Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine

Rotating detonation rocket engines (RDREs) exhibit various unsteady phenomena, including modal transitions, that significantly affect their operation, performance and stability. The dynamics of the detonation waves are studied during a descending modal transition (DMT) where four co-rotating detonat...

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Main Authors: Armani Batista, Mathias C. Ross, Christopher Lietz, William A. Hargus
Format: Article
Language:English
Published: MDPI AG 2021-06-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/12/3387
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spelling doaj-1b47646a4e6e45cbb832739a7bf3e6902021-06-30T23:39:20ZengMDPI AGEnergies1996-10732021-06-01143387338710.3390/en14123387Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket EngineArmani Batista0Mathias C. Ross1Christopher Lietz2William A. Hargus3National Research Council (NRC), Air Force Research Laboratory, Edwards AFB, CA 93524, USADepartment of Mechanical and Aerospace Engineering, University of California, Los Angeles, CA 90095, USASierra Lobo, Inc., Edwards AFB, CA 93524, USAAir Force Research Laboratory, Edwards AFB, CA 93524, USARotating detonation rocket engines (RDREs) exhibit various unsteady phenomena, including modal transitions, that significantly affect their operation, performance and stability. The dynamics of the detonation waves are studied during a descending modal transition (DMT) where four co-rotating detonations waves decrease to three in a gaseous methane-oxygen RDRE. Detonation wave tracking is applied to capture, visualize and analyze unsteady, 3D detonation wave dynamics data within the combustion chamber of the RDRE. The mechanism of a descending modal transition is the failure of a detonation wave in the RDRE, and in this study, the failing wave is identified along with its failure time. The regions upstream of each relative detonation show the mixture and flow-field parameters that drive detonation failure. Additionally, it is shown that descending modal transitions encompass multiple phases of detonation decay and recovery with respect to RDREs. The results show high upstream pressure, heat release and temperature, coupled with insufficient propellants, lead to detonation wave failure and non-recovery of the trailing detonation wave during a descending modal transition. Finally, the Wolanski wave stability criterion regarding detonation critical reactant mixing height provides insight into detonation failure or sustainment.https://www.mdpi.com/1996-1073/14/12/3387rotating detonation rocket engine (RDRE)wave interactiondescending modal transition (DMT)detonation wave trackingWolanski wave stability criterion
collection DOAJ
language English
format Article
sources DOAJ
author Armani Batista
Mathias C. Ross
Christopher Lietz
William A. Hargus
spellingShingle Armani Batista
Mathias C. Ross
Christopher Lietz
William A. Hargus
Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
Energies
rotating detonation rocket engine (RDRE)
wave interaction
descending modal transition (DMT)
detonation wave tracking
Wolanski wave stability criterion
author_facet Armani Batista
Mathias C. Ross
Christopher Lietz
William A. Hargus
author_sort Armani Batista
title Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
title_short Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
title_full Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
title_fullStr Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
title_full_unstemmed Descending Modal Transition Dynamics in a Large Eddy Simulation of a Rotating Detonation Rocket Engine
title_sort descending modal transition dynamics in a large eddy simulation of a rotating detonation rocket engine
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-06-01
description Rotating detonation rocket engines (RDREs) exhibit various unsteady phenomena, including modal transitions, that significantly affect their operation, performance and stability. The dynamics of the detonation waves are studied during a descending modal transition (DMT) where four co-rotating detonations waves decrease to three in a gaseous methane-oxygen RDRE. Detonation wave tracking is applied to capture, visualize and analyze unsteady, 3D detonation wave dynamics data within the combustion chamber of the RDRE. The mechanism of a descending modal transition is the failure of a detonation wave in the RDRE, and in this study, the failing wave is identified along with its failure time. The regions upstream of each relative detonation show the mixture and flow-field parameters that drive detonation failure. Additionally, it is shown that descending modal transitions encompass multiple phases of detonation decay and recovery with respect to RDREs. The results show high upstream pressure, heat release and temperature, coupled with insufficient propellants, lead to detonation wave failure and non-recovery of the trailing detonation wave during a descending modal transition. Finally, the Wolanski wave stability criterion regarding detonation critical reactant mixing height provides insight into detonation failure or sustainment.
topic rotating detonation rocket engine (RDRE)
wave interaction
descending modal transition (DMT)
detonation wave tracking
Wolanski wave stability criterion
url https://www.mdpi.com/1996-1073/14/12/3387
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AT mathiascross descendingmodaltransitiondynamicsinalargeeddysimulationofarotatingdetonationrocketengine
AT christopherlietz descendingmodaltransitiondynamicsinalargeeddysimulationofarotatingdetonationrocketengine
AT williamahargus descendingmodaltransitiondynamicsinalargeeddysimulationofarotatingdetonationrocketengine
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