In this study, the authors resort to quantitative engineering principles to assess the fracture safety of double-porous hydroxyapatite ceramics: micro-computed tomography scans give access to the morphology of macropores at the submillimeter scale, as well as to voxel-specific microporosities. Advanced micromechanics of porous ceramics with needle-shaped elementary units then allows for translating voxel-specific microporosities to corresponding elasticity and strength properties, as well as to macro-to-micro scale transition (‘concentration’) tensors. These mechanical properties and tensors are fed into a large-scale finite-element model of a biomaterial granule as used for mandibular tissue regeneration. Loading the granule in splitting mode, up to physiological strain, evidences stress concentrations at the loaded poles and close to internal macropores and cracks. A parallel computing-supported subvoxel analysis of needle orientations evidences that in highly loaded regions, the intravoxel ‘single crystals’ oriented perpendicular to the loading direction undergo the most unfavorable loading. Still, only 0·6% of the finite-elements show stresses indicating failure, and the mean safety factor against fracture is as high as 7. This analysis confirms, from an engineering science viewpoint, the successful use of the investigated biomaterials in clinical practice.
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1 March 2016
Research Article|
January 21 2016
Fracture safety of double-porous hydroxyapatite biomaterials
Alexander Dejaco, PhD;
Alexander Dejaco, PhD
Institute for Mechanics of Materials and Structures, TU Wien – Vienna University of Technology, Vienna, Austria
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Vladimir S. Komlev, PhD;
Vladimir S. Komlev, PhD
A.A. Baikov Institute of Metallurgy and Materials Science, Russian Academy of Sciences, Moscow, Russia
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Jakub Jaroszewicz, PhD;
Jakub Jaroszewicz, PhD
Department of Materials Science and Engineering, Warsaw University of Technology, Warsaw, Poland
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Wojciech Swieszkowski, PhD;
Wojciech Swieszkowski, PhD
Department of Materials Science and Engineering, Warsaw University of Technology, Warsaw, Poland
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Christian Hellmich, PhD
Christian Hellmich, PhD
*
Institute for Mechanics of Materials and Structures, TU Wien – Vienna University of Technology, Vienna, Austria
*Corresponding author e-mail address: christian.hellmich@tuwien.ac.at
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*Corresponding author e-mail address: christian.hellmich@tuwien.ac.at
Publisher: Emerald Publishing
Received:
October 01 2015
Accepted:
January 18 2016
Online ISSN: 2045-9866
Print ISSN: 2045-9858
Published with permission by the ICE under the CC-BY license. (http://creativecommons.org/licenses/by/3.0/)
2016
Bioinspired, Biomimetic and Nanobiomaterials (2016) 5 (1): 24–36.
Article history
Received:
October 01 2015
Accepted:
January 18 2016
Citation
Dejaco A, Komlev VS, Jaroszewicz J, Swieszkowski W, Hellmich C (2016), "Fracture safety of double-porous hydroxyapatite biomaterials". Bioinspired, Biomimetic and Nanobiomaterials, Vol. 5 No. 1 pp. 24–36, doi: https://doi.org/10.1680/jbibn.15.00021
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