Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor

The oxidation of ammonia and the interaction between ammonia and hydrogen chemistry have been extensively studied at high temperatures for traditional fames, while no experimental evidences have been provided for conditions relevant to MILD (Moderate or Intensive Low-oxygen Dilution) combustion. The...

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Main Authors: Maria Virginia Manna, Pino Sabia, Raffaele Ragucci, Mara De Joannon
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2021-06-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/11543
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spelling doaj-549aff74f5b049c18896a672871aab582021-06-15T20:22:01ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162021-06-018610.3303/CET2186117Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow ReactorMaria Virginia MannaPino SabiaRaffaele RagucciMara De JoannonThe oxidation of ammonia and the interaction between ammonia and hydrogen chemistry have been extensively studied at high temperatures for traditional fames, while no experimental evidences have been provided for conditions relevant to MILD (Moderate or Intensive Low-oxygen Dilution) combustion. The high dilution levels and the relatively low working temperatures have been proven to promote thermo-kinetic instabilities, with detrimental effects on pollutant emissions and process efficiency. Given this background, first, this work reports on an experimental characterization of NH3-O2-N2 instabilities in a Jet Stirred Flow Reactor. Oxidation regimes were consequently reassumed in Tin-?? (preheating temperature Tin, and equivalence ratio ?) maps. Second, the effect of H2 as a fuel “enhancer” on the identified NH3-O2-N2 oxidation regimes was numerically investigated, parametrically changing the H2 concentration itself. Results suggested that small concentrations of H2 strongly enhance the system reactivity and tighten the Tin-? windows where instabilities occur. Kinetic analyses suggested that H2 strongly interacts with NH2 radicals, enhancing the overall NH3 oxidation chemistry, thus, suppresses the instabilithttps://www.cetjournal.it/index.php/cet/article/view/11543
collection DOAJ
language English
format Article
sources DOAJ
author Maria Virginia Manna
Pino Sabia
Raffaele Ragucci
Mara De Joannon
spellingShingle Maria Virginia Manna
Pino Sabia
Raffaele Ragucci
Mara De Joannon
Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
Chemical Engineering Transactions
author_facet Maria Virginia Manna
Pino Sabia
Raffaele Ragucci
Mara De Joannon
author_sort Maria Virginia Manna
title Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
title_short Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
title_full Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
title_fullStr Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
title_full_unstemmed Thermokinetic Instabilities for Ammonia-hydrogen Mixtures in a Jet Stirred Flow Reactor
title_sort thermokinetic instabilities for ammonia-hydrogen mixtures in a jet stirred flow reactor
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2021-06-01
description The oxidation of ammonia and the interaction between ammonia and hydrogen chemistry have been extensively studied at high temperatures for traditional fames, while no experimental evidences have been provided for conditions relevant to MILD (Moderate or Intensive Low-oxygen Dilution) combustion. The high dilution levels and the relatively low working temperatures have been proven to promote thermo-kinetic instabilities, with detrimental effects on pollutant emissions and process efficiency. Given this background, first, this work reports on an experimental characterization of NH3-O2-N2 instabilities in a Jet Stirred Flow Reactor. Oxidation regimes were consequently reassumed in Tin-?? (preheating temperature Tin, and equivalence ratio ?) maps. Second, the effect of H2 as a fuel “enhancer” on the identified NH3-O2-N2 oxidation regimes was numerically investigated, parametrically changing the H2 concentration itself. Results suggested that small concentrations of H2 strongly enhance the system reactivity and tighten the Tin-? windows where instabilities occur. Kinetic analyses suggested that H2 strongly interacts with NH2 radicals, enhancing the overall NH3 oxidation chemistry, thus, suppresses the instabilit
url https://www.cetjournal.it/index.php/cet/article/view/11543
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AT pinosabia thermokineticinstabilitiesforammoniahydrogenmixturesinajetstirredflowreactor
AT raffaeleragucci thermokineticinstabilitiesforammoniahydrogenmixturesinajetstirredflowreactor
AT maradejoannon thermokineticinstabilitiesforammoniahydrogenmixturesinajetstirredflowreactor
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