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Influence of Strain Rate on the Mechanical Behaviour of Human Interstitial Bone at the Microstructural Level

Published online by Cambridge University Press:  26 February 2011

Vanleene Maximilien
Affiliation:
mvanleen@utc.fr, Université de Technologie de Compiègne, Laboratoire de Biomécanique et Génie Biomédical, UMR 6600, BP 20529, Compiègne Cedex, N/A, 60205, France, Metropolitan
Mazeran Pierre-Emmanuel
Affiliation:
pierre-emmanuel.mazeran@utc.fr, Université de Technologie de Compiègne, Laboratoire Roberval, Unité de Recherche en Mécanique, FRE UTC-CNRS 2833, France
Ho Ba Tho Marie-Christine
Affiliation:
marie-christine.hobatho@utc.fr, Université de Technologie de Compiègne, Laboratoire de Biomécanique et Génie Biomédical, UTC-CNRS UMR 6600, France, Metropolitan
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Abstract

Investigation of bone mechanical properties is of importance for bone pathology researches, development of biomaterials and prosthesis. Due to the bone complex multi-scale structure, assessment of bone microstructure is an important step of bone mechanical behaviour understanding. In this study, we performed dynamic nanoindentation tests in order to investigate visco-plastic and visco-elastic properties of bone interstitial lamellae.

Type
Research Article
Copyright
Copyright © Materials Research Society 2006

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