Computational Simulation and Experimental Results on 3D Crack Growth in a 3PB-Specimen with an Inclined Crack Plane

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Periodical:

Key Engineering Materials (Volumes 251-252)

Edited by:

F.-G. Buchholz, H.A. Richard, M.H. Aliabadi

Pages:

85-90

Citation:

F. G. Buchholz et al., "Computational Simulation and Experimental Results on 3D Crack Growth in a 3PB-Specimen with an Inclined Crack Plane", Key Engineering Materials, Vols. 251-252, pp. 85-90, 2003

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October 2003

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[2] Schöllmann, M., Kullmer, G., Fulland, M., Richard, H.A.: A New Criterion for 3D Crack Growth under Mixed-Mode (I+II+III) Loading. In: Proceed. of the 6th Int. Conf. on Biaxial/Multiaxial Fatigue and Fracture, Vol. II, M. Moreira de Freitas(Ed. ), Edt. by Instituto Superior Technico, Lisboa (2001).

[3] Pook, L. P.: Linear Elastic Fracture Mechanics for Engineers. WIT-Press, Southampton, (2000).

[4] Erdogan, F. and Ratwani, M.: Int. J. Frac. Mech 6 (1970), No. 4, 379-392.

[5] Rybicki, E.F., Kanninen, M.F.: A finite element calculation of stress intensity factors by a modified crack closure integral. Engng. Fract. Mech. 9 (1977), 931-938.

DOI: https://doi.org/10.1016/0013-7944(77)90013-3

[6] Buchholz, F. -G., Grebner, H., Dreyer, K.H., Krome, H.: 2D- and 3D-Applications of the Improved and Generalized MCCI-Method. In: Computational Mechanics 88, Vol. 1, S.N. Atluri et al. (Eds. ), Springer Verl., New York (1988), 14. i. 1-14. i. 4.

DOI: https://doi.org/10.1007/978-3-642-61381-4_94

[7] Buchholz, F. -G.: Finite Element Analysis of a 3D Mixed-Mode Fracture Problem by VCCIMethods. In: Fracture Mechanics, A.V. Krishna Murthy, F. -G. Buchholz (Eds. ), Interline Publ., Bangalore (1994), 7-12.

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