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Published in: Geotechnical and Geological Engineering 4/2011

01-07-2011 | Original paper

Discrete-Element Computation of Averaged Tensorial Fields in Sand Piles Consisting of Polygonal Particles

Authors: Pradip Roul, Alexander Schinner, Klaus Kassner

Published in: Geotechnical and Geological Engineering | Issue 4/2011

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Abstract

This work is a contribution to the understanding of the mechanical properties of non-cohesive granular materials in the presence of friction and a continuation of our previous work (Roul et al. 2010) on numerical investigation of the macroscopic mechanical properties of sand piles. Besides previous numerical results obtained for sand piles that were poured from a localized source (“point source”), we here consider sand piles that were built by adopting a “line source” or “raining procedure”. Simulations were carried out in two-dimensional systems with soft convex polygonal particles, using the discrete element method (DEM). First, we focus on computing the macroscopic continuum quantities of the resulting symmetric sand piles. We then show how the construction history of the sand piles affects their mechanical properties including strain, fabric, volume fraction, and stress distributions; we also show how the latter are affected by the shape of the particles. Finally, stress tensors are studied for asymmetric sand piles, where the particles are dropped from either a point source or a line source. We find that the behaviour of stress distribution at the bottom of an asymmetric sand pile is qualitatively the same as that obtained from an analytical solution by Didwania and co-workers (Proc R Soc Lond A 456:2569–2588, 2000).

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Literature
go back to reference Azéma E, Radjai F (2010) Stress-strain behavior and geometrical properties of packings of elongated particles. Phys Rev E 81:051304CrossRef Azéma E, Radjai F (2010) Stress-strain behavior and geometrical properties of packings of elongated particles. Phys Rev E 81:051304CrossRef
go back to reference Bouchaud J-P, Cates ME, Claudin P (1995) Stress distribution in granular media and nonlinear wave equation. J Phys I France 5:639–656CrossRef Bouchaud J-P, Cates ME, Claudin P (1995) Stress distribution in granular media and nonlinear wave equation. J Phys I France 5:639–656CrossRef
go back to reference Brockbank R, Huntely JM, Ball R (1997) Contact force distribution beneath a three dimension-al granular pile. J Phys II France 7:1521–1532CrossRef Brockbank R, Huntely JM, Ball R (1997) Contact force distribution beneath a three dimension-al granular pile. J Phys II France 7:1521–1532CrossRef
go back to reference Cambou B, Chaze M, Dedecker F (2000) Change of scale in granular materials. Eur J Mech A Solids 19:999–1014CrossRef Cambou B, Chaze M, Dedecker F (2000) Change of scale in granular materials. Eur J Mech A Solids 19:999–1014CrossRef
go back to reference Cantelaube F, Goddard JD (1997) Elastoplastic arching in 2D granular heaps. In: Behringer RP, Jenkins JT (eds) Powders and Grains. Balkema, Rotterdam, pp 231–234 Cantelaube F, Goddard JD (1997) Elastoplastic arching in 2D granular heaps. In: Behringer RP, Jenkins JT (eds) Powders and Grains. Balkema, Rotterdam, pp 231–234
go back to reference Claudin P, Bouchaud J-P, Cates ME, Wittmer J (1998) Models of stress fluctuations in granular media. Phys Rev E 57:4441CrossRef Claudin P, Bouchaud J-P, Cates ME, Wittmer J (1998) Models of stress fluctuations in granular media. Phys Rev E 57:4441CrossRef
go back to reference Cowin SC (1988) A simple theory of instantaneously induced anisotropy. In: Jenkins JT, Satake M (eds) Micro- mechanics of granular materials. Elsevier, Amsterdam, pp 71–80 Cowin SC (1988) A simple theory of instantaneously induced anisotropy. In: Jenkins JT, Satake M (eds) Micro- mechanics of granular materials. Elsevier, Amsterdam, pp 71–80
go back to reference Cundall PA, Strack ODL (1979) A discrete numerical model for granular assemblies. Géote-chnique 29:47–65 Cundall PA, Strack ODL (1979) A discrete numerical model for granular assemblies. Géote-chnique 29:47–65
go back to reference Didwania AK, Cantelaube F, Goddard JD (2000) Static multiplicity of stress states in granular heaps. Proc R Soc Lond A 456:2569–2588CrossRef Didwania AK, Cantelaube F, Goddard JD (2000) Static multiplicity of stress states in granular heaps. Proc R Soc Lond A 456:2569–2588CrossRef
go back to reference Gear CW (1971) Numerical initial value problems in ordinary differential equations. Prentice Hall, Englewood Cliffs, NJ Gear CW (1971) Numerical initial value problems in ordinary differential equations. Prentice Hall, Englewood Cliffs, NJ
go back to reference Goddard JD (1998) Continuum modeling of granular assemblies. In: Herrmann HJ, Hovi JP, Luding S (eds) Physics of dry granular media. Kluwer Academic Publishers, Dordrecht, pp 1–24 Goddard JD (1998) Continuum modeling of granular assemblies. In: Herrmann HJ, Hovi JP, Luding S (eds) Physics of dry granular media. Kluwer Academic Publishers, Dordrecht, pp 1–24
go back to reference Hidalgo RC, Zuriguel I, Maza D, Pagonabarraga I (2009) Role of particle shape on the stress propagation in granular packings. Phys Rev Lett 103:118001CrossRef Hidalgo RC, Zuriguel I, Maza D, Pagonabarraga I (2009) Role of particle shape on the stress propagation in granular packings. Phys Rev Lett 103:118001CrossRef
go back to reference Jotaki T, Moriyama R (1979) On the bottom pressure distribution of the bulk materials piled with the angle of repose. J Soc Powder Technol 16(4):184–191 Jotaki T, Moriyama R (1979) On the bottom pressure distribution of the bulk materials piled with the angle of repose. J Soc Powder Technol 16(4):184–191
go back to reference Lätzel M, Luding S, Herrmann HJ (2000) Macroscopic material properties from quasi-static, microscopic simulations of a two-dimensional shear-cell. Granular Matter 2:123–135CrossRef Lätzel M, Luding S, Herrmann HJ (2000) Macroscopic material properties from quasi-static, microscopic simulations of a two-dimensional shear-cell. Granular Matter 2:123–135CrossRef
go back to reference Li YJ, Xu Y, Thornton C (2005) A comparison of discrete element simulations and experiments for ‘sand piles’ composed of spherical particles. Powder Technol 160:219–228CrossRef Li YJ, Xu Y, Thornton C (2005) A comparison of discrete element simulations and experiments for ‘sand piles’ composed of spherical particles. Powder Technol 160:219–228CrossRef
go back to reference Liffman K, Nguyen M, Metcalfe G, Cleary P (2001) Forces in piles of granular material: an analytic and 3D DEM study. Granular Matter 3:165–176CrossRef Liffman K, Nguyen M, Metcalfe G, Cleary P (2001) Forces in piles of granular material: an analytic and 3D DEM study. Granular Matter 3:165–176CrossRef
go back to reference Luding S (2004) Micro-macro models for anisotropic granular media. In: Vermeer PA, Ehlers W, Herrmann HJ, Ramm R (eds) Modelling of cohesive-frictional materials. Balkema AA, Leiden, pp 195–206CrossRef Luding S (2004) Micro-macro models for anisotropic granular media. In: Vermeer PA, Ehlers W, Herrmann HJ, Ramm R (eds) Modelling of cohesive-frictional materials. Balkema AA, Leiden, pp 195–206CrossRef
go back to reference Luding S (1997) Stress distribution in static two-dimensional granular model media in the absence of friction. Phys Rev E 55:4720–4729CrossRef Luding S (1997) Stress distribution in static two-dimensional granular model media in the absence of friction. Phys Rev E 55:4720–4729CrossRef
go back to reference Matuttis HG (1998) Simulation of the pressure distribution under a two dimensional heap of polygonal particles. Granular Matter 1:83–91CrossRef Matuttis HG (1998) Simulation of the pressure distribution under a two dimensional heap of polygonal particles. Granular Matter 1:83–91CrossRef
go back to reference Matuttis HG, Luding S, Herrmann HJ (2000) Discrete element simulations of dense packings and heaps made of spherical and non-spherical particles. Powder Technol 109:208–292CrossRef Matuttis HG, Luding S, Herrmann HJ (2000) Discrete element simulations of dense packings and heaps made of spherical and non-spherical particles. Powder Technol 109:208–292CrossRef
go back to reference Picard D, Terzulli LP, Lesaffre C, Mineau V (2001) Packing density of a poly-dispersed granular material. In: Kishino Y (ed) Powders and grains. Balkema, Rotterdam, pp 15–16 Picard D, Terzulli LP, Lesaffre C, Mineau V (2001) Packing density of a poly-dispersed granular material. In: Kishino Y (ed) Powders and grains. Balkema, Rotterdam, pp 15–16
go back to reference Schinner A (1999) Fast algorithms for the simulation of polygonal particles. Granular Matter 2:35CrossRef Schinner A (1999) Fast algorithms for the simulation of polygonal particles. Granular Matter 2:35CrossRef
go back to reference Schinner A (2001) Ein simulationssystem für granulare aufschüttungen aus teilchen variabler form. PhD thesis, University of Magdeburg Schinner A (2001) Ein simulationssystem für granulare aufschüttungen aus teilchen variabler form. PhD thesis, University of Magdeburg
go back to reference Smid J, Novosad J (1981) Pressure distribution under heaped bulk solids. Proc Powtech Conf Ind Chem Eng Sympo Series 63: D3/V/1–12 Smid J, Novosad J (1981) Pressure distribution under heaped bulk solids. Proc Powtech Conf Ind Chem Eng Sympo Series 63: D3/V/1–12
go back to reference Smid J, Xuan PV, Thyn J (1993) Effect of filling method on the packing distribution of a catalyst bed. Chem Eng Technol 16:114–118CrossRef Smid J, Xuan PV, Thyn J (1993) Effect of filling method on the packing distribution of a catalyst bed. Chem Eng Technol 16:114–118CrossRef
go back to reference Tejchman J, Wu Wei (2008) FE-Calculations of stress distribution under prismatic and conical sand piles within hypoplasticity. Granular Matter 10:399–405CrossRef Tejchman J, Wu Wei (2008) FE-Calculations of stress distribution under prismatic and conical sand piles within hypoplasticity. Granular Matter 10:399–405CrossRef
go back to reference Vanel L, Howell D, Clark D, Behringer RP, Clement E (1999) Memories in sand: experimental tests of construction history on stress distributions under sand piles. Phys Rev E 60:R5040CrossRef Vanel L, Howell D, Clark D, Behringer RP, Clement E (1999) Memories in sand: experimental tests of construction history on stress distributions under sand piles. Phys Rev E 60:R5040CrossRef
go back to reference Wittmer JP, Cates ME, Claudin P, Bouchaud J-P (1996) An explanation for the stress minimum in sand piles. Nature 382:336–338CrossRef Wittmer JP, Cates ME, Claudin P, Bouchaud J-P (1996) An explanation for the stress minimum in sand piles. Nature 382:336–338CrossRef
go back to reference Wittmer JP, Cates ME, Claudin P (1997) Stress propagation and arching in static sand piles. J Phys I France 7:39–80CrossRef Wittmer JP, Cates ME, Claudin P (1997) Stress propagation and arching in static sand piles. J Phys I France 7:39–80CrossRef
go back to reference Zhao YC, Xu BH, Zou RP, Yu AB, Zulli P (2003) Stress distribution in a sand pile formed on a deflected base. Adv Powder Technol 14:401–410CrossRef Zhao YC, Xu BH, Zou RP, Yu AB, Zulli P (2003) Stress distribution in a sand pile formed on a deflected base. Adv Powder Technol 14:401–410CrossRef
go back to reference Zuriguel I, Mullin T, Rotter JM (2007) Effect of particle shape on the stress dip under a sand pile. Phys Rev Lett 98:028001CrossRef Zuriguel I, Mullin T, Rotter JM (2007) Effect of particle shape on the stress dip under a sand pile. Phys Rev Lett 98:028001CrossRef
go back to reference Zuriguel I, Mullin T (2008) The role of particle shape on the stress distribution in a sand pile. Proc R Soc A 464:99–116CrossRef Zuriguel I, Mullin T (2008) The role of particle shape on the stress distribution in a sand pile. Proc R Soc A 464:99–116CrossRef
Metadata
Title
Discrete-Element Computation of Averaged Tensorial Fields in Sand Piles Consisting of Polygonal Particles
Authors
Pradip Roul
Alexander Schinner
Klaus Kassner
Publication date
01-07-2011
Publisher
Springer Netherlands
Published in
Geotechnical and Geological Engineering / Issue 4/2011
Print ISSN: 0960-3182
Electronic ISSN: 1573-1529
DOI
https://doi.org/10.1007/s10706-011-9406-0

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