Exploring the influence of size-related factors on geocell-reinforced soil response using coupled continuum-discontinuum analysis

Size-related factors, such as the dimensions and cell count of geocell, play a crucial role in determining the effectiveness of soil reinforcement. In this study, a 3D coupled framework that leverages the strengths of both continuum and discontinuum methods was developed to investigate the influence...

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Published inGeotextiles and geomembranes Vol. 52; no. 4; pp. 435 - 450
Main Authors Wang, Haibo, Gao, Ge, Meguid, Mohamed A., Cheng, Yi Pik, Zhang, Lulu
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 01.08.2024
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Abstract Size-related factors, such as the dimensions and cell count of geocell, play a crucial role in determining the effectiveness of soil reinforcement. In this study, a 3D coupled framework that leverages the strengths of both continuum and discontinuum methods was developed to investigate the influence of pocket size and multi-cell configuration on geocell-reinforced soils. To unveil the impact of size-related factors on soil-geocell interactions, reinforced soils containing various geocell configurations (single large-sized cell, multiple small-sized cells), as well as geocell-free soils subjected to increasing levels of confining pressure were extensively examined. This thorough investigation aimed to establish correlations between macroscopic responses and underlying micromechanical mechanisms. Our findings revealed that the presence of the geocell not only enhances the densification of interparticle contacts and reduces the number of floating particles that contribute minimally to load support, but also facilitates the concentration of force chains within the geocell structure. This leads to an increase in elastic stiffness along the loading axis. These observations highlight that the geocell's confining mechanism enhances both the load-carrying capacity and the infill rigidity, thereby preventing lateral soil spreading. In essence, the geocell serves to increase the soil's ability to withstand load and maintain its structural integrity laterally. •The mechanical response of geocell reinforced soil is visually characterized using a coupled three-dimensional continuum-discontinuum framework.•Macroscopic and micromechanical evidence are explored to reveal the influence of size-related factors on geocell-reinforced soil response.•The multiple smaller-sized cells impart stronger constraints and mobilize a larger volume of soil, demonstrating superior reinforcing performance.
AbstractList Size-related factors, such as the dimensions and cell count of geocell, play a crucial role in determining the effectiveness of soil reinforcement. In this study, a 3D coupled framework that leverages the strengths of both continuum and discontinuum methods was developed to investigate the influence of pocket size and multi-cell configuration on geocell-reinforced soils. To unveil the impact of size-related factors on soil-geocell interactions, reinforced soils containing various geocell configurations (single large-sized cell, multiple small-sized cells), as well as geocell-free soils subjected to increasing levels of confining pressure were extensively examined. This thorough investigation aimed to establish correlations between macroscopic responses and underlying micromechanical mechanisms. Our findings revealed that the presence of the geocell not only enhances the densification of interparticle contacts and reduces the number of floating particles that contribute minimally to load support, but also facilitates the concentration of force chains within the geocell structure. This leads to an increase in elastic stiffness along the loading axis. These observations highlight that the geocell's confining mechanism enhances both the load-carrying capacity and the infill rigidity, thereby preventing lateral soil spreading. In essence, the geocell serves to increase the soil's ability to withstand load and maintain its structural integrity laterally. •The mechanical response of geocell reinforced soil is visually characterized using a coupled three-dimensional continuum-discontinuum framework.•Macroscopic and micromechanical evidence are explored to reveal the influence of size-related factors on geocell-reinforced soil response.•The multiple smaller-sized cells impart stronger constraints and mobilize a larger volume of soil, demonstrating superior reinforcing performance.
Author Wang, Haibo
Meguid, Mohamed A.
Zhang, Lulu
Gao, Ge
Cheng, Yi Pik
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  surname: Wang
  fullname: Wang, Haibo
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  organization: State Key Laboratory of Ocean Engineering, Shanghai Key Laboratory for Digital Maintenance of Buildings and Infrastructure, School of Naval Architecture, Ocean & Civil Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China
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  givenname: Ge
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  givenname: Yi Pik
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  givenname: Lulu
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  email: lulu_zhang@sjtu.edu.cn
  organization: State Key Laboratory of Ocean Engineering, Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration, Shanghai Key Laboratory for Digital Maintenance of Buildings and Infrastructure, School of Naval Architecture, Ocean & Civil Engineering, Shanghai Jiao Tong University, Shanghai, 200240, China
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Geocell-reinforced soil
Microscopic characterization
Size-related factors
Coupled continuum-discontinuum method
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Snippet Size-related factors, such as the dimensions and cell count of geocell, play a crucial role in determining the effectiveness of soil reinforcement. In this...
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SubjectTerms Coupled continuum-discontinuum method
Geocell-reinforced soil
Geosynthetics
Microscopic characterization
Size-related factors
Title Exploring the influence of size-related factors on geocell-reinforced soil response using coupled continuum-discontinuum analysis
URI https://dx.doi.org/10.1016/j.geotexmem.2023.12.008
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