Experimental characterization and micromechanical modeling of the elastic response of the human humerus under bending impact.
暂无分享,去创建一个
H. Naceur | H. Morvan | C. Fontaine | P. Mazeran | P. Drazetic | J. Rahmoun
[1] Zherui Guo,et al. Real-time visualization of dynamic fractures in porcine bones and the loading-rate effect on their fracture toughness , 2019, Journal of the Mechanics and Physics of Solids.
[2] C. Quental,et al. Bone remodelling of the humerus after a resurfacing and a stemless shoulder arthroplasty , 2018, Clinical biomechanics.
[3] Dilpreet Singh,et al. Experimental assessment of biomechanical properties in human male elbow bone subjected to bending and compression loads , 2018, Journal of applied biomaterials & functional materials.
[4] F. Rongiéras,et al. Human Shoulder Response to High Velocity Lateral Impact. , 2017, Stapp Car Crash Journal.
[5] David Mitton,et al. Strain rate influence on human cortical bone toughness: A comparative study of four paired anatomical sites. , 2017, Journal of the mechanical behavior of biomedical materials.
[6] Angelo B. Lipira,et al. Severe soft tissue injuries of the upper extremity in motor vehicle crashes involving partial ejection: the protective role of side curtain airbags. , 2017, Accident; analysis and prevention.
[7] P. Clavert,et al. How to determine the bone mineral density of the distal humerus with radiographic tools? , 2016, Surgical and Radiologic Anatomy.
[8] H. Naceur,et al. Multiscale finite element modelling of ductile damage behaviour of the human femur under dynamic loading , 2015 .
[9] F. Vandenbulcke. Caractérisation et modélisation multi-échelle du comportement mécanique à la rupture du membre scapulaire sous sollicitations dynamiques , 2015 .
[10] Pascal Drazetic,et al. Characterization and micromechanical modeling of the human cranial bone elastic properties , 2014 .
[11] R. Zdero,et al. Biomechanical measurements of stiffness and strength for five types of whole human and artificial humeri. , 2014, Journal of biomechanical engineering.
[12] P. Mazeran,et al. Time-dependent mechanical properties of rat femoral cortical bone by nanoindentation: An age-related study , 2014 .
[13] P. Augat,et al. Complex Distal Humerus Fractures—Comparison of Polyaxial Locking and Nonlocking Screw Configurations—A Preliminary Biomechanical Study , 2014, Journal of orthopaedic trauma.
[14] C. Powers,et al. Comparison of patella bone strain between females with and without patellofemoral pain: a finite element analysis study. , 2014, Journal of biomechanics.
[15] Hakim Naceur,et al. On the modeling and design of composite multilayered structures using solid-shell finite element model , 2013 .
[16] Sebastian Huss,et al. Embalmed and fresh frozen human bones in orthopedic cadaveric studies: which bone is authentic and feasible? , 2012, Acta orthopaedica.
[17] D. Lacroix,et al. Anisotropic tissue elasticity in human lumbar vertebra, by means of a coupled ultrasound-micromechanics approach , 2012 .
[18] Maxence Bigerelle,et al. Determination of mechanical properties by nanoindentation in the case of viscous materials , 2012 .
[19] Unger Stefan,et al. Effects of three different preservation methods on the mechanical properties of human and bovine cortical bone. , 2010 .
[20] Eric Markiewicz,et al. Micromechanical Modeling of the Anisotropy of Elastic Biological Composites , 2009, Multiscale Model. Simul..
[21] Marco Viceconti,et al. The effects of embalming using a 4% formalin solution on the compressive mechanical properties of human cortical bone. , 2008, Clinical biomechanics.
[22] Zdenek Horak,et al. Comparison of an inhomogeneous orthotropic and isotropic material models used for FE analyses. , 2008, Medical engineering & physics.
[23] R. L. Carvalho,et al. A mechanical comparison between conventional and modified angular plates for proximal humeral fractures. , 2008, Journal of shoulder and elbow surgery.
[24] Theo H Smit,et al. Effect of long-term preservation on the mechanical properties of cortical bone in goats , 2008, Acta orthopaedica.
[25] M. Russlies,et al. The intraindividual agreement of the bone density of the human proximal tibia. , 2007, Annals of anatomy = Anatomischer Anzeiger : official organ of the Anatomische Gesellschaft.
[26] Sonia Duprey,et al. Experimental and simulated flexion tests of humerus , 2007 .
[27] Yongxin Zhou,et al. Comparison of isotropic and orthotropic material property assignments on femoral finite element models under two loading conditions. , 2006, Medical engineering & physics.
[28] Christian Hellmich,et al. Mineral–collagen interactions in elasticity of bone ultrastructure – a continuum micromechanics approach , 2004 .
[29] S A Goldstein,et al. Heterogeneity of bone lamellar-level elastic moduli. , 2000, Bone.
[30] S. Goldstein,et al. Elastic modulus and hardness of cortical and trabecular bone lamellae measured by nanoindentation in the human femur. , 1999, Journal of biomechanics.
[31] R. Mclaughlin,et al. The effect of fibre length on the overall moduli of composite materials , 1979 .
[32] J. Willis. Bounds and self-consistent estimates for the overall properties of anisotropic composites , 1977 .
[33] K. Tanaka,et al. Average stress in matrix and average elastic energy of materials with misfitting inclusions , 1973 .
[34] L. Walpole,et al. On the overall elastic moduli of composite materials , 1969 .
[35] R. Hill. A self-consistent mechanics of composite materials , 1965 .
[36] J. D. Eshelby. The determination of the elastic field of an ellipsoidal inclusion, and related problems , 1957, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[37] R. N. Jorge,et al. Determination of the Anisotropic Mechanical Properties of Bone Tissue Using a Homogenization Technique Combined With Meshless Methods , 2019, Advances in Biomechanics and Tissue Regeneration.
[38] Hakim Naceur,et al. Smoothed finite element method implemented in a resultant eight-node solid-shell element for geometrical linear analysis , 2015 .
[39] Mike W. J. Arun,et al. Dynamic Properties of the Shoulder Complex Bones , 2011 .