Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions

This work focuses on the propagation of mechanically activated self-sustaining reactions during the mechanical processing of powder in ball mills. We use a numerical model to reconstruct the dynamics of a single ball and powder particles inside the reactor of a SPEX Mixer/Mill 8000 under operational...

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Main Authors: Alberto Cincotti, Gabriele Traversari, Giorgio Pia, Francesco Delogu
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Advances in Materials Science and Engineering
Online Access:http://dx.doi.org/10.1155/2020/8032985
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spelling doaj-c7c3a55250994722b35b98df13e9233f2020-11-25T04:06:19ZengHindawi LimitedAdvances in Materials Science and Engineering1687-84422020-01-01202010.1155/2020/80329858032985Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining ReactionsAlberto Cincotti0Gabriele Traversari1Giorgio Pia2Francesco Delogu3Dipartimento di Ingegneria Meccanica Chimica e dei MaterialiDipartimento di Ingegneria Meccanica Chimica e dei MaterialiDipartimento di Ingegneria Meccanica Chimica e dei MaterialiDipartimento di Ingegneria Meccanica Chimica e dei MaterialiThis work focuses on the propagation of mechanically activated self-sustaining reactions during the mechanical processing of powder in ball mills. We use a numerical model to reconstruct the dynamics of a single ball and powder particles inside the reactor of a SPEX Mixer/Mill 8000 under operational conditions. Taking advantage of the analytical description of the reactor swing, the equations of motion of ball and powder particles are solved numerically. The discrete element method is used to describe contacts. Reaction is ignited in an individual particle randomly selected among those compressed during an impact between ball and reactor. A simple kinetic law and a set of rules involving degree of chemical conversion and distance between particles are used to obtain a phenomenological description of the reaction propagation. We show that the propagation is significantly affected by reaction rate in individual particles, with other factors being less influential. We observe a strong coupling between the dynamics of powder particles and the reaction propagation.http://dx.doi.org/10.1155/2020/8032985
collection DOAJ
language English
format Article
sources DOAJ
author Alberto Cincotti
Gabriele Traversari
Giorgio Pia
Francesco Delogu
spellingShingle Alberto Cincotti
Gabriele Traversari
Giorgio Pia
Francesco Delogu
Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
Advances in Materials Science and Engineering
author_facet Alberto Cincotti
Gabriele Traversari
Giorgio Pia
Francesco Delogu
author_sort Alberto Cincotti
title Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
title_short Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
title_full Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
title_fullStr Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
title_full_unstemmed Milling Dynamics and Propagation of Mechanically Activated Self-Sustaining Reactions
title_sort milling dynamics and propagation of mechanically activated self-sustaining reactions
publisher Hindawi Limited
series Advances in Materials Science and Engineering
issn 1687-8442
publishDate 2020-01-01
description This work focuses on the propagation of mechanically activated self-sustaining reactions during the mechanical processing of powder in ball mills. We use a numerical model to reconstruct the dynamics of a single ball and powder particles inside the reactor of a SPEX Mixer/Mill 8000 under operational conditions. Taking advantage of the analytical description of the reactor swing, the equations of motion of ball and powder particles are solved numerically. The discrete element method is used to describe contacts. Reaction is ignited in an individual particle randomly selected among those compressed during an impact between ball and reactor. A simple kinetic law and a set of rules involving degree of chemical conversion and distance between particles are used to obtain a phenomenological description of the reaction propagation. We show that the propagation is significantly affected by reaction rate in individual particles, with other factors being less influential. We observe a strong coupling between the dynamics of powder particles and the reaction propagation.
url http://dx.doi.org/10.1155/2020/8032985
work_keys_str_mv AT albertocincotti millingdynamicsandpropagationofmechanicallyactivatedselfsustainingreactions
AT gabrieletraversari millingdynamicsandpropagationofmechanicallyactivatedselfsustainingreactions
AT giorgiopia millingdynamicsandpropagationofmechanicallyactivatedselfsustainingreactions
AT francescodelogu millingdynamicsandpropagationofmechanicallyactivatedselfsustainingreactions
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