Multi-axial damage and failure of medical grade carbon fibre reinforced PEEK laminates: Experimental testing and computational modelling.
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P. McGarry | Patrick McGarry | S. Lamorinière | Elizabeth Anne Gallagher | Steven Lamorinière | E. Gallagher
[1] N. Özkaya,et al. Fundamentals of Biomechanics , 2017, Springer International Publishing.
[2] Mark Taylor,et al. Investigation into the effect of varus-valgus orientation on load transfer in the resurfaced femoral head: a multi-femur finite element analysis. , 2007, Clinical biomechanics.
[3] S. Leen,et al. A combined XFEM and cohesive zone model for composite laminate microcracking and permeability , 2015 .
[4] I. Hamerton,et al. Multi-Functional Carbon Fibre Composites using Carbon Nanotubes as an Alternative to Polymer Sizing , 2016, Scientific Reports.
[5] Pedro P. Camanho,et al. Accurate simulation of delamination growth under mixed-mode loading using cohesive elements: Definition of interlaminar strengths and elastic stiffness , 2010 .
[6] Jarosław Bieniaś,et al. Analysis of microstructure damage in carbon/epoxy composites using FEM , 2012 .
[7] R. Huiskes,et al. The relationship between stress shielding and bone resorption around total hip stems and the effects of flexible materials. , 1992, Clinical orthopaedics and related research.
[8] P. McGarry,et al. Anisotropic mode-dependent damage of cortical bone using the extended finite element method (XFEM). , 2013, Journal of the mechanical behavior of biomedical materials.
[9] J. Dias,et al. Clavicular fracture non-union surgical outcome and complications. , 2002, Injury.
[10] M. A. McCarthy,et al. Comparison of open hole tension characteristics of high strength glass and carbon fibre-reinforced composite materials , 2008 .
[11] W. Paepegem,et al. Modelling the nonlinear shear stress-strain response of glass fibre- reinforced composites. Part I: Experimental results , 2006 .
[12] J. M. Kennedy,et al. Progressive failure analysis of laminated composite femoral prostheses for total hip arthroplasty. , 2002, Biomaterials.
[13] W. Taylor,et al. Physiologically based boundary conditions in finite element modelling. , 2007, Journal of biomechanics.
[14] P. Vallittu,et al. Craniofacial bone reconstruction with bioactive fiber‐reinforced composite implant , 2014, Head & neck.
[15] S. Natarajan,et al. An XFEM/CZM based inverse method for identification of composite failure parameters , 2015 .
[16] George S. Springer,et al. Measurements of Matrix Cracking and Delamination Caused by Impact on Composite Plates , 1988 .
[17] P. McGarry,et al. Investigation of metallic and carbon fibre PEEK fracture fixation devices for three-part proximal humeral fractures. , 2013, Medical engineering & physics.
[18] Fu-Kuo Chang,et al. Damage Tolerance of Laminated Composites Containing an Open Hole and Subjected to Tensile Loadings , 1991 .
[19] Yuli Chen,et al. Simulation of delamination growth in multidirectional laminates under mode I and mixed mode I/II loadings using cohesive elements , 2014 .
[20] J. Brantigan,et al. A carbon fiber implant to aid interbody lumbar fusion. Two-year clinical results in the first 26 patients. , 1993 .
[21] T. O'Brien. Characterization of delamination onset and growth in a composite laminate , 1982 .
[22] Zhenyu Xue,et al. Constitutive model for quasi‐static deformation of metallic sandwich cores , 2004 .
[23] Raimund Rolfes,et al. Modeling the inelastic deformation and fracture of polymer composites – Part I: Plasticity model , 2013 .
[24] R. Zdero,et al. Biomechanical properties of an advanced new carbon/flax/epoxy composite material for bone plate applications. , 2013, Journal of the mechanical behavior of biomedical materials.
[25] Fu-Kuo Chang,et al. Damage Tolerance of Laminated Composites Containing an Open Hole and Subjected to Compressive Loadings: Part II—Experiment , 1991 .
[26] Philip J. Rae,et al. The mechanical properties of poly(ether-ether-ketone) (PEEK) with emphasis on the large compressive strain response , 2007 .
[27] N. Silvestre,et al. Comparative study between XFEM and Hashin damage criterion applied to failure of composites , 2017 .
[28] Guillaume Parry,et al. Potential-based and non-potential-based cohesive zone formulations under mixed-mode separation and over-closure. Part I: Theoretical analysis , 2014 .
[29] S. Leen,et al. Damage and permeability in tape-laid thermoplastic composite cryogenic tanks , 2015 .
[30] Michael R Wisnom,et al. The role of delamination in strength, failure mechanism and hole size effect in open hole tensile tests on quasi-isotropic laminates , 2009 .
[31] S. Kurtz,et al. PEEK biomaterials in trauma, orthopedic, and spinal implants. , 2007, Biomaterials.
[32] P. D. Soden,et al. Lamina properties, lay-up configurations and loading conditions for a range of fibre reinforced composite laminates , 2004 .
[33] J. McGarry,et al. Self-tapping ability of carbon fibre reinforced polyetheretherketone suture anchors , 2014, Journal of biomaterials applications.
[34] T. Kauko,et al. Outcomes of cranioplasty with synthetic materials and autologous bone grafts. , 2015, World neurosurgery.
[35] G. Foucher,et al. A Comparison of Different Surgical Techniques in Treating Degenerative Arthrosis of the Carpometacarpal Joint of the Thumb , 1995, Journal of hand surgery.
[36] Stephen W. Tsai,et al. A General Theory of Strength for Anisotropic Materials , 1971 .
[37] L. J. Sluys,et al. Computational modeling of complex failure mechanisms in laminates , 2012 .
[38] M. Shokrieh,et al. Finite element modeling of mode I delamination growth in laminated DCB specimens with R-curve effects , 2013 .
[39] J. McGarry,et al. Cortical bone failure mechanisms during screw pullout. , 2012, Journal of biomechanics.
[40] Z. Hashin. Failure Criteria for Unidirectional Fiber Composites , 1980 .
[41] Z. Fawaz,et al. Investigation of the mechanical properties and failure modes of hybrid natural fiber composites for potential bone fracture fixation plates. , 2017, Journal of the mechanical behavior of biomedical materials.
[42] H. Schürmann,et al. FAILURE ANALYSIS OF FRP LAMINATES BY MEANS OF PHYSICALLY BASED PHENOMENOLOGICAL MODELS 1 This articl , 1998 .
[43] Toshio Nagashima,et al. Numerical simulation of progressive damage and failure in composite laminates using XFEM/CZM coupled approach , 2017 .
[44] A. D. Crocombe,et al. Strength prediction in CFRP woven laminate bolted single-lap joints under quasi-static loading using XFEM , 2014 .
[45] J. O'Connor,et al. Strain distribution within the human femur due to physiological and simplified loading: Finite element analysis using the muscle standardized femur model , 2003, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[46] Guillaume Houzeaux,et al. An XFEM/CZM implementation for massively parallel simulations of composites fracture , 2015 .
[47] Joachim L. Grenestedt,et al. Comparison of mechanical properties of glass fiber/vinyl ester and carbon fiber/vinyl ester composites , 2005 .
[48] P. Vallittu,et al. Load bearing capacity of bone anchored fiber-reinforced composite device , 2007, Journal of materials science. Materials in medicine.