Numerical analysis of soil-rock mixture’s meso-mechanics based on biaxial test

Hai-yang Zhang , Wen-jie Xu , Yu-zhen Yu

Journal of Central South University ›› 2016, Vol. 23 ›› Issue (3) : 685 -700.

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Journal of Central South University ›› 2016, Vol. 23 ›› Issue (3) : 685 -700. DOI: 10.1007/s11771-016-3114-0
Article

Numerical analysis of soil-rock mixture’s meso-mechanics based on biaxial test

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Abstract

Soil-rock mixture(S-RM)is a widely distributed geotechnical medium composed of “soil” and “rock block” different both in size and strength. Internal rock blocks form special and variable meso-structural characteristics of S-RM. The objective of this work was to study the control mechanism of meso-structural characteristics on mechanical properties of S-RM. For S-RM containing randomly generated polygonal rock blocks, a series of biaxial tests based on DEM were conducted. On the basis of research on the effects of rock blocks’ breakability and sample lateral boundary type (rigid, flexible) on macroscopic mechanical behavior of S-RM, an expanded Mohr-Coulomb criterion in power function form was proposed to represent the strength envelop. At the mesoscopic level, the variations of meso-structure such as rotation of rock block, and the formation mechanism and evolution process of the shear band during tests were investigated. The results show that for S-RM with a high content of rock block, translation, rotating and breakage of rock blocks have crucial effects on mechanical behavior of S-RM. The formation and location of the shear band inside S-RM sample are also controlled by breakability and arrangement of rock blocks.

Keywords

soil-rock mixture (S-RM) / meso-structural mechanics (MSM) / discrete element method (DEM) / rock block breakability / lateral boundary type / shear band

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Hai-yang Zhang, Wen-jie Xu, Yu-zhen Yu. Numerical analysis of soil-rock mixture’s meso-mechanics based on biaxial test. Journal of Central South University, 2016, 23(3): 685-700 DOI:10.1007/s11771-016-3114-0

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References

[1]

MedleyE. W.The engineering characterization of melanges and similar block-in-matrix rocks (bimrocks) [D], 1994CaliforniaUniversity of California, Berkeley

[2]

XuW.-j., HuR.-l.. Conception, classification and significations of soil-rock mixture [J]. Hydrogeology & Engineering Geology, 2009, 36(4): 50-56

[3]

XuW.-j., XuQ.. Study of quantitative description methods of geomaterial meso-structure taking soil rock mixture for example [J]. Chinese Journal of Rock Mechanics and Engineering, 2012, 31(3): 499-506

[4]

SonmezH., GokceogluC., MedleyE. W., TuncayE., NefesliogluH. A.. Estimating the uniaxial compressive strength of a volcanic bimrock [J]. International Journal of Rock Mechanics and Mining Sciences, 2006, 43: 554-561

[5]

HamidiA., AlizadehM., SoleimaniS. M.. Effect of particle crushing on shear strength and dilation characteristics of sand-gravel mixtures [J]. International Journal of Civil Engineering, 2009, 7(1): 61-71

[6]

XuW.-j., XuQ., HuR.-l.. Study on the shear strength of soil-rock mixture by large scale direct shear test [J]. International Journal of Rock Mechanics and Mining Sciences, 2011, 48(8): 1235-1247

[7]

ColiN., BerryP., BoldiniD.. In situ non-conventional shear tests for the mechanical characterisation of a bimrock [J]. International Journal of Rock Mechanics and Mining Sciences, 2011, 48(1): 95-102

[8]

PenaA. A., Garcia-RojoR., HerrmannH. J.. Influence of particle shape on sheared dense granular media [J]. Granular Matter, 2007, 9(3/4): 279-291

[9]

ChengG.-w., HeJ.-m., LiX., DiB.-r., LiS.-d.. Particle flow simulation for soil-rock mixtures under biaxial pressure [J]. Mining and Metallurgical Engineering, 2010, 30(4): 1-4

[10]

OuyangZ.-h., LiS.-h., DaiZ.-s.. On the influence factors of mechanical properties for soil-rock mixture [J]. Journal of Experimental Mechanics, 2010, 25(1): 61-67

[11]

MahmoodZ., IwashitaK.. A simulation study of microstructure evolution inside the shear band in biaxial compression test [J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2011, 35(6): 652-667

[12]

PietruszczakS., GuoP.. Description of deformation process in inherently anisotropic granular materials [J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2013, 37(5): 478-490

[13]

AfifipourM., MoarefvandP.. Experimental study of post-peak behavior of bimrocks with high rock block proportions [J]. Journal of Central South University, 2014, 21(2): 761-767

[14]

ColiN., BerryP., BoldiniD., BrunoR.. The contribution of geostatistics to the characterisation of some bimrock properties [J]. Engineering Geology, 2012, 137/138: 53-63

[15]

ShiC., WangS.-n., LiuL., ChenH.-j.. Structure modeling and mechanical parameters research of outwash deposits based on digital image analysis [J]. Rock and Soil Mechanics, 2012, 33(11): 3393-3399

[16]

WangS.-n., XuW.-y., ShiC., ZhangQ.. Numerical simulation of direct shear tests on mechanical properties of talus deposits based on self-adaptive PCNN digital image processing [J]. Journal of Central South University, 2014, 21(7): 2904-2914

[17]

KozickiJ., DonzéF. V.. Yade-open dem: An open-source software using a discrete element method to simulate granular material [J]. Engineering Computations, 2009, 26(7): 786-805

[18]

MassonS., MartinezJ.. Micromechanical analysis of the shear behavior of a granular material [J]. Journal of Engineering Mechanics-ASCE, 2001, 127(10): 1007-1016

[19]

RochterL., KonigD., SchanzT., NiemunisA., TriantafyllidisT.. Shear band systems in plane strain extension: analytical solution and comparison with experimental results [J]. Granular Matter, 2011, 13(5): 553-563

[20]

WangJ., DoveJ. E., GutierrezM. S.. Discrete-continuum analysis of shear banding in the direct shear test [J]. Géotechnique, 2007, 57(6): 513-526

[21]

ZhouQ., HelenbrookB. T., ShenH. H.NakagawaM., LudingS.. A computational study of the micromechanics under pre-and post-failure in a 2-D direct shear test [C]. Powders and Grains. Melville: Amer Inst Physics, 2009405-408

[22]

ZhouQ., ShenH. H., HelenbrookB. T., ZhangH. W.. Scale dependence of direct shear tests [J]. Chinese Science Bulletin, 2009, 54(23): 4337-4348

[23]

BiZ.-w., SunQ.-c., LiuJ.-g., JinF., ZhangC.-h.. Development of shear band in a granular material in biaxial tests [J]. Acta Physica Sinica, 2011, 60(3): 451-454

[24]

JiangM. J., YanH. B., ZhuH. H., UtiliS.. Modeling shear behavior and strain localization in cemented sands by two-dimensional distinct element method analyses [J]. Computers and Geotechnics, 2011, 38(1): 14-29

[25]

AlshibliK. A., AlramahiB. A.. Microscopic evaluation of strain distribution in granular materials during shear [J]. Journal of Geotechnical and Geoenvironmental Engineering, 2006, 132(1): 80-91

[26]

YamamotoH.BurnsS. E., MayneP. W., SantamarinaJ. C.. Application of digital image analysis to displacement measurements of sand particles in shear zone [C]. Deformation Characteristics of Geomaterials. Amsterdam: IOS Press, 2008377-382

[27]

ChupinO., RechenmacherA. L., AbediS.. Finite strain analysis of nonuniform deformation inside shear bands in sands [J]. International Journal for Numerical and Analytical Methods in Geomechanics, 2012, 36(14): 1651-1666

[28]

HasanA., AlshibliK.. Three dimensional fabric evolution of sheared sand [J]. Granular Matter, 2012, 14(4): 469-482

[29]

Bagherzadeh-KhalkhaliA., MirghasemiA. A., MohammadiS.. Micromechanics of breakage in sharp-edge particles using combined DEM and FEM [J]. Particuology, 2008, 6(5): 347-361

[30]

Bagherzadeh-KhalkhaliA., MirghasemiA. A., MohammadiS.. Numerical simulation of particle breakage of angular particles using combined DEM and FEM [J]. Powder Technology, 2011, 205(1): 15-29

[31]

SeyediH. E., MirghasemiA.. Numerical simulation of breakage of two-dimensional polygon-shaped particles using discrete element method [J]. Powder Technology, 2006, 166(2): 100-112

[32]

LoboG. S., VallejoL. E., VesgaL. F.. Visualization of crushing evolution in granular materials under compression using DEM [J]. International Journal of Geomechanics, 2006, 6(3): 195-200

[33]

GrazianiA., RossiniC., RotondaT.. Characterization and DEM modeling of shear zones at a large dam foundation [J]. International Journal of Geomechanics, 2012, 12(6): 648-664

[34]

EstradaN., AzemaE., RadjaiF., TaboadaA.. Identification of rolling resistance as a shape parameter in sheared granular media [J]. Physical Review E, 2011, 84(1): 1-4

[35]

ChengY. P., PengQ., HughesL.BurnsS. E., MayneP. W., SantamarinaJ. C.. Shear band and strength of crushable agglomerates in direct shear box simulations of discrete element method [C]. Deformation Characteristics of Geomaterials. Amsterdam: IOS Press, 2008357-364

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