Nanocomposite toughness from a pull-out mechanism
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[1] P. Ajayan,et al. Application of continuously-monitored single fiber fragmentation tests to carbon nanotube/carbon microfiber hybrid composites , 2012 .
[2] H. Wagner,et al. Effect of scale and surface chemistry on the mechanical properties of carbon nanotubes‐based composites , 2012 .
[3] N. Takeda,et al. Direct measurements of interfacial shear strength of multi-walled carbon nanotube/PEEK composite using a nano-pullout method , 2011 .
[4] P. Hubert,et al. Modelling of the carbon nanotube bridging effect on the toughening of polymers and experimental verification , 2010 .
[5] H. Wagner,et al. Correlation between interfacial molecular structure and mechanics in CNT/epoxy nano-composites , 2010 .
[6] R. Young,et al. Assessment of interface damage during the deformation of carbon nanotube composites , 2010 .
[7] H. Wagner,et al. Tough nanocomposites: the role of carbon nanotube type. , 2009, Nano letters.
[8] Karl Schulte,et al. On nanocomposite toughness , 2008 .
[9] H. Wagner. Nanocomposites: paving the way to stronger materials. , 2007, Nature nanotechnology.
[10] B. Cotterell,et al. Fracture mechanisms and fracture toughness in semicrystalline polymer nanocomposites , 2007 .
[11] A. Windle. Two defining moments: A personal view by Prof. Alan H. Windle , 2007 .
[12] Tienchong Chang,et al. Nonlinear stick-spiral model for predicting mechanical behavior of single-walled carbon nanotubes , 2006 .
[13] Linda S. Schadler,et al. Fracture Transitions at a Carbon‐Nanotube/Polymer Interface , 2006 .
[14] Sidney R. Cohen,et al. Stochastic strength of nanotubes : An appraisal of available data , 2005 .
[15] Sidney R. Cohen,et al. Interfacial fracture energy measurements for multi-walled carbon nanotubes pulled from a polymer matrix , 2004 .
[16] Sidney R. Cohen,et al. Measurement of carbon nanotube-polymer interfacial strength , 2003 .
[17] R. E. Robertson,et al. Rigid-particle toughening of glassy polymers , 2003 .
[18] Sidney R. Cohen,et al. Detachment of nanotubes from a polymer matrix , 2002 .
[19] H. Wagner. Nanotube-polymer adhesion: a mechanics approach , 2002 .
[20] K. Liao,et al. Interfacial characteristics of a carbon nanotube–polystyrene composite system , 2001 .
[21] S. Fu,et al. The fibre pull-out energy of misaligned short fibre composites , 1997 .
[22] R. Young,et al. Interfacial micromechanics in thermoplastic and thermosetting matrix carbon fibre composites , 1996 .
[23] M. Piggott,et al. Shear strength of polymers and fibre composites: 1. thermoplastic and thermoset polymers , 1995 .
[24] M. Piggott,et al. Shear strength of polymers and fibre composites: 2. carbon/epoxy pultrusions , 1995 .
[25] L. Drzal,et al. THE DEPENDENCE OF INTERFACIAL SHEAR STRENGTH ON MATRIX AND INTERPHASE PROPERTIES , 1991 .
[26] Y. Mai,et al. High strength, high fracture toughness fibre composites with interface control—A review , 1991 .
[27] W. Pompe,et al. THEORETICAL CONSIDERATIONS O TOUGHNESS OF SHORT-FIBR-REINFORCD THRMOPLASTICS , 1990 .
[28] J. P. Bell,et al. Interfacial shear strength and failure modes of interphase-modified graphite-epoxy composites , 1989 .
[29] L. Lavielle,et al. The Role of the Interface in Carbon Fibre-Epoxy Composites , 1987 .
[30] W. Pompe,et al. Fracture toughness of short-fibre reinforced thermoplastics , 1986 .
[31] B. Lauke,et al. Calculation of fracture work of short-glass-fibre reinforced polythylene for static and dynamic loading rates , 1986 .
[32] B. Lauke,et al. Contribution to the micromechanical interpretation of fracture work of short-fibre-reinforced thermoplastics , 1985 .
[33] L. Drzal,et al. Adhesion of Graphite Fibers to Epoxy Matrices: II. The Effect of Fiber Finish , 1983 .
[34] L. Drzal,et al. Adhesion of Graphite Fibers to Epoxy Matrices: I. The Role of Fiber Surface Treatment , 1983 .
[35] B. Lauke,et al. Deformation behaviour of short-fibre reinforced materials with debonding interfaces , 1983 .
[36] A. Atkins. Intermittent bonding for high toughness/ high strength composites , 1975 .
[37] A. Kelly. Interface effects and the work of fracture of a fibrous composite , 1970, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[38] A. Kelly,et al. Tensile properties of fibre-reinforced metals: Copper/tungsten and copper/molybdenum , 1965 .
[39] A. Kelly. The strengthening of metals by dispersed particles , 1964, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.