Seismic effects on reinforcement load and lateral deformation of geosynthetic-reinforced soil walls

Fei ZHANG , Yuming ZHU , Yanbo CHEN , Shangchuan YANG

Front. Struct. Civ. Eng. ›› 2021, Vol. 15 ›› Issue (4) : 1001 -1015.

PDF (11104KB)
Front. Struct. Civ. Eng. ›› 2021, Vol. 15 ›› Issue (4) : 1001 -1015. DOI: 10.1007/s11709-021-0734-8
RESEARCH ARTICLE
RESEARCH ARTICLE

Seismic effects on reinforcement load and lateral deformation of geosynthetic-reinforced soil walls

Author information +
History +
PDF (11104KB)

Abstract

Current design methods for the internal stability of geosynthetic-reinforced soil (GRS) walls postulate seismic forces as inertial forces, leading to pseudo-static analyses based on active earth pressure theory, which yields unconservative reinforcement loads required for seismic stability. Most seismic analyses are limited to the determination of maximum reinforcement strength. This study aimed to calculate the distribution of the reinforcement load and connection strength required for each layer of the seismic GRS wall. Using the top-down procedure involves all of the possible failure surfaces for the seismic analyses of the GRS wall and then obtains the reinforcement load distribution for the limit state. The distributions are used to determine the required connection strength and to approximately assess the facing lateral deformation. For sufficient pullout resistance to be provided by each reinforcement, the maximum required tensile resistance is identical to the results based on the Mononobe–Okabe method. However, short reinforcement results in greater tensile resistances in the mid and lower layers as evinced by compound failure frequently occurring in GRS walls during an earthquake. Parametric studies involving backfill friction angle, reinforcement length, vertical seismic acceleration, and secondary reinforcement are conducted to investigate seismic impacts on the stability and lateral deformation of GRS walls.

Graphical abstract

Keywords

geosynthetics / reinforced soil / retaining walls / seismic performance

Cite this article

Download citation ▾
Fei ZHANG, Yuming ZHU, Yanbo CHEN, Shangchuan YANG. Seismic effects on reinforcement load and lateral deformation of geosynthetic-reinforced soil walls. Front. Struct. Civ. Eng., 2021, 15(4): 1001-1015 DOI:10.1007/s11709-021-0734-8

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Allen T M, Bathurst R J. Observed long-term performance of geosynthetic walls and implications for design. Geosynthetics International, 2002, 9( 5–6): 567– 606

[2]

Allen T M, Bathurst R J. Performance of an 11 m high block-faced geogrid wall designed using the K-stiffness method. Canadian Geotechnical Journal, 2014, 51( 1): 16– 29

[3]

Stuedlein A W, Bailey M, Lindquist D, Sankey J, Neely W J. Design and performance of a 46-m-high MSE wall. Journal of Geotechnical and Geoenvironmental Engineering, 2010, 136( 6): 786– 796

[4]

Jiang Y, Han J, Parsons R L, Brennan J J. Field instrumentation and evaluation of modular-block MSE walls with secondary geogrid layers. Journal of Geotechnical and Geoenvironmental Engineering, 2016, 142( 12): 05016002–

[5]

Salem M A, Hammad M A, Amer M I. Field monitoring and numerical modeling of 4.4 m-high mechanically stabilized earth wall. Geosynthetics International, 2018, 25( 5): 545– 559

[6]

Shishegaran A, Khalili M R, Karami B, Rabczuk T, Shishegaran A. Computational predictions for estimating the maximum deflection of reinforced concrete panels subjected to the blast load. International Journal of Impact Engineering, 2020, 139 : 103527–

[7]

Shishegaran A, Ghasemi M R, Varaee H. Performance of a novel bent-up bars system not interacting with concrete. Frontiers of Structural and Civil Engineering, 2019, 13( 6): 1301– 1315

[8]

Tatsuoka F, Tateyama M, Mohri Y, Matsushima K. Remedial treatment of soil structures using geosynthetic-reinforcing technology. Geotextiles and Geomembranes, 2007, 25( 4–5): 204– 220

[9]

Ling H I, Leshchinsky D, Chou N N S. Post-earthquake investigation on several geosynthetic-reinforced soil retaining walls and slopes during the Ji-Ji earthquake of Taiwan (China). Soil Dynamics and Earthquake Engineering, 2001, 21( 4): 297– 313

[10]

Steudle K T, Horsley J. AASHTO LRFD Bridge Design Specifications. 6th ed. Washington, D.C.: American Association of State Highway and Transportation Officials, 2012

[11]

Berg R R, Christopher B R, Samtani N C. Mechanically Stabilized Earth Walls and Reinforced Soil Slopes Design and Construction Guidelines. Washington, D.C.: Federal Highway Administration, 2009

[12]

Collin J G. Design Manual for Segmental Retaining Walls. 3rd ed. Herndon, VA: National Concrete Masonry Association, 2009

[13]

Baker R, Klein Y. An integrated limiting equilibrium approach for design of reinforced soil retaining structures: Part I—formulation. Geotextiles and Geomembranes, 2004, 22( 3): 119– 150

[14]

Han J, Leshchinsky D. General analytical framework for design of flexible reinforced earth structures. Journal of Geotechnical and Geoenvironmental Engineering, 2006, 132( 11): 1427– 1435

[15]

Leshchinsky D, Zhu F, Meehan C L. Required unfactored strength of geosynthetic in reinforced earth structures. Journal of Geotechnical and Geoenvironmental Engineering, 2010, 136( 2): 281– 289

[16]

Ehrlich M, Mitchell J K. Working stress design method for reinforced soil walls. Journal of Geotechnical Engineering, 1994, 120( 4): 625– 645

[17]

Liu H, Won M S. Stress dilatancy and reinforcement load of vertical-reinforced soil composite: analytical method. Journal of Engineering Mechanics, 2014, 140( 3): 630– 639

[18]

Ehrlich M, Mirmoradi S H. A simplified working stress design method for reinforced soil walls. Geotechnique, 2016, 66( 10): 854– 863

[19]

Allen T M, Bathurst R J, Holtz R D, Walters D, Lee W F. A new working stress method for prediction of reinforcement loads in geosynthetic walls. Canadian Geotechnical Journal, 2003, 40( 5): 976– 994

[20]

Bathurst R J, Allen T M, Walters D L. Reinforcement loads in geosynthetic walls and the case for a new working stress design method. Geotextiles and Geomembranes, 2005, 23( 4): 287– 322

[21]

Ling H I, Tatsuoka F, Tateyama M. Simulating performance of GRS-RW by finite-element procedure. Journal of Geotechnical Engineering, 1995, 121( 4): 330– 340

[22]

Liu H, Ling H I. A unified elastoplastic-viscoplastic bounding surface model of geosynthetics and its applications to geosynthetic reinforced soil-retaining wall analysis. Journal of Engineering Mechanics, 2007, 133( 7): 801– 815

[23]

Bathurst R J, Cai Z. Pseudo-static seismic analysis of geosynthetic-reinforced segmental retaining walls. Geosynthetics International, 1995, 2( 5): 787– 830

[24]

Gao Y F, Yang S C, Wu Y X, Li D Y, Zhang F. Evaluation of oblique pullout resistance of reinforcements in soil wall subjected to seismic loads. Geotextiles and Geomembranes, 2014, 42( 5): 515– 524

[25]

Ling H I, Leshchinsky D. Effects of vertical acceleration on seismic design of geosynthetic-reinforced soil structures. Geotechnique, 1998, 48( 3): 347– 373

[26]

Yang S C, Gao Y F, Cui K, Zhang F, Wu D. Three-dimensional internal stability analysis of geosynthetic-reinforced earth structures considering seismic loading. Soil Dynamics and Earthquake Engineering, 2020, 130 : 105979–

[27]

Mohamed S B A, Yang K H, Hung W Y. Limit equilibrium analyses of geosynthetic-reinforced two-tiered walls: Calibration from centrifuge tests. Geotextiles and Geomembranes, 2013, 41 : 1– 16

[28]

Sabermahani M, Ghalandarzadeh A, Fakher A. Experimental study on seismic deformation modes of reinforced-soil walls. Geotextiles and Geomembranes, 2009, 27( 2): 121– 136

[29]

Cai Z, Bathurst R J. Seismic response analysis of geosynthetic reinforced soil segmental retaining walls by finite element method. Computers and Geotechnics, 1995, 17( 4): 523– 546

[30]

Ren F, Zhang F, Xu C, Wang G. Seismic evaluation of reinforced-soil segmental retaining walls. Geotextiles and Geomembranes, 2016, 44( 4): 604– 614

[31]

Fan C, Liu H, Cao J, Ling H I. Responses of reinforced soil retaining walls subjected to horizontal and vertical seismic loadings. Soil Dynamics and Earthquake Engineering, 2020, 129 : 105969–

[32]

Leshchinsky D, Kang B, Han J, Ling H I. Framework for limit state design of geosynthetic-reinforced walls and slopes. Transportation Infrastructure Geotechnology, 2014, 1( 2): 129– 164

[33]

Leshchinsky D, Leshchinsky B, Leshchinsky O. Limit state design framework for geosynthetic-reinforced soil structures. Geotextiles and Geomembranes, 2017, 45( 6): 642– 652

[34]

Ling H I, Leshchinsky D. Failure analysis of modular-block reinforced-soil walls during earthquakes. Journal of Performance of Constructed Facilities, 2005, 19( 2): 117– 123

[35]

Mohamed S B A, Yang K H, Hung W Y. Finite element analyses of two-tier geosynthetic-reinforced soil walls: Comparison involving centrifuge tests and limit equilibrium results. Computers and Geotechnics, 2014, 61 : 67– 84

[36]

Liu H. Internal stability analysis of segmental geosynthetic-reinforced soil retaining walls subjected to seismic loading. Chinese Journal of Geotechnical Engineering, 2008, 30( 2): 278– 283

[37]

Zhou Y D, Zhang F, Wang J Q, Gao Y F, Dai G Y. Seismic stability of earth slopes with tension crack. Frontiers of Structural and Civil Engineering, 2019, 13( 4): 950– 964

[38]

Yang S C, Leshchinsky B, Cui K, Zhang F, Gao Y F. Influence of failure mechanism on seismic bearing capacity factors for shallow foundations near slopes. Geotechnique, 2021, 71( 7): 594– 607

[39]

Yang S C, Leshchinsky B, Cui K, Zhang F, Gao Y F. Unified approach toward evaluating bearing capacity of shallow foundations near slopes. Journal of Geotechnical and Geoenvironmental Engineering, 2019, 145( 12): 04019110–

[40]

Zhou Z, Gao Y F, Zhang F, Song J, Zou D G. Effects of soil dynamic response on post-earthquake deformation of slopes based on nested Newmark model. Earthquake Engineering and Engineering Vibration, 2020, 19( 3): 573– 582

[41]

Zhou Z, Zhang F, Gao Y F, Shu S. Nested Newmark model to estimate permanent displacement of seismic slopes with tensile strength cut-off. Journal of Central South University, 2019, 26( 7): 1830– 1839

[42]

Zhuang X Y, Zhou S W, Sheng M, Li G S. On the hydraulic fracturing in naturally-layered porous media using the phase field method. Engineering Geology, 2020, 266 : 105306–

[43]

Zhou S W, Zhuang X Y, Rabczuk T. Phase field modeling of brittle compressive-shear fractures in rock-like materials: A new driving force and a hybrid formulation. Computer Methods in Applied Mechanics and Engineering, 2019, 355 : 729– 752

[44]

Zhou S W, Zhuang X Y, Zhu H H, Rabczuk T. Phase field modelling of crack propagation, branching and coalescence in rocks. Theoretical and Applied Fracture Mechanics, 2018, 96 : 174– 192

RIGHTS & PERMISSIONS

Higher Education Press 2021.

AI Summary AI Mindmap
PDF (11104KB)

2877

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/