O. Allix, Mémoire d'habilitation.à diriger des recherches Paris VI, 1992.

G. Bao and Z. Suo, Remarks on Crack-Bridging Concepts, Applied Mechanics Reviews, vol.45, issue.8, pp.355-366, 1992.
DOI : 10.1115/1.3119764

M. L. Benzeggagh, X. J. Gong, A. Laksimi, and J. M. Et-roelandt, fth NRCC/IMI symposium "Composites -90". On the mode I delamination test and the importance of laminates lay-ups, 1992.

L. A. Carlsson, J. W. Gillespie, and R. B. Pipes, On the Analysis and Design of the End Notched Flexure (ENF) Specimen for Mode II Testing, Journal of Composite Materials, vol.27, issue.679, pp.594-604, 1986.
DOI : 10.1520/STP36314S

S. N. Chatterjee, Analysis of Test Specimens for Interlaminar Mode II Fracture Toughness, Part 1. Elastic Laminates, Journal of Composite Materials, vol.14, issue.5, pp.470-493, 1991.
DOI : 10.1177/073168448600500302

L. J. Ghosn, P. Kantzos, and J. Telesman, Modeling of crack bridging in a unidirectional metal matrix composite, International Journal of Fracture, vol.24, issue.4, pp.345-357, 1992.
DOI : 10.1007/BF00035108

X. J. Gong, M. L. Benzeggagh, A. Laksimi, and J. M. Et-roelandt, Characterization of mode I, mode II and mixed mode I+II delamination failure in multidirectional laminates for glass/epoxy, 1991.

X. N. Huang and D. Hull, Effects of fibre bridging on GIC of a unidirectional glass/epoxy composite, Composites Science and Technology, vol.35, issue.3, pp.283-299, 1989.
DOI : 10.1016/0266-3538(89)90040-7

M. S. Madhukar and L. T. Drzal, Fiber-Matrix Adhesion and Its Effect on Composite Mechanical Properties: I. Inplane and Interlaminar Shear Behavior of Graphite/Epoxy Composites, Journal of Composite Materials, vol.2, issue.8, pp.932-957, 1991.
DOI : 10.1177/073168448900800605

M. S. Madhukar and L. T. Drzal, Fiber-Matrix Adhesion and Its Effect on Composite Mechanical Properties: II. Longitudinal (0??) and Transverse (90??) Tensile and Flexure Behavior of Graphite/Epoxy Composites, Journal of Composite Materials, vol.25, issue.8, pp.958-991, 1991.
DOI : 10.1080/00218468308074911

H. Maikuma, J. W. Gillespie, and J. M. Whitney, Analysis and Experimental Characterization of the Center Notch Flexural Test Specimen for Mode II Interlaminar Fracture, Journal of Composite Materials, vol.3, issue.8, pp.756-785, 1989.
DOI : 10.1520/STP24383S

G. Meda and P. S. Steif, Analysis of a Crack Bridged by a Single Fiber, Journal of Applied Mechanics, vol.59, issue.3, pp.524-529, 1992.
DOI : 10.1115/1.2893755

J. J. Gallagher, Étude de la fissuration d'un composite unidirectionnel verre-résine Nicholls D, J. Rein. Plas. Comp, vol.2, issue.2, p.17, 1983.

D. C. Phillips and G. M. Wells, The stability of transverse cracks in fibre composites, Journal of Materials Science Letters, vol.9, issue.8, pp.321-324
DOI : 10.1007/BF00726475

R. M. Pradeilles, lWz Thèse à l'École Polytechnique Évolution de systèmes avec surfaces de discontinuités mobiles

L. R. Rose, A crack plate repaired by bonded reinforcements Rose L. R. F. l9E7, Int J. Frac. . J. Mech. Phys. Solids, vol.18, issue.135, p.35, 1982.

B. Storakers, NONLINEAR ASPECTS OF DELAMINATION IN STRUCTURAL MEMBERS, pp.315-336, 1989.
DOI : 10.1016/B978-0-444-87302-6.50026-0

V. Tvergaard and J. W. Hutchinson, The relation between crack growth resistance and fracture process parameters in elastic-plastic solids, Journal of the Mechanics and Physics of Solids, vol.40, issue.6, pp.1377-1397, 1992.
DOI : 10.1016/0022-5096(92)90020-3

A. De-calculer, L. Sollj-'ilon, E. Les-coefficients-cr, F. , T. et al., FRAcTLE écriture de l'équation différenûelle et des conditions limiaes eqdif: =(D @ a) (v)(x)+a*1,^4*v(x)=0: cll:=v(a)=0: çll;=(D@ @ lXvXa)=O: .13 ; =(D @ @ 2XvXm)=f*rnl(e*iner) : cl4: -(D @ @ 3)(vXm)=f/(e*iner) : résolution de l'équation différentielle dsolve( { eqdif, distribuaed, [c h(]v*x), pp.2-3

M. Permettant, D. Calculer, M. Ct, C. Dans-différents, . Ii et al., = Nl=Al*el+Bl*kl: egZ:.= M1=81*el+D1*kl: solu I :-(solve( { eq1,eq2 },{ e I "kl } : assign:=(solul): eQ3:= N2=A2*e2+82*k2: eq4:= M2=B.2*e2+D2*A: rslu/;=(solve( { eq3,eq 4l,le2k2l : assign:=(solu2): eg5, p.0

D. La, Mmd22 eql I := N lP=Al *el2p+B 1*k12p: eq 12:= M 1P=B I *el2p+Dl *kl2p: scitul 2p:=lsotve( { eq li,qt2l,l?t2p,k 1 2p } : assign:=(solu l2p): eQ 1 3 : = N 2P=A2*e22p+82*k22p: eq I 4 : = M2P =82* e22p+D2*k22p: so1u22 p : =(solve( { eq I 3,e41 41, le22p t32p | : assign:=(soluZ2p): eq I 5 : =M 1 p+M2p+N, Une modélisation des ponts de fibres pour le délaminage des mat&iaux composites 135 DETERMINATIONMmd22 } ), pp.12-22

M. M. Le-cas-m, . Avec, . De-la-solution, and . Vo, -(D@ @aXvO)(x){: t1 1vg;=(D @ @ 3Xv0Xa)=-fl(e*iner0): .12yQ' =(D @ @ 2)(v0Xa)=f*a/(e+iner0) : .13y9;=(D@ @ lXvOXL){: .14y9;=(v0XL)=0: sysvO:= { eqdifvO,cl I v0, Une modélisation des ponts de fibnes pour le délaminage des matériaux composites t36 8.6. ANI\EXE 6 PROGRAMME))) : vo:=y ->(subs(x=y,v0(x)): vop:=D(vo): vopp:=D(vop): uo:=x -> 0: uop:=D(uO)