A numerical study of planar detonations

A numerical study on the buildup and propagation of planar detonation waves in H2 + Air combustible mixtures, based on the use of unsteady Euler equations coupled with source terms to account for rates controlled chemical activity, is presented. The computer solver works with 13 chemical species and...

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Autores Principales: Tamagno,J. P., Elaskar,S. A., Garcia,J. O.
Formato: Online
Idioma:Spanish / Castilian
Publicado: Latin American applied research 2012
Acceso en línea:http://bibliotecadigital.uns.edu.ar/scielo.php?script=sci_arttext&pid=S0327-07932012002200009
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spelling bda_laar-S0327-079320120022000092012-04-01A numerical study of planar detonationsTamagno,J. P.Elaskar,S. A.Garcia,J. O. Unsteady Flow Chemically Reacting Flows Ignition Chapman-Jouguet Detonations Overdriven Detonations A numerical study on the buildup and propagation of planar detonation waves in H2 + Air combustible mixtures, based on the use of unsteady Euler equations coupled with source terms to account for rates controlled chemical activity, is presented. The computer solver works with 13 chemical species and 33 different one step reactions of a H2-O2 - N2 combustion mechanism. The detonation process is initiated via the energy provided by an igniter which acts as a driver of a shock tube driving through a combustible mixture a blast (or strong shock), accompanied by exothermic chemical changes. It is shown that for each equivalence ratio of the combustible mixture, the detonation can only be triggered if the igniter energy deposition equals or exceeds a computed minimum value. When the igniter energy deposition is less than this minimum, the combustion zone start to decouple from the blast front and if that energy is diminished even more, the combustion could not take place. A particular way of generating sustained overdriven detonations, is also considered.Latin American applied research2012-04-01journal articletext/htmlhttp://bibliotecadigital.uns.edu.ar/scielo.php?script=sci_arttext&pid=S0327-07932012002200009es
institution UNS
collection Biblioteca Digital Académica
building Biblioteca Central
bda_str Latin American Applied Research
hierarchy_parent_id bda_laar
hierarchy_parent_title Latin American Applied Research
hierarchy_top_id bda_str
hierarchy_top_title Biblioteca Digital Académica
first_indexed 2018-08-22T17:39:27Z
last_indexed 2018-08-22T17:39:27Z
language Spanish / Castilian
format Online
author Tamagno,J. P.
Elaskar,S. A.
Garcia,J. O.
spellingShingle Tamagno,J. P.
Elaskar,S. A.
Garcia,J. O.
A numerical study of planar detonations
author_facet Tamagno,J. P.
Elaskar,S. A.
Garcia,J. O.
author_sort Tamagno,J. P.
title A numerical study of planar detonations
title_short A numerical study of planar detonations
title_full A numerical study of planar detonations
title_fullStr A numerical study of planar detonations
title_full_unstemmed A numerical study of planar detonations
title_sort numerical study of planar detonations
topic_facet Unsteady Flow
Chemically Reacting Flows
Ignition
Chapman-Jouguet Detonations
Overdriven Detonations
description A numerical study on the buildup and propagation of planar detonation waves in H2 + Air combustible mixtures, based on the use of unsteady Euler equations coupled with source terms to account for rates controlled chemical activity, is presented. The computer solver works with 13 chemical species and 33 different one step reactions of a H2-O2 - N2 combustion mechanism. The detonation process is initiated via the energy provided by an igniter which acts as a driver of a shock tube driving through a combustible mixture a blast (or strong shock), accompanied by exothermic chemical changes. It is shown that for each equivalence ratio of the combustible mixture, the detonation can only be triggered if the igniter energy deposition equals or exceeds a computed minimum value. When the igniter energy deposition is less than this minimum, the combustion zone start to decouple from the blast front and if that energy is diminished even more, the combustion could not take place. A particular way of generating sustained overdriven detonations, is also considered.
publisher Latin American applied research
publishDate 2012
url http://bibliotecadigital.uns.edu.ar/scielo.php?script=sci_arttext&pid=S0327-07932012002200009
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score 12,614403