Geosynthetic-reinforced retaining (GRR) walls typically have vertical reinforcement spacing of 0·6 m, and this relatively large spacing has been known to cause comparatively high connection forces. To reduce this connection force, short geosynthetic reinforcement layers (referred to as secondary reinforcement layers) are installed between blocks where there are no primary reinforcement layers. This paper presents two-dimensional numerical simulations that were developed to analyse an instrumented GRR wall with secondary reinforcement layers in the field. A finite differential software was employed to develop the numerical model. In addition to the Mohr–Coulomb model, the cap yield model based on the theory of hardening plasticity was used to represent the behaviour of backfill. Inclinometer casings, earth pressure cells and strain gauges were installed in the instrumented GRR walls to measure the facing deflections, lateral earth pressures, vertical earth pressures and geogrid strains. The measured results and numerical predictions were compared and discussed, and reasonable agreement between these results was found. Compared to the measured results, the numerical predictions slightly underestimated the maximum wall facing deflections and vertical earth pressures, and slightly overestimated lateral earth pressures and strains in primary and secondary reinforcement layers. For comparison, a numerical model without secondary reinforcement was developed as well. This comparison revealed that the GRR wall with secondary reinforcement resulted in smaller facing deflections and maximum strains in primary reinforcement layers. Overall, the numerical analysis indicated that secondary reinforcement could provide clear benefits in improving the performance of GRR walls.
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February 2019
Research Article|
April 17 2018
Numerical analysis of field geosynthetic-reinforced retaining walls with secondary reinforcement
Y. Jiang;
Y. Jiang
*Formerly University of Kansas; now Terracon Consultants, Inc., Savannah, Georgia, USA.
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J. Han;
J. Han
†Department of Civil, Environmental & Architectural Engineering, The University of Kansas, Lawrence, KS, USA.
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J. Zornberg;
J. Zornberg
‡The University of Texas at Austin, Austin, TX, USA.
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R. L. Parsons;
R. L. Parsons
†Department of Civil, Environmental & Architectural Engineering, The University of Kansas, Lawrence, KS, USA.
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D. Leshchinsky;
D. Leshchinsky
§ADAMA Engineering, Inc., Clackamas, OR, USA.
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B. Tanyu
B. Tanyu
∥George Mason University, Fairfax, VA, USA.
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Publisher: Emerald Publishing
Received:
May 03 2017
Accepted:
March 14 2018
Online ISSN: 1751-7656
Print ISSN: 0016-8505
© 2018 Thomas Telford Ltd
2018
Geotechnique (2019) 69 (2): 122–132.
Article history
Received:
May 03 2017
Accepted:
March 14 2018
Citation
Jiang Y, Han J, Zornberg J, Parsons RL, Leshchinsky D, Tanyu B (2019), "Numerical analysis of field geosynthetic-reinforced retaining walls with secondary reinforcement". Geotechnique, Vol. 69 No. 2 pp. 122–132, doi: https://doi.org/10.1680/jgeot.17.P.118
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