Characteristics of Pulsating Flows in a Pulse Combustor

Pulsating flows in a Helmholtz pulse combustor tailpipe were numerically simulated by a commercial CFD software package, FLUENT. The effects of ambient temperature on the characteristics of the pulsating tailpipe flows were studied. Two study cases, with high and low levels of ambient temperature, w...

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Main Author: Liewkongsataporn, Wichit
Format: Others
Language:en_US
Published: Georgia Institute of Technology 2006
Subjects:
Online Access:http://hdl.handle.net/1853/11542
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-115422013-01-07T20:14:36ZCharacteristics of Pulsating Flows in a Pulse CombustorLiewkongsataporn, WichitCFD simulationAcoustic resonancePulsating flows in a Helmholtz pulse combustor tailpipe were numerically simulated by a commercial CFD software package, FLUENT. The effects of ambient temperature on the characteristics of the pulsating tailpipe flows were studied. Two study cases, with high and low levels of ambient temperature, were simulated with compressible flow equations. An additional case, with high ambient temperature, was simulated with incompressible (temperature-dependent density) flow equations. Results showed that the effect of ambient temperature on the mean temperature profile in the tailpipe was limited to the distance where the ambient fluid traveled into the tailpipe during the period of flow reversal. In this region, the amplitude of mass flow rate oscillation significantly increased, due to higher density associated with low ambient temperature. The overall effects of cooler ambient temperature included an increase in mean pressure at the entrance of the tailpipe and a decrease in the magnitude of velocity amplitude profile along the tailpipe. Interestingly, the mean velocities along the tailpipe, even at the tailpipe exit, were not affected by the cooler ambient air. The mean velocity at the exit corresponded to the higher temperature of fresh fluid from upstream, which was not affected by the ambient temperature, driven out of the tailpipe in each oscillation cycle. The linear acoustic theory with appropriate assumptions could be used to calculate the magnitude of the profiles of velocity amplitude along the tailpipe as a fair approximation, at least for the study cases in this thesis.Georgia Institute of Technology2006-09-01T19:31:55Z2006-09-01T19:31:55Z2006-07-05Thesis1859959 bytesapplication/pdfhttp://hdl.handle.net/1853/11542en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic CFD simulation
Acoustic resonance
spellingShingle CFD simulation
Acoustic resonance
Liewkongsataporn, Wichit
Characteristics of Pulsating Flows in a Pulse Combustor
description Pulsating flows in a Helmholtz pulse combustor tailpipe were numerically simulated by a commercial CFD software package, FLUENT. The effects of ambient temperature on the characteristics of the pulsating tailpipe flows were studied. Two study cases, with high and low levels of ambient temperature, were simulated with compressible flow equations. An additional case, with high ambient temperature, was simulated with incompressible (temperature-dependent density) flow equations. Results showed that the effect of ambient temperature on the mean temperature profile in the tailpipe was limited to the distance where the ambient fluid traveled into the tailpipe during the period of flow reversal. In this region, the amplitude of mass flow rate oscillation significantly increased, due to higher density associated with low ambient temperature. The overall effects of cooler ambient temperature included an increase in mean pressure at the entrance of the tailpipe and a decrease in the magnitude of velocity amplitude profile along the tailpipe. Interestingly, the mean velocities along the tailpipe, even at the tailpipe exit, were not affected by the cooler ambient air. The mean velocity at the exit corresponded to the higher temperature of fresh fluid from upstream, which was not affected by the ambient temperature, driven out of the tailpipe in each oscillation cycle. The linear acoustic theory with appropriate assumptions could be used to calculate the magnitude of the profiles of velocity amplitude along the tailpipe as a fair approximation, at least for the study cases in this thesis.
author Liewkongsataporn, Wichit
author_facet Liewkongsataporn, Wichit
author_sort Liewkongsataporn, Wichit
title Characteristics of Pulsating Flows in a Pulse Combustor
title_short Characteristics of Pulsating Flows in a Pulse Combustor
title_full Characteristics of Pulsating Flows in a Pulse Combustor
title_fullStr Characteristics of Pulsating Flows in a Pulse Combustor
title_full_unstemmed Characteristics of Pulsating Flows in a Pulse Combustor
title_sort characteristics of pulsating flows in a pulse combustor
publisher Georgia Institute of Technology
publishDate 2006
url http://hdl.handle.net/1853/11542
work_keys_str_mv AT liewkongsatapornwichit characteristicsofpulsatingflowsinapulsecombustor
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