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      Computational modelling and experimental validation of industrial forming processes by cold pressing of aluminum silicate powder

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          Abstract

          A novel approach to the modelling and simulation of the industrial compaction process of ceramic powders is proposed, based on a combination of: (i) continuum mechanics modelling of the constitutive response of the material; (ii) finite element discretization and computer implementation of the mechanical model; (iii) parametric identification by a multi-objective optimization of simulated experimental tests. The capabilities of the proposed approach are highlighted through computer simulations of realistic industrial compaction processes, namely, the forming of an axisymmetric tablet and of a three-dimensional ceramic tile. The presented methods and the pointed out results pave the way for the introduction of so-called virtual prototyping into the industrial practice of ceramic forming processes.

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          Formulation of a three-dimensional distinct element model—Part I. A scheme to detect and represent contacts in a system composed of many polyhedral blocks

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            Formulation of a three-dimensional distinct element model—Part II. Mechanical calculations for motion and interaction of a system composed of many polyhedral blocks

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              Compaction Behavior of Several Ceramic Powders

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                Author and article information

                Journal
                2016-01-11
                Article
                1601.02399
                120a3cd5-a668-4314-9c84-f2e7a83b5f1e

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                25 pages, 12 figures
                cond-mat.mtrl-sci

                Condensed matter
                Condensed matter

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