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      Force distributions in 3D granular assemblies: Effects of packing order and inter-particle friction

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          Abstract

          We present a systematic investigation of the distribution of normal forces at the boundaries of static packings of spheres. A new method for the efficient construction of large hexagonal-close-packed crystals is introduced and used to study the effect of spatial ordering on the distribution of forces. Under uniaxial compression we find that the form for the probability distribution of normal forces between particles does not depend strongly on crystallinity or inter-particle friction. In all cases the distribution decays exponentially at large forces and shows a plateau or possibly a small peak near the average force but does not tend to zero at small forces.

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          Bimodal Character of Stress Transmission in Granular Packings

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            The Physics of Granular Materials

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              Force Distribution in a Granular Medium

              We report on systematic measurements of the distribution of normal forces exerted by granular material under uniaxial compression onto the interior surfaces of a confining vessel. Our experiments on three-dimensional, random packings of monodisperse glass beads show that this distribution is nearly uniform for forces below the mean force and decays exponentially for forces greater than the mean. The shape of the distribution and the value of the exponential decay constant are unaffected by changes in the system preparation history or in the boundary conditions. An empirical functional form for the distribution is proposed that provides an excellent fit over the whole force range measured and is also consistent with recent computer simulation data.
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                Author and article information

                Journal
                20 September 2000
                Article
                10.1103/PhysRevE.63.041304
                cond-mat/0009313
                ffde2558-149b-4321-8dec-7297e504bd16
                History
                Custom metadata
                9 pages including 8 figures
                cond-mat.soft

                Condensed matter
                Condensed matter

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