Technical Papers
Sep 21, 2021

Evaluating Influence of Microscopic Properties on Mechanical Behavior of Gravelly Soils by Using Discrete-Element Method

Publication: International Journal of Geomechanics
Volume 21, Issue 12

Abstract

Amidst the rapid development of the metropolitan area in Taichung, Taiwan, the mass rapid transit system (MRT) exemplifies a green public transportation project that helps minimize road traffic and reduce greenhouse gas emissions. However, managing the engineering of gravelly soils during MRT construction is challenging. This study adopted the discrete-element method software PFC2D to investigate the influence of microscopic properties on the mechanical performance of gravelly soils. Triaxial test data relating to gravelly soils with pure shear stress paths were analyzed to realize the mechanical behavior. The specimens were classified into Groups A and B based on the matrix properties, with and without cohesion. The simulation adopted two types of contact models to reflect gravelly soil matrix properties, which demonstrated reasonable agreement with the test results. After validating the proposed numerical model with a series of triaxial tests of gravelly soil under different confining pressures, this study investigated the influences of the micro parameters of porosity, friction coefficient, bond strength, and normal and shear stiffness of gravels and matrix on the mechanical behavior of gravelly soils. The results indicated that the main factors for Group A were the friction coefficient and effective modulus between particles. For Group B, the friction coefficient and bonding effective modulus were the main factors. The shear strength of gravelly soils increased when the friction coefficient, effective modulus, and bonding effective modulus increased.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

This research was financially supported by the Ministry of Science and Technology, Taiwan under Contract MOST 106-2625-M-390-001, MOST 107-2625-M-009-010, and MOST 108-2628-E-009-004-MY3.

References

ASTM. 2006. Standard practice for classification of soils for engineering purposes (Unified Soil Classification System). ASTM D2487. West Conshohocken, PA: ASTM.
Belheine, N., J. P. Plassiard, F. V. Donze, F. Darve, and A. Seridi. 2009. “Numerical simulation of drained triaxial test using 3D discrete element modeling.” Comput. Geotech. 36 (1–2): 320–331. https://doi.org/10.1016/j.compgeo.2008.02.003.
Chang, K. T., and M. C. Cheng. 2014. “Estimation of the shear strength of gravel deposits based on field investigated geological factors.” Eng. Geol. 171: 70–80. https://doi.org/10.1016/j.enggeo.2013.12.014.
Chang, Y. L., T. H. Chen, and M. C. Weng. 2012. “Modeling particle rolling behavior by the modified eccentric circle model of DEM.” Rock Mech. Rock Eng. 45: 851–862. https://doi.org/10.1007/s00603-012-0227-0.
Charles, J. A., and K. S. Watts. 1980. “The influence of confining pressure on the shear strength of compacted rockfill.” Géotechnique 30 (4): 353–367. https://doi.org/10.1680/geot.1980.30.4.353.
Chiu, C. C., M. C. Weng, and T. H. Huang. 2015. “Biconcave bond model for cemented granular material.” J. GeoEng. 10 (3): 91–103. https://doi.org/10.6310%2fjog.2015.10(3).3.
Chiu, C. C., M. C. Weng, and T. H. Huang. 2016. “Modeling rock joint behavior using a rough-joint model.” Int. J. Rock Mech. Min. Sci. 89: 14–25. https://doi.org/10.1016/j.ijrmms.2016.08.001.
Chu, B. L., Y. W. Jou, and M. C. Weng. 2010. “A constitutive model for gravelly soils considering shear-induced volumetric deformation.” Can. Geotech. J. 47 (6): 662–673. https://doi.org/10.1139/T09-135.
Chu, B. L., J. M. Pan, and K. H. Chang. 1996. “Field geotechnical engineering properties of gravel formations in western Taiwan.” [In Chinese.] Sino-Geotechnics 55: 47–58.
Cil, M. B., C. Sohn, and G. Buscarnera. 2020. “DEM modeling of grain size effect in brittle granular soils.” J. Eng. Mech. 146 (3): 04019138. https://doi.org/10.1061/(ASCE)EM.1943-7889.0001713.
de Bono, J. P., and G. R. McDowell. 2014. “DEM of triaxial tests on crushable sand.” Granular Matter 16 (4): 551–562. https://doi.org/10.1007/s10035-014-0500-x.
Ding, X. B., L. Y. Zhang, H. H. Zhu, and Q. Zhang. 2014. “Effect of model scale and particle size distribution on PFC3D simulation results.” Rock Mech. Rock Eng. 47 (6): 2139–2156. https://doi.org/10.1007/s00603-013-0533-1.
Dong, Y., B. Fatahi, H. Khabbaz, and H. Zhang. 2018. “Influence of particle contact models on soil response of poorly graded sand during cavity expansion in discrete element simulation.” J. Rock Mech. Geotech. Eng. 10 (6): 1154–1170. https://doi.org/10.1016/j.jrmge.2018.03.009.
Duan, K., C. Y. Kwok, and X. Ma. 2017. “DEM simulations of sandstone under true triaxial compressive tests.” Acta Geotech. 12 (3): 495–510. https://doi.org/10.1007/s11440-016-0480-6.
Duan, K., C. Y. Kwok, and L. G. Tham. 2015. “Micromechanical analysis of the failure process of brittle rock.” Int. J. Numer. Anal. Methods Geomech. 39 (6): 618–634. https://doi.org/10.1002/nag.2329.
Elmo, D., D. Stead, E. Eberhardt, and A. Vyazmensky. 2013. “Applications of finite/discrete element modeling to rock engineering problems.” Int. J. Geomech. 13 (5): 565–580. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000238.
Hazzar, L., M. Nuth, and M. Cherkired. 2020. “DEM simulation of drained triaxial tests for glass-beads.” Powder Technol. 364: 123–134. https://doi.org/10.1016/j.powtec.2019.09.095.
Holtz, W. G. 1961. “Triaxial shear characteristics of clayed gravel soil.” In Vol. 1 of Proc., 5th Int. Conf. on Soil Mechanics and Foundation Engineering, 143–149. Paris, France: Dunod.
IEA (International Energy Agency). 2007. World energy outlook 2007: China and India insight. Paris: OECD.
Indraratna, B., D. Ionescu, and H. D. Christie. 1998. “Shear behavior of railway ballast based on large-scale triaxial tests.” J. Geotech. Geoenviron. Eng. 124 (5): 439–449. https://doi.org/10.1061/(ASCE)1090-0241(1998)124:5(439).
Khanal, M., R. Raghuramakrishnan, and J. Tomas. 2008. “Discrete element method simulation of effect of aggregate shape on fragmentation of particle composite.” Chem. Eng. Technol. 31 (10): 1526–1531. https://doi.org/10.1002/ceat.200800055.
Kozicki, J., and F. V. Donzé. 2008. “A new open-source software developed for numerical simulations using discrete modeling methods.” Comput. Methods Appl. Mech. Eng. 197 (49–50): 4429–4443. https://doi.org/10.1016/j.cma.2008.05.023.
Kozicki, J., J. Tejchman, and H. B. Mühlhaus. 2014. “Discrete simulations of a triaxial compression test for sand by DEM.” Int. J. Numer. Anal. Methods Geomech. 38 (18): 1923–1952. https://doi.org/10.1002/nag.2285.
Li, H., C. H. Yang, X. L. Ding, N. T. William, H. W. Yin, and S. N. Zhang. 2019. “Weibull linear parallel bond model (WLPBM) for simulating micro-mechanical characteristics of heterogeneous rocks.” Eng. Anal. Boundary Elem. 108: 82–94. https://doi.org/10.1016/j.enganabound.2019.07.018.
Liu, W. B., L. J. Su, Z. Y. Chen, and H. M. Jiang. 2012. “Use of PFC2D for simulation of triaxial compression test for reinforced earth and analysis of sand particle’s movement.” Adv. Mater. Res. 446–449: 1846–1852. https://doi.org/10.4028/www.scientific.net/AMR.446-449.1846.
Lu, Y., Y. Tan, X. Li, and C. N. Liu. 2017. “Methodology for simulation of irregularly shaped gravel grains and its application to DEM modeling.” J. Comput. Civil Eng. 31 (5): 04017023. https://doi.org/10.1061/(ASCE)CP.1943-5487.0000676.
Marsal, R. J. 1967. “Strength and deformation characteristics of rockfill materials.” J. Soil Mech. Found. Div. 93 (2): 27–43. https://doi.org/10.1061/JSFEAQ.0000958.
Mas-Ivars, D., M. Pierce, C. Darcel, R. M. Juan, D. O. Potyondy, R. P. Young, and P. A. Cundall. 2011. “The synthetic rock mass approach for jointed rock mass modelling.” Int. J. Rock Mech. Min. Sci. 48 (2): 219–244. https://doi.org/10.1016/j.ijrmms.2010.11.014.
Matheson, G. M. 1986. “Relationship between compacted rockfill density and gradation.” J. Geotech. Eng. 112 (12): 1119–1124. https://doi.org/10.1061/(ASCE)0733-9410(1986)112:12(1119).
Ngo, T., and B. Indraratna. 2020. “Analysis of deformation and degradation of fouled ballast: Experimental testing and DEM modeling.” Int. J. Geomech. 20 (9): 06020020. https://doi.org/10.1061/(ASCE)GM.1943-5622.0001783.
O’Sullivan, O. C. 2011. “Particle-based discrete element modeling: Geomechanics perspective.” Int. J. Geomech. 11 (6): 449–464. https://doi.org/10.1061/(ASCE)GM.1943-5622.0000024.
Potyondy, D. O., and P. A. Cundall. 2004. “A bonded-particle model for rock.” Int. J. Rock Mech. Min. Sci. 41 (8): 1329–1364. https://doi.org/10.1016/j.ijrmms.2004.09.011.
Tian, J. Q., E. L. Liu, L. Jiang, X. Q. Jiang, Y. Sun, and R. Xu. 2018. “Influence of particle shape on the microstructure evolution and the mechanical properties of granular materials.” C. R. Méc. 346 (6): 460–476. https://doi.org/10.1016/j.crme.2018.03.006.
Transportation Bureau of Taichung City Government. 2020. “Taichung mass rapid transit system.” Accessed July 30, 2021. https://english.taichung.gov.tw/1139891/post.
Wang, X. L., and L. J. Chun. 2014. “Simulation of triaxial response of granular materials by modified DEM.” Sci. China Phys. Mech. Astron. 57 (12): 2297–2308. https://doi.org/10.1007/s11433-014-5605-z.
Weng, M. C., B. L. Chu, and Y. L. Ho. 2013. “Elastoplastic deformation characteristics of gravelly soils.” J. Geotech. Geoenviron. Eng. 139 (6): 947–955. https://doi.org/10.1061/(ASCE)GT.1943-5606.0000827.
Weng, M. C., and H. H. Li. 2012. “Relationship between the deformation characteristics and microscopic properties of sandstone explored by the bonded-particle model.” Int. J. Rock Mech. Min. Sci. 56: 34–43. https://doi.org/10.1016/j.ijrmms.2012.07.003.

Information & Authors

Information

Published In

Go to International Journal of Geomechanics
International Journal of Geomechanics
Volume 21Issue 12December 2021

History

Received: Feb 26, 2021
Accepted: Jun 26, 2021
Published online: Sep 21, 2021
Published in print: Dec 1, 2021
Discussion open until: Feb 21, 2022

Permissions

Request permissions for this article.

Authors

Affiliations

Thi Kim Thoa Ho
Ph.D. Candidate, Dept. of Civil Engineering, National Yang Ming Chiao Tung Univ., Hsinchu, Taiwan 30010, R.O.C.
Professor, Dept. of Civil Engineering, National Yang Ming Chiao Tung Univ., Hsinchu, Taiwan 30010, R.O.C. (corresponding author). ORCID: https://orcid.org/0000-0002-5672-402X. Email: [email protected]

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share