Page 71 - Fiber Fracture
P. 71
56 M. Elices and J. Llorca
Poza, P., Perez-Rigueiro, J., Elices, M. and Llorca, J. (2002) Fractographic analysis of silkworm and spider
silk. Eng. Fract. Mech., 69: 1035-1048.
Proctor, B.A., Whitney, I. and Johnson, J.W. (1967) The strength of fused silica. Proc. R. SOC. A, 297:
534-557.
Renuart, E. and Viney, C. (2000) Biological fibrous materials. In: Structural Biological Materials, pp.
221-267, M. Elices (Ed.). Pergamon Press, Oxford.
Reynolds, W.N. and Moreton, R. (1980) Some factors affecting the strengths of carbon fibres. Philos. Trans.
R. SOC. A, 294 451461.
Rice, J.R. and Tracey, D.M. (1969) On the ductile enlargement of voids in triaxial stress fields. J. Mech.
Phys. Solids, 17: 201-217.
Sandulova, A.V., Bogoyavlenskii, P.S. and Dronyuk, M.I. (1964) Preparation and some properties of whisker
and needle-shaped single crystals of germanium, silicon and their solid solutions. Sov. Phys. Solid Stare,
5(9): 1883-1888.
Smook, J., Hamersma, W. and Pennings, A.J. (1984) The fracture process of ultra-high strength polyethylene
fibres. J. Mater: Sci., 19 1359-1373.
Sneddon, 1.N. and Tait, R.J. (1963) The effect of a penny-shaped crack on the distribution of stress in a long
circular cylinder. Int. J. Eng. Sci., 1: 391-409.
Soltis, P.J. (1965) Anisotropy in tensile properties of submicron-size sapphire (A1202) whiskers. Bull. Am.
Phys. Soc., 10: 163.
Soules, T.F. and Busbey, R.F. (1983) The rhelogical properties and fracture of a molecular dynamic
simulation of sodium silicate glass. J. Chem. Phys., 78: 6307-6316.
Tada, H., Paris, P. and Irwin, G.R. (1985) The Stress Analysis of Cracks Handbook. Paris Prod. Inc., St.
Louis, MO.
Termonia, Y. (2000) Computer model for the mechanical properties of synthetic and biological polymer
fibers. In: Srructural Biological Materials, pp. 271-291, M. Elices (Ed.). Pergamon Press, Oxford.
Termonia, Y., Meakin, P. and Smith, P. (1985) Theoretical study of the influence of the molecular weight on
the maximum tensile strength of polymer fibers. Macromolecules, IS: 2246-2252.
Termonia, Y., Meakin, P. and Smith, P. (1986) Theoretical study of the influence of strain rate and
temperature on the maximum strength of perfectly ordered and oriented polyethylene. Macromolecules,
19: 154-159.
Thomason, P.F. (1990) Ductile Fracture of Metals. Pergamon Press, Oxford.
Tvergaard, V. and Needleman, A. (1984) Analysis of the cup-cone fracture in a round tensile bar. Acta
Metall., 32 157-169.
Vega-Boggio, J. and Vingsbo, 0. (1976) Application of Griffith criterion to fracture of boron fibers. J. Mater:
Sci., 11: 2242-2246.
Vega-Boggio, J., Vingsbo, 0. and Carlsson, J.O. (1977) The initial stages of growth and the origin of
proximate voids in boron fibres. J. Mater: Sci., 12: 1750-1758.
Viney, C. (2000) Silk fibers: origins, nature and consequences of structure. In: Structural Biological
Materials, pp. 293-333, M. Elices (Ed.). Pergamon Press, Oxford.
Wang, J.L., Pamianpour, M., Shirazi-Ade, A. and Engin, A.E. (1997) Failure criterion of collagen fiber.
Theor: Appl. Fract. Mech., 27: 1-12.
Waterbury, M.C. and Drzal, L.T. (1991) On the determination of fiber strengths by in-situ fiber strength
testing. J. Compos. Technol. Res., 13: 22-28.
Wawner, F.E. (1988) Boron and silicon carbide/carbon fibers. In: Fibre Reinfurcements fur Cumpusite
Materials, pp. 37 1-425, A.R. Bunsell (Ed.). Elsevier, Amsterdam.
Whitlock, J. and Ruoff, A.L. (1981) The failure strengths of perfect diamond crystals. Scr Metall, 15:
525-529.
Wilks, J. and Wilks, E. (1991) Propetties and Applications of Diamond. Buttcrworth-Hcincmann, London.
Wortmann, F.J. and Zahn, H. (1994) The stress-strain curve of a-keratin fibers and the structure of the
intermediate filament. Textile Res. J., 64( 12): 737-743.
Yoon, H.N. (1990) Strength of fibers from wholly aromatic polyesters. Colloid Polym. Sci., 268: 230-239.
Yu, M.F., Files, B.S., Arepalli, S. and Ruoff, R.S. (2000) Tensile loading of ropes of single wall carbon
nanotubes and their mechanical properties. Phys. Rev. Len, 84(24): 5552-5555.