Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface

To quench a thermal runaway reaction in a chemical rector, an efficient approach is the introduction of a small quantity of a liquid inhibiting agent, named a “killer”, into the mixing vessel. In this thesis, an experimental approach has been coupled tightly with numerical modelling using Computatio...

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Main Author: Torré, Jean-Philippe
Other Authors: Institut National Polytechnique de Toulouse - INPT (FRANCE)
Format: Others
Language:en
Published: 2007
Subjects:
Online Access:http://oatao.univ-toulouse.fr/7658/1/torre.pdf
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spelling ndltd-univ-toulouse.fr-oai-oatao.univ-toulouse.fr-76582019-01-09T05:28:25Z Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface Torré, Jean-Philippe Institut National Polytechnique de Toulouse - INPT (FRANCE) Agitation and mixing Computational Fluid Dynamics (CFD) Partially-baffled agitated vessel Free-surface Particle Image Velocimetry (PIV) Jet injection Thermal runaway S-PVC To quench a thermal runaway reaction in a chemical rector, an efficient approach is the introduction of a small quantity of a liquid inhibiting agent, named a “killer”, into the mixing vessel. In this thesis, an experimental approach has been coupled tightly with numerical modelling using Computational Fluid Dynamics (CFD). The first part of this thesis is devoted to a study of the hydrodynamics of partially-baffled mixing vessels, including the free-surface deformation caused by the central vortex. The use of an inhomogeneous, multiphase approach allowed simulation of the free-surface deformation. The capability of this novel method was demonstrated by very good agreement between the numerical predictions and experimental data. In the second part, liquid jet injection at the free-surface was coupled with the vessel hydrodynamics. Numerical results, obtained using an Eulerian-Lagrangian approach, have again shown good agreement with experimental data. These results allowed the jet trajectory to be modelled and its penetration into the agitated vessel was quantified. New mixing criteria were introduced that are specific to this application. Finally, the numerical methods validated at the pilot scale were applied at the industrial scale and allowed the proposal of practical improvements to the safety of the synthesis reactors studied 2007-12-06 PhD Thesis PeerReviewed application/pdf http://oatao.univ-toulouse.fr/7658/1/torre.pdf en Laboratoire de Génie Chimique - LGC (Toulouse, France) info:eu-repo/semantics/doctoralThesis info:eu-repo/semantics/openAccess Torré, Jean-Philippe. Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface. PhD, Institut National Polytechnique de Toulouse, 2007 http://ethesis.inp-toulouse.fr/archive/00000589/ http://oatao.univ-toulouse.fr/7658/
collection NDLTD
language en
format Others
sources NDLTD
topic Agitation and mixing
Computational Fluid Dynamics (CFD)
Partially-baffled agitated vessel
Free-surface
Particle Image Velocimetry (PIV)
Jet injection
Thermal runaway
S-PVC
spellingShingle Agitation and mixing
Computational Fluid Dynamics (CFD)
Partially-baffled agitated vessel
Free-surface
Particle Image Velocimetry (PIV)
Jet injection
Thermal runaway
S-PVC
Torré, Jean-Philippe
Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
description To quench a thermal runaway reaction in a chemical rector, an efficient approach is the introduction of a small quantity of a liquid inhibiting agent, named a “killer”, into the mixing vessel. In this thesis, an experimental approach has been coupled tightly with numerical modelling using Computational Fluid Dynamics (CFD). The first part of this thesis is devoted to a study of the hydrodynamics of partially-baffled mixing vessels, including the free-surface deformation caused by the central vortex. The use of an inhomogeneous, multiphase approach allowed simulation of the free-surface deformation. The capability of this novel method was demonstrated by very good agreement between the numerical predictions and experimental data. In the second part, liquid jet injection at the free-surface was coupled with the vessel hydrodynamics. Numerical results, obtained using an Eulerian-Lagrangian approach, have again shown good agreement with experimental data. These results allowed the jet trajectory to be modelled and its penetration into the agitated vessel was quantified. New mixing criteria were introduced that are specific to this application. Finally, the numerical methods validated at the pilot scale were applied at the industrial scale and allowed the proposal of practical improvements to the safety of the synthesis reactors studied
author2 Institut National Polytechnique de Toulouse - INPT (FRANCE)
author_facet Institut National Polytechnique de Toulouse - INPT (FRANCE)
Torré, Jean-Philippe
author Torré, Jean-Philippe
author_sort Torré, Jean-Philippe
title Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
title_short Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
title_full Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
title_fullStr Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
title_full_unstemmed Quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
title_sort quenching runaway reactions : hydrodynamics and jet injection studies for agitated reactors with a deformed free-surface
publishDate 2007
url http://oatao.univ-toulouse.fr/7658/1/torre.pdf
work_keys_str_mv AT torrejeanphilippe quenchingrunawayreactionshydrodynamicsandjetinjectionstudiesforagitatedreactorswithadeformedfreesurface
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