TECHNICAL PAPERS
Apr 1, 1984

Size Effect in Blunt Fracture: Concrete, Rock, Metal

Publication: Journal of Engineering Mechanics
Volume 110, Issue 4

Abstract

The fracture front in concrete, as well as rock, is blunted by a zone of microcracking, and in ductile metals by a zone of yielding. This blunting causes deviations from the structural size effect known from linear elastic fracture mechanics (LEFM). The size effect is studied first for concrete or rock structures, using dimensional analysis and illustrative examples. Fracture is considered to be caused by propagation of a crack band that has a fixed width at its front relative to the aggregate size. The analysis rests on the hypothesis that the energy release caused by fracture depends on both the length and the area of the crack band. The size effect is shown to consist in a smooth transition from the strength criterion for small sizes to LEFM for large sizes, and the nominal stress σN at failure is found to decline as (1+λ/λ0)-1/2 in which λ0=constant and λ=relative structure size. This function is verified by Walsh's test data. If reinforcement is present at the fracture front and behaves elastically, the decline of σN is of the same type but is shifted to larger sizes; however, if the reinforcement yields, the decline of σN stops. It is also noted that some known size effects which have been attributed to random strength variations within the structure should be explained by fracture mechanics, which gives a very different extrapolation to large structures. Finally, exploiting the fact that in metals the size of the yielding zone at the fracture front is approximately constant, it is shown by dimensional analysis that elastic‐plastic fracture causes a similar size effect.

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References

1.
Barenblatt, G. I., “Similarity, Self‐Similarity and Intermediate Asymptotics,” Consultants Bureau (Plenum Publ. Corp.) New York, N.Y., 1979 (transl. from Russian).
2.
Bažant, Z. P., “Crack Band Model for Fracture of Geomaterials,” Proc., 4th International Conference of Numerical Methods in Geomechanics, Z. Eisenstein, ed., Edmonton, Alberta, May, 1982, Vol. 3, pp. 1137–1152.
3.
Bažant, Z. P., “Instability, Ductility and Size Effect in Strain‐Softening Concrete,” Journal of the Engineering Mechanics Division, ASCE, Vol. 102, No. EM2, Apr., 1976, pp. 331–344.
4.
Bažant, Z. P., “Mechanics of Fracture and Progressive Cracking in Concrete Structures,” Report No. 83‐2/428m, Center for Concrete and Geomaterials, Northwestern Univ., Evanston, Ill., Feb., 1983.
5.
Bažant, Z. P., and Cedolin, L., “Blunt Crack Band Propagation in Finite Element Analysis,” Journal of the Engineering Mechanics Division, ASCE, Vol. 105, No. EM2, Proc. Paper 14529, Apr., 1979, pp. 297–315.
6.
Bažant, Z. P., and Cedolin, L., “Fracture Mechanics of Reinforced Concrete,” Journal of the Engineering Mechanics Division, ASCE, Vol. 106, No. EM6, Proc. Paper 15917, Dec., 1980, pp. 1287–1306;
with Discussion and Closure in Vol. 108, EM2, 1982, pp. 464–471.
7.
Bažant, Z. P., and Cedolin, L., “Finite Element Modeling of Crack Band Propagation,” Journal of Structural Engineering, ASCE, Vol. 109, No. ST2, Feb., 1983, pp. 69–92.
8.
Bažant, Z. P., and Kim, J. K., “Fracture Analysis of Diagonal Shear Failure of Concrete Beams,” Report No. 83–5/4285, Center for Concrete and Geo‐materials, Northwestern Univ., Evanston, Ill., May, 1983, (also American Concrete Institute Journal, in press).
9.
Bažant, Z. P., and Oh, B. H., “Rock Fracture via Stress Strain Relations,” Report No. 82‐11/665r, Center for Concrete and Geomaterials, Northwestern Univ., Evanston, Ill., Nov., 1982.
10.
Bažant, Z. P., and Oh, B. H., “Deformations of Cracked Reinforced Concrete Beams,” American Concrete Institute Journal, Vol. 80, 1983.
11.
Bažant, Z. P., and Oh, B. H., “Crack Band Theory for Fracture of Concrete,” Materials and Structures, (RILEM, Paris), Vol. 16, 1983, pp. 155–177.
12.
Brown, J. H., “Measuring the Fracture Toughness of Cement Paste and Mortar,” Magazine of Concrete Research, Vol. 24, No. 81, Dec., 1972, pp. 185–196.
13.
“Building Code Requirements for Reinforced Concrete,” ACI Standard 318–377, American Concrete Institute, Detroit, Mich., 1977.
14.
Carpinteri, A., “Experimental Determination of Fracture Toughness Parameters KIC and JIC for Aggregative Materials,” Advances in Fracture Research, (Proc., 5th International Conference on Fracture, Cannes, France, 1981) D. François, ed., Vol. 4, pp. 1491–1498.
15.
Carpinteri, A., “Static and Energetic Fracture Parameters for Rocks and Concretes,” Report, Istituto di Scienza delle Costruzion‐Ingegneria, University of Bologna, Italy, 1980.
16.
CEB‐FIP Model Code for Concrete Structures, Comité Eurointernational du Béton, CEB Bulletin No. 124/125‐E, Paris, 1978.
17.
Cedolin, L., and Bažant, Z. P., “Fracture Mechanics of Crack Bands in Concrete,” Fracture Mechanic Methods for Ceramics, Rocks and Concrete, S. W. Freiman and E. P. Fuller, eds., Am. Soc. for Testing Materials STP745, 1981, pp. 221–236.
18.
Entov, V. M., and Yagust, V. I., “Experimental Investigation of Laws Governing Quasi‐Static Development of Macrocracks in Concrete,” Mechanics of Solids, (Translation from Russian), Vol. 10, No. 4, 1975, pp. 87–95.
19.
Gjørv, O. E., Sørensen, S. I., and Arnesen, A., “Notch Sensitivity and Fracture Toughness of Concrete,” Cement and Concrete Research, Vol. 7, 1977, pp. 333–344.
20.
Hillerborg, A., Modéer, M., and Peterssson, P. E., “Analysis of Crack Formation and Crack Growth in Concrete by Means of Fracture Mechanics and Finite Elements,” Cement and Concrete Research, Vol. 6, 1976, pp. 773–782.
21.
Huang, C. M. J., “Finite Element and Experimental Studies of Stress Intensity Factors for Concrete Beams,” thesis presented to Kansas State University, in 1981, in partial fulfillment of the requirements for the degree of Doctor of Philosophy.
22.
Kaplan, M. F., “Crack Propagation and the Fracture of Concrete,” American Concrete Institute Journal, Vol. 58, No. 11, Nov., 1961.
23.
Kesler, C. E., Naus, D. J., and Lott, J. L., “Fracture Mechanics—Its Applicability to Concrete,” International Conference on the Mechanical Behavior of Materials, Kyoto, Aug., 1971.
24.
Kfouri, A. P., and Miller, K. J., “Stress Displacement, Line Integral and Closure Energy Determinations of Crack Tip Stress Intensity Factors,” Int. Journal of Pres. Ves. and Piping, Vol. 2, No. 3, July, 1974, pp. 179–191.
25.
Kfouri, A. P., and Rice, J. R., “Elastic/Plastic Separation Energy Rate for Crack Advance in Finite Growth Steps,” in Fracture 1977, (Proceedings, 4th International Conference on Fracture), D. M. R. Taplin, ed., University of Waterloo Press, Vol. 1, 1977, pp. 43–59.
26.
Knauss, W. C., “On the Steady Propagation of a Crack in a Viscoelastic Sheet; Experiments and Analysis,” The Deformation in Fracture High Polymers, H. H. Kausch, ed., Plenum Press, 1974, pp. 501–541.
27.
Knott, J. F., Fundamentals of Fracture Mechanics, Butterworths, London, England, 1973.
28.
Mindess, S., “The Application of Fracture Mechanics to Cement and Concrete: A Historical Review,” Chapter in State‐of‐the‐Art Report of RILEM Technical Committee 50‐FMD, (chaired by F. H. Wittmann), to be published.
29.
Mindess, S., Lawrence, F. V., and Kesler, C. E., “The J‐Integral As a Fracture Criterion for Fiber Reinforced Concrete,” Cement and Concrete Research, Vol. 7, 1977, pp. 731–742.
30.
Naaman, A. E., Prestressed Concrete Analysis and Design, McGraw Hill, New York, N.Y., 1982.
31.
Naus, D. J., “Applicability of Linear‐Elastic Fracture Mechanics to Portland Cement Concretes,” thesis presented to the University of Illinois at Urbana‐Champaign, Ill., in 1971, in partial fulfillment of the requirements for the degree of Doctor of Philosophy.
32.
Nilson, A. H., Design of Prestressed Concrete, John Wiley & Sons, Inc., New York, N.Y., 1978.
33.
Petersson, P. E., “Crack Growth and Development of Fracture Zones in Plain Concrete and Similar Materials,” thesis presented to the Lund Institute of Technology, at Lund, Sweden, in 1981, in partial fulfillment of the requirements for the degree of Doctor of Philosophy.
34.
Rice, J. R., “Elastic‐Plastic Fracture Mechanics,” Mechanics of Fracture, Symposium at ASME Winter Annual Meeting, New York, ASCE AMD, Vol. 19, 1976, pp. 23–53.
35.
Shah, S. P., and McGarry, F. J., “Griffith Fracture Criterion and Concrete,” Journal of the Engineering Mechanics Division, ASCE, Vol. 97, No. EM6, Proc. Paper 8597, Dec., 1971, pp. 163–1676.
36.
Sok, C., Baron, J., and François, D., “Mécanique de la Rupture Appliquée au Béton Hydraulique,” Cement and Concrete Research, Vol. 9.
37.
Swartz, S. E., Hu, K. K., Fartash, M., and Huang, C. M. J., “Stress Intensity Factors for Plain Concrete in Bending—Prenotched Versus Precracked Beams,” Report, Department of Civil Engineering, Kansas State Univ., Kansas, 1981.
38.
Walsh, P. F., “Fracture of Plain Concrete,” The Indian Concrete Journal, Vol. 46, No. 11, Nov., 1979, pp. 469–470, and 476.
39.
Winter, G., and Nislon, A. H., Design of Concrete Structures, 9th ed., McGraw Hill, New York, N.Y., 1979.
40.
Wnuk, M. P., “Quasi‐Static Extension of a Tensile Crack Contained in Viscoelastic Plastic Solid,” Journal of Applied Mechanics, ASME, Vol. 41, 1974, No. 1, pp. 234–248.

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Go to Journal of Engineering Mechanics
Journal of Engineering Mechanics
Volume 110Issue 4April 1984
Pages: 518 - 535

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Published online: Apr 1, 1984
Published in print: Apr 1984

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Zdeněk P. Bažant, F. ASCE
Prof. of Civ. Engrg. and Dir., Center for Concrete and Geomaterials, Northwestern Univ., Evanston, Ill. 60201

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