TECHNICAL PAPERS
Sep 1, 1997

Evaluation of Crack Propagation Properties of Asphalt Mixtures

Publication: Journal of Transportation Engineering
Volume 123, Issue 5

Abstract

Current failure criteria of asphalt pavements are either empirical or assume linear elastic material response and use a single load level to relate the number of load repetitions to fatigue failure. To better understand the crack propagation properties of asphalt pavements, laboratory tests and nonlinear analysis were performed to evaluate the low-temperature fracture parameters of conventional asphalt concrete and asphalt-rubber mixture. Two approaches based on nonlinear fracture mechanics, the compliance approach and the R-Curve approach, were used. Beam specimens were prepared with different binder contents and tested under three-point bending flexural conditions at two test temperatures. A closed-loop servohydraulic test system was used with the crack mouth opening as the control parameter. Nonlinear fracture parameters were obtained at different stages of crack propagation. Results show that the asphalt-rubber mixture has higher fracture toughness and consequently larger resistance to cracking than asphalt concrete. Also, the asphalt-rubber mixture is less sensitive to temperature than asphalt concrete. Increasing the binder content increased the toughness values for both asphalt concrete and asphalt-rubber mixture in most cases. The R-Curve approach provides a good measure of characterizing the fracture behavior of asphalt mixtures.

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References

1.
Abdulshafi, A. A. (1983). “Rational material characterization of asphaltic concrete pavements,” PhD dissertation, The Ohio State University, Columbus, Ohio.
2.
Abdulshafi, A. A., and Majidzadeh, K. (1985). “J-integral and cyclic plasticity approach to fatigue and fracture of asphalt mixes.”Transp. Res. Rec. 1034.
3.
Beaty, K. L. (1993). “Fracture properties of asphalt concrete using modified binders,” MS thesis, Dept. of Civ. Engrg., Arizona State University, Tempe, Ariz.
4.
Shah, S. P.(1990). “Determination of fracture parameters (KsIC and CTODc) of plain concrete using three-point bend test.”Mat. Struct., 23, 457–460.
5.
Foote, M. L., Mai, Y. W., and Cotterell, B. (1986). J. of Mech. Phys. Solids, 34(6), 593–607.
6.
Germann, F. P., and Lytton, R. L. (1979). “Methodology for predicting the reflection cracking life of asphalt concrete overlays.”Rep. FHWA/TX79/09+207-5, Federal Highway Administration, College Station, Tex.
7.
Hoyt, D. M., Lytton, R. L., and Roberts, F. L. (1987). “Criteria for asphalt-rubber concrete in civil airport pavements. II: Evaluation of asphalt-rubber concrete.”Rep. DOT/FAA/PM-86/39.11, Federal Aviation Administration, College Station, Tex.
8.
Hsueh, C. H., and Becher, P. F. (1988). J. Am. Ceramic Soc., 71(5), 234–237.
9.
Jenq, Y. S., and Perng, J. D. (1992). “Analysis of crack propagation in asphalt concrete using cohesive crack model.”Transp. Res. Rec. 1317, 90–99.
10.
Jenq, Y. S., and Shah, S. P.(1985). “A two parameter fracture model for concrete.”J. Engrg. Mech., ASCE, 111(10), 1227–1241.
11.
Lenain, J. C., and Bunsell, A. R. (1979). J. of Mat. Sci., 14, 312–332.
12.
Mai, Y. W.(1979). “Strength and fracture properties of asbestos-cement mortar composites.”J. Mat. Sci., 14, 2091–2102.
13.
Mai, Y. W.(1984). “Slow crack growth in cellulose fiber cements.”J. Mat. Sci., 19, 501–508.
14.
Majidzadeh, K. et al. (1976). “Application of fracture mechanics for improved design of bituminous concrete.”Rep. FHWA-RD-76-91, Vols. 1 and 2, Federal Highway Administration, Washington, D.C.
15.
Ouyang, C., Mobasher, B., and Shah, S. P.(1990). “An R-curve approach for fracture of quasi-brittle materials.”Engrg. Fracture Mech., 37, 901–913.
16.
Sakai, M., and Bradt, R. C. (1986). “Graphical methods for determining the nonlinear fracture parameters of silica and graphite refractory composites.”Fracture mechanics of ceramics, Vol. 7, R. C. Bradt, A. G. Evans, D. P. H. Hassleman, and F. F. Lange, eds., Plenum Publishing Corp., New York, N.Y., 127–42.
17.
Sakai, M., Yoshimura, J., Goto, Y., and Inagaki, M. (1979). J. Am. Ceramic Soc., 71(8), 609–616.
18.
Schapery, R. A.(1975a). “A theory of crack initiation and growth in viscoelastic media. I: Theoretical development.”Int. J. Fracture, 11(1), 141–159.
19.
Schapery, R. A.(1975b). “A theory of crack initiation and growth in viscoelastic media. II: Approximate methods of analysis.”Int. J. Fracture, 11(3), 369–387.
20.
Wecharatana, M., and Shah, S. P.(1983). “Predictions of nonlinear fracture process zone in concrete.”J. Engrg. Mech., ASCE, 109(5), 1231–1245.

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Published In

Go to Journal of Transportation Engineering
Journal of Transportation Engineering
Volume 123Issue 5September 1997
Pages: 405 - 413

History

Published online: Sep 1, 1997
Published in print: Sep 1997

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Authors

Affiliations

Barzin Mobasher, Associate Member, ASCE,
Assoc. Prof., Dept. of Civ. and Envir. Engrg., Arizona State Univ., Tempe, AZ 85287.
Michael S. Mamlouk, Fellow, ASCE,
Prof., Dept. of Civ. and Envir. Engrg., Arizona State Univ., Tempe, AZ.
How-Ming Lin
Former Res. Asst., Dept. of Civ. and Envir. Engrg., Arizona State Univ., Tempe, AZ.

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