Please use this identifier to cite or link to this item: https://scholarhub.balamand.edu.lb/handle/uob/5432
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dc.contributor.authorRemache, Den_US
dc.contributor.authorSemaan, Men_US
dc.contributor.authorRossi, J Men_US
dc.contributor.authorPithioux, Men_US
dc.contributor.authorMilan, J Len_US
dc.date.accessioned2022-04-05T07:47:52Z-
dc.date.available2022-04-05T07:47:52Z-
dc.date.issued2020-
dc.identifier.issn17516161-
dc.identifier.urihttps://scholarhub.balamand.edu.lb/handle/uob/5432-
dc.description.abstractThe mechanical behavior of the cortical bone in nanoindentation is a complicated mechanical problem. The finite element analysis has commonly been assumed to be the most appropriate approach to this issue. One significant problem in nanoindentation modeling of the elastic-plastic materials is pile-up deformation, which is not observed in cortical bone nanoindentation testing. This phenomenon depends on the work-hardening of materials; it doesn't occur for work-hardening materials, which suggests that the cortical bone could be considered as a work-hardening material. Furthermore, in a recent study [59], a plastic hardening until failure was observed on the micro-scale of a dry ovine osteonal bone samples subjected to micropillar compression. The purpose of the current study was to apply an isotropic hardening model in the finite element simulations of the nanoindentation of the cortical bone to predict its mechanical behavior. The Johnson-Cook (JC) model was chosen as the constitutive model. The finite element modeling in combination with numerical optimization was used to identify the unknown material constants and then the finite element solutions were compared to the experimental results. A good agreement of the numerical curves with the target loading curves was found and no pile-up was predicted. A Design Of Experiments (DOE) approach was performed to evaluate the linear effects of the material constants on the mechanical response of the material. The strain hardening modulus and the strain hardening exponent were the most influential parameters. While a positive effect was noticed with the Young's modulus, the initial yield stress and the strain hardening modulus, an opposite effect was found with the Poisson's ratio and the strain hardening exponent. Finally, the JC model showed a good capability to describe the elastoplastic behavior of the cortical bone.en_US
dc.language.isoengen_US
dc.publisherElsevieren_US
dc.subjectDesign of experiments (DOE)en_US
dc.subjectInverse optimization approachen_US
dc.subjectJohnson-cook modelen_US
dc.subjectMechanical cortical bone behavioren_US
dc.subjectNanoindentation testen_US
dc.titleApplication of the Johnson-Cook plasticity model in the finite element simulations of the nanoindentation of the cortical boneen_US
dc.typeJournal Articleen_US
dc.identifier.doi10.1016/j.jmbbm.2019.103426-
dc.identifier.pmid31557661-
dc.identifier.scopus2-s2.0-85072554116-
dc.identifier.urlhttps://api.elsevier.com/content/abstract/scopus_id/85072554116-
dc.contributor.affiliationFaculty of Engineeringen_US
dc.description.volume101en_US
dc.date.catalogued2022-04-05-
dc.description.statusPublisheden_US
dc.identifier.ezproxyURLhttp://ezsecureaccess.balamand.edu.lb/login?url=https://doi.org/10.1016/j.jmbbm.2019.103426en_US
dc.relation.ispartoftextJournal of the Mechanical Behavior of Biomedical Materialsen_US
Appears in Collections:Department of Electrical Engineering
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