TECHNICAL PAPERS
Dec 13, 2002

Strain Distribution within Geosynthetic-Reinforced Slopes

Publication: Journal of Geotechnical and Geoenvironmental Engineering
Volume 129, Issue 1

Abstract

Geosynthetic-reinforced slopes are conventionally designed using methods based on limit equilibrium. In order to estimate the factor of safety against internal stability using these methods, the distribution of the reinforcement peak tensile forces with height must be assumed. A linear distribution of reinforcement peak tension with height, with zero tension at the crest and maximum peak tension at the toe of the structure, has often been assumed. Although this assumption may be appropriate for the design of vertical geosynthetic-reinforced walls, little evidence has been collected so far justifying this distribution for the design of geosynthetic-reinforced slopes. A combination of centrifuge testing and digital image analysis is undertaken in order to obtain the strain distribution within geosynthetic-reinforced slopes under prefailure conditions. Specifically, digital image analysis techniques are used to determine the displacement distribution along reinforcement layers in reduced-scale models subjected to increasing g levels. A sigmoid function was useful to fit raw displacement data and estimate the strain distribution along reinforcement layers. Analysis of reinforcement strain results shows that the location of the reinforcement maximum peak strain does not occur near the toe of the structure, but was located approximately at midheight of the reinforced slopes, at the point along the critical failure surface directly below the crest of the slope. The pattern of reinforcement peak strain with height obtained for prefailure conditions is similar to that obtained for failure conditions. The estimated factor of safety is found to be a good indicator of the magnitude of the reinforcement maximum peak strain for geosynthetic-reinforced slopes built with different configurations.

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References

Allen, T. M., Christopher, B. R., and Holtz, R. D. (1991). “Performance of a 12.6 m high geotextile wall in Seattle, Washington.” Int. Symposium on Geosynthetic-Reinforced Soil Retaining Walls, A.A. Balkema, Rotterdam, The Netherlands, 81–100.
Arriaga, F., and Zornberg, J. G. (2000). “Reinforced soil design: Integration of digital image analysis, numerical modeling, and limit equilibrium.” Geotechnological Research Rep., Dept. of Civil, Environmental and Architectural Engineering, Univ. of Colorado at Boulder, Colo.
Barrows, R. J., and Lofgren, D. C. (1993). “Salmon-Lost Trail Pass Highway Idaho Forest Highway 30 Earth Retention Structures Report.” Geotechnological Rep. No. 20-92, FHWA, U.S. Dept. of Transportation, Washington, DC.
Bathrust, R. J. (1992). “Case study of a monitored propped panel wall.” Proc., Int. Symposium on Geosynthetic-Reinforced Soil Retaining Walls, J. T. H. Wu, ed., Denver, 159–166.
Bathrust, R. J., Karpurapu, R., and Jarrett, P. M. (1992). “Finite element analysis of a geogrid reinforced soil wall.” Grouting, Soil Improvement and Geosynthetics, ASCE, 1213–1224.
Bolton, M., Choudhury, S., and Pang, P. (1978). “Reinforced earth walls: A centrifugal model study.” Proc., Symposium on Earth Reinforcement, ASCE, Pittsburgh, 252–281.
Christopher, B. R., Bonczkiewicz, C., and Holtz, R. (1994). “Design, construction and monitoring of full scale test of reinforced soil walls and slopes.” Proc., of the Conf. on Recent Case Histories of Permanent Geosynthetic-Reinforced Soil Retaining Walls, F. Tatsuoka and D. Leshchinsky, eds., A. A. Balkema, Rotterdam, The Netherlands, 45–60.
Christopher, B. R., and Leshchinsky, D. (1991). “Design of geosynthetically reinforced slopes.” Proc., Geotechnological Engineering Congress 1991, sponsored by the Geotechnological Engineering Division of the ASCE, Boulder, Colo, 988–1005.
Collin, J. G. (1997). Design manual for segmental retaining walls, National Concrete Masonry Association, 2nd ed., Herndon, Va.
Delmas, Ph., Gourc, J. P., Blivet, J. C., and Matichard, Y. (1988). “Geotextile-reinforced retaining structures: A few instrumented examples.” Proc., Int. Geotechnological Symposium on Theory and Practice of Earth Reinforcement, Fukuoka, Japan, 511–516.
Dove, J. E., and Frost, J. D.(1999). “Peak friction behavior of smooth geomembrane-particle interfaces.” J. Geotech. Geoenviron. Eng., 125(7), 544–555.
Elias, V., Christopher, B. R., and Berg, R. R. (2001). “Mechanically stabilized earth walls and reinforced soil slopes.” Publication Number Federal Highway Administration (FHWA) NH-00-043, NHI-FHWA, Washington, DC.
Fannin, R. J., and Hermann, S. (1988). “Field behavior of two instrumented, reinforced soil slopes.” Proc., of the Int. Geotech. Symposium on Theory and Practice of Earth Reinforcement, Japan, 277–282.
Fannin, R. J., and Hermann, S.(1990). “Performance data for a sloped reinforced soil wall.” Can. Geotech. J., (27), 676–686.
Fishman, K. L., Desai, C. S., and Sogge, R. L.(1993). “Field behavior of instrumented geogrid soil reinforced wall.” J. Geotech. Eng., 119(8), 1293–1307.
Ghinelli, A., and Sacchetti, M. (1998). “Finite element analysis of instrumented geogrid reinforced slope.” Proc., 6th Int. Conf. on Geosynthetics, Atlanta, (2), 649–654.
Goodings, D. J., and Santamarina, J. C.(1989). “Reinforced earth and adjacent soils: Centrifuge modeling study.” J. Geotech. Eng., 115(7), 1021–1025.
Güler, E., and Goodings, D. J. (1992). “Centrifuge models of clay-lime reinforced soil walls.” Grouting, Soil Improvement and Geosynthetics, R. H. Borden et al., eds., Geotechnological Special Publication No. 30, ASCE, New York, (2), 1249–1260.
Gustafsson, L., and Knutsson, S.(1994). “An image analysis method for studying movement in granular and solid bodies.” Geotech. Test. J., 17(1), 95–100.
Jang, D. J., Frost, J. D., and Park, J. K.(1999). “Preparation of epoxy impregnated sand coupons for image analysis.” Geotech. Test. J., 22(2), 147–158.
Jewell, R. A.(1991). “Application of revised design charts for steep reinforced slopes.” Geotex. Geomembr., (10), 203–233.
Juran, I., and Christopher, B. R.(1989). “Laboratory model study on geosynthetic reinforced soil retaining walls.” J. Geotech. Eng., 115(7), 905–926.
Kasahara, K., Nomura, S., Kataoka, H., Arai, K., and Machihara, H. (1994). “Field instrument for constructing the retaining wall reinforced with geotextiles.” Proc. of the Conf. on Recent Case Histories of Permanent Geosynthetic-Reinforced Soil Retaining Walls, F. Tatsuoka and D. Leshchinsky, eds., 227–231.
Kemeny, J. M., Devgan, A., Hagaman, R. M., and Wu, X.(1993). “Analysis of rock fragmentation using digital image processing.” J. Geotech. Eng., 119(7), 1144–1160.
Kuo, C.-Y., and Frost, J. D.(1996). “Uniformity evaluation of cohesionless specimens using digital image analysis.” J. Geotech. Eng., 122(5), 390–396.
Kutter, B., Casey, J., and Romstad, K. (1990). “Centrifuge modeling and field observations of dynamic behavior of reinforced soil and concrete cantilever retaining walls.” Proc., Fourth U.S. National Conf. on Earthquake Engineering, Palm Springs, Calif. 663–672.
Law, H., Tohda, J., Ko, H.-Y., and Goddery, T. (1992). “Prediction of the performance of a geosynthetic-reinforced wall by centrifuge experiments.” Proc., Int. Symposium on Geosynthetic-Reinforced Soil Retaining Walls, J. T. H., Wu, ed., A. A. Balkema, Denver, 347–360.
Lee, K. L., Adams, B. D., and Vagneron, J. J.(1973). “Reinforced earth retaining walls.” J. Soil Mech. Found. Div., Am. Soc. Civ. Eng. 99(SM10), 745–764.
Leshchinsky, D., and Boedeker, R. H.(1989). “Geosynthetic reinforced soil structures.” J. Geotech. Eng., 115(10), 1459–1478.
Liang, L., Saada, A., Figueroa, J. L., and Cope, C. T.(1997). “The use of digital image processing in monitoring shear band development.” Geotech. Test. J., 20(3), 324–339.
Mahmud, M. B., and Zimmie, T. F. (1998). “Instrumentation and calibration of geotextiles used in centrifuge modeling of slopes.” Transportation Research Record 1614, Transportation Research Board, Washington, D.C., 3–7.
Miki, H., Kutara, K., Minimi, T., Nishimura, J., and Fukuda, N. (1988). “Experimental studies on the performance of polymer grid reinforced embankment.” Proc., Int. Symposium on Theory and Practice of Earth Reinforcement, Fukuoka, Japan, 431–436.
Mitchell, J. K., Jaber, M., Shen, C. K., and Hua, Z. K. (1988). “Behavior of reinforced soil walls in centrifuge model tests.” Proc., Centrifuge 88, J. F., Corte, ed., A. A. Balkema, Paris, 259–271.
Mora, C. F., Kwan, A. K. H., and Chan, H. C.(1998). “Particle size distribution analysis of coarse aggregate using digital image processing.” Cem. Concr. Res., 28(6), 921–932.
Nova-Roessig, L., and Sitar, N. (1998). “Centrifuge studies of the seismic response of reinforced soil slopes.” ASCE Geotechnichal Special Publication No. 75, Geotechnological Earthquake Engineering and Soil Dynamics III, P. Dakuolas, M. Yegian, and R. Holtz, eds., Seattle, (1), 458–468.
Obaidat, M. T., Al-Masaeid, H. R., Gharaybeh, F., and Khedaywi, T. S.(1998). “An innovative digital image analysis approach to quantify the percentage of voids in mineral aggregates of bituminous mixtures.” Can. J. Civ. Eng., (25), 1041–1049.
Porbaha, A., and Goodings, D. J.(1996). “Centrifuge modeling of geotextile-reinforced cohesive soil retaining walls.” J. Geotech. Eng., 122(10), 840–848.
Ragheb, A., and Elgamal, A. (1991). “Effects of gradual reinforcement compromise on the behavior of mechanically stabilized earth walls.” Proc., Centrifuge 91, H.-Y., Ko, and F. G., McLean, eds., Boulder, Colo., A.A. Balkema, Rotterdam, The Netherlands, 333–340.
Raschke, S. A., Hryciw, R. D., and Donohoe, G. W. (1996). “Microdeformations in sands by digital image processing and analysis.” Transportation Research Record, Transportation Research Board, Washington, D.C., 1548, 31–37.
Schmertmann, G. R., Chouery-Curtis, V. E., Johnson, R. D., and Bonaparte, R. (1987). “Design charts for geogrid-reinforced soil slopes.” Proc., Geosynthetics’87 Conf., JFAI, New Orleans, 108–120.
Thomas, T. W., White, T. D., and Kuczek, T. (1994). “Siliceous content determination of sands using automatic image analysis.” Transportation Research Record 1437, Transportation Research Board, Washington, D.C., 51–58.
Wright, S. G., and Duncan, J. M. (1991). “Limit equilibrium stability analyses for reinforced slopes.” Transportation Research Record 1330, Transportation Research Board, Washington, D.C., 40–46.
Zornberg, J. G., Barrows, R. J., Christopher, B. R., and Wayne, M. H. (1995). “Construction and instrumentation of a highway slope reinforced with high-strength geotextile.” Proc. of the Int. Conf. Geosynthetics’95, Nashville, Tenn., 13–27.
Zornberg, J. G., and Kavazanjian, E.(2001). “Prediction of the performance of a geogrid-reinforced slope founded on solid waste.” Soils Found., 41(6), 1–16.
Zornberg, J. G., and Mitchell, J. K. (1994). “Finite element prediction of the performance of an instrumented geotextile-reinforced wall.” Proc., 8th Int. Conf. of the Int. Association for Computer Methods and Advances in Geomechanics (IACMAG ’94), Morgantown, W. Va., A.A. Balkema, Rotterdam, The Netherlands, 2, 1433–1438.
Zornberg, J. G., Mitchell, J. K., and Sitar, N.(1997). “Testing of reinforced slopes in a geotechnical centrifuge.” Geotech. Test. J., 20(4), 470–480.
Zornberg, J. G., Sitar, N., and Mitchell, J. K.(1998a). “Performance of geosynthetic reinforced slopes at failure.” J. Geotech. Geoenviron. Eng., 124(8), 670–683.
Zornberg, J. G., Sitar, N., and Mitchell, J. K.(1998b). “Limit equilibrium as basis for design of geosynthetic-reinforced slopes.” J. Geotech. Geoenviron. Eng., 124(8), 684–698.

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Go to Journal of Geotechnical and Geoenvironmental Engineering
Journal of Geotechnical and Geoenvironmental Engineering
Volume 129Issue 1January 2003
Pages: 32 - 45

History

Received: Nov 8, 2001
Accepted: Apr 20, 2002
Published online: Dec 13, 2002
Published in print: Jan 2003

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Jorge G. Zornberg, M.ASCE
Assistant Professor, Univ. of Colorado at Boulder, Dept. of Civil, Environmental and Architectural Engineering, Campus Box 428, Boulder, CO 80309.
Fabiana Arriaga
Graduate Student, Univ. of Colorado at Boulder, Dept. of Civil, Environmental and Architectural Engineering, Campus Box 428, Boulder, CO 80309.

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