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168               Engineered  interfaces in fiber  reinforced  composites
                   Nairn, J.A. (1992). Variational mechanics  analysis of the  stresses around  breaks  in  embeddcd  fibers.
                      Mech. Mater. 13, 131-157.
                   Outwater, J.D. and  Murphy, M.C. (1969). On the fracture energy of unidirectional  laminates.  In 24th
                      Annual  Tech. Conf: Reinforced Plast. Composites Inst. SPI, New York, Paper  1 IC.
                   Pally, I. and Stevens, D. (1989). A  fracture mechanics approach to the single fiber pull-out  problem as
                      applied  to the evaluation of  the  adhesion  strength between the  fiber and  the matrix. Adhesion Sci.
                      Technol. 3, 141-153.
                   Piggott,  M.R. (1980). Load Bearing Fiber Composites, Pergamon Press, Oxford, Ch. 5.
                   Piggott, M.R. (1987). Debonding and friction at fiber-polymer interface. I: Criteria for failure and sliding.
                      Composites Sei.  Technol. 30, 295-306.
                   Piggott, M.R. (1990). Tailored interphases in fiber reinforced polymers. in Interfaces in Composites, Mat.
                      Res. Soc. Symp. Proc., Vol. 170 (C.G. Pantano and E.J.H. Chen, eds.), MRS, Pittsburgh, PA, pp. 265-
                      274.
                   Povirk,  G.C. and  Needleman,  A. (1993). Finite  element  simulations  of  fiber pull-out. J. Eng.  Mater.
                      Technol. 115, 286-291.
                   Qiu, Y. and  Schwartz,  P. (1991). A  new method for study  of  the fiber-matrix interface  in  composites:
                      single fiber pull-out from a microcomposite. J. Adhesion Sci. Technol. 5, 741-756.
                   Rosen, B.W. (1964). Tensile failure of fibrous composites. AIAA J. 2,  1985-1991.
                    Rosen, B.W. (1965). Mechanics  of  composite strengthening.  In  Fiber  Composite  Materials,  American
                      Society for Metals, Metal Park, OH, pp. 37-75.
                    Russel, W.B. (1973). On the effective moduli of composite materials: effect of fiber length and geometry at
                      dilute concentrations. J. Appl. Math. Phys. (ZAMP) 24, 581-599.
                    Shetty, D.K.  (1988). Shear-lag  analysis  of  fiber push-out (indentation) tests  for estimating  interfacial
                      friction stress in ceramic-matrix composites. J. Am. Ceram. Soc. 71, C.107-109.
                    Sigl, L.S. and Evans, A.G. (1989). Effects of residual stress and frictional sliding on cracking and pull-out
                      in brittle matrix composites. Mech. Mater. 8, 1-12.
                    Singh, R.N. and Sutcu, M. (1991). Determination of fiber-matrix interfacial properties in ceramic-matrix
                      composites by  a fiber push-out technique. J. Mater. Sei. 26, 2547-2556.
                    Stang, H. and Shah, S.P. (1986). Failure of fiber-reinforced composites by pull-out fracture. J. Mater. Sci.
                      21, 953-957.
                    Sternberg, E. and Muki, R. (1970). Load-absorption by a filament in a fiber-reinforced material. J. Appl.
                      Math. Phys. (ZAMP) 21, 552-569.
                    Takaku, A. and Arridge, R.G.C. (1973). The effect of interfacial radial and shear stress on fiber pull-out in
                      composite materials. J. Phys. D: Appl. Phys. 6, 2038-2047.
                    Termonia, Y. (1987). Theoretical study of the stress transfer in single fiber composites. J. Mater. Sei. 22,
                      2 10-2 14.
                    Termonia, Y. (1992). Effect of strain rate on the mechanical properties of composites with a weak fiber/
                      matrix interface, J. Mater. Sei. 27, 48784882.
                    Tsai, H.C., Arocho, A.M. and Cause, L.W. (1990). Prediction of fiber-matrix  interphase properties and
                      their influence on interface stress, displacement and fracture toughness of composite materials. Mater.
                      Sci. Eng. A  126, 295-304.
                    van  der  Zwaag,  S.  (1989).  The  concept  of  filament  strength  and  the  Weibull  modulus.  J.  Tesf.
                      Eval.(JTEVA) 17, 292-298.
                    Waren, P.P., Mackin, T.J. and Evans, A.G. (1992). Design, analysis and application of an improved push-
                      though  test  for the  measurement  of  interfacial  properties  on composites.  Acta. Metall.  Mater.  40,
                      1243-1249.
                    Weibull, W. (1951). A  statistical distribution function of wide applicability. J. Appl. Mech. 18, 293-297.
                    Wells, J.K. and Beaumont, P.W.R. (1985).  Debonding and pull-out  processes in  fibrous composites. J.
                      Mater. Sci. 20,  1275-1284.
                    Whitney, J.M. and Drzal, L.T. (1987). Axisymmetric stress distribution around an isolated fiber fragment.
                      In Toughened Composites, ASTM STP 937, (N.J. Johnston ed.) ASTM, Philadelphia, PA, pp. 179-196.
                    Wu, H.F. and  Claypool, C.M. (1991). An  analytical  approach  of  the  microbond test  method  used  in
                      characterizing  the fiber-matrix interface. J. Mater. Sei. Lett. 10, 260-262.
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