Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition

The 3-component velocity distribution of two lean-burn gas turbine fuel injectors are measured at a planar location near and parallel to the injector outlet. The two injectors are nominally the same design, but one features blocked central passages to study the effects of the presence of multi-strea...

全面介紹

書目詳細資料
發表在:Energies
Main Authors: Daniel Butcher, Adrian Spencer
格式: Article
語言:英语
出版: MDPI AG 2021-03-01
主題:
在線閱讀:https://www.mdpi.com/1996-1073/14/6/1789
_version_ 1850309031514603520
author Daniel Butcher
Adrian Spencer
author_facet Daniel Butcher
Adrian Spencer
author_sort Daniel Butcher
collection DOAJ
container_title Energies
description The 3-component velocity distribution of two lean-burn gas turbine fuel injectors are measured at a planar location near and parallel to the injector outlet. The two injectors are nominally the same design, but one features blocked central passages to study the effects of the presence of multi-streams and reveal the single stream characteristics embedded within the multi-stream configuration. Stereoscopic particle image velocimetry is used in an isothermal, non-reacting water analogue flow facility at an engine relevant Reynolds number. The velocity data is analysed using proper orthogonal decomposition (POD) and the work introduces the concept of Zonal POD. This is the splitting of the velocity field into zones prior to the calculation of POD modes to better identify prominent structures and features associated with each zone. Because modes are sorted by the area averaged energy contribution, zoning of a velocity field of interest may change the individual modes and will almost certainly change their order for anything other than trivial flow fields. Analysis of ensemble average and velocity fluctuation profiles reveals a radial shift outboard of the mains flow with the presence of the pilot as well as a general increase in RMS across the intermediate region between the pilot and mains flows. Analysis of POD temporal coefficients in the frequency domain reveals a low-frequency peak is evident in the mains flow region, but which may be affected by the presence of pilot flow. Furthermore, application of the ZPOD technique results in a closer representation of the velocity data for a given number of modes. This shows the behaviour of the unsteady pilot flow and reveals that a significant proportion of the fluctuating energy, RMS, is caused by this characteristic.
format Article
id doaj-art-3c19ed19fc974daa89db0ef278665d8f
institution Directory of Open Access Journals
issn 1996-1073
language English
publishDate 2021-03-01
publisher MDPI AG
record_format Article
spelling doaj-art-3c19ed19fc974daa89db0ef278665d8f2025-08-19T23:27:56ZengMDPI AGEnergies1996-10732021-03-01146178910.3390/en14061789Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal DecompositionDaniel Butcher0Adrian Spencer1Department of Aeronautical and Automotive Engineering, Loughborough University, Loughborough LE11 3TU, UKDepartment of Aeronautical and Automotive Engineering, Loughborough University, Loughborough LE11 3TU, UKThe 3-component velocity distribution of two lean-burn gas turbine fuel injectors are measured at a planar location near and parallel to the injector outlet. The two injectors are nominally the same design, but one features blocked central passages to study the effects of the presence of multi-streams and reveal the single stream characteristics embedded within the multi-stream configuration. Stereoscopic particle image velocimetry is used in an isothermal, non-reacting water analogue flow facility at an engine relevant Reynolds number. The velocity data is analysed using proper orthogonal decomposition (POD) and the work introduces the concept of Zonal POD. This is the splitting of the velocity field into zones prior to the calculation of POD modes to better identify prominent structures and features associated with each zone. Because modes are sorted by the area averaged energy contribution, zoning of a velocity field of interest may change the individual modes and will almost certainly change their order for anything other than trivial flow fields. Analysis of ensemble average and velocity fluctuation profiles reveals a radial shift outboard of the mains flow with the presence of the pilot as well as a general increase in RMS across the intermediate region between the pilot and mains flows. Analysis of POD temporal coefficients in the frequency domain reveals a low-frequency peak is evident in the mains flow region, but which may be affected by the presence of pilot flow. Furthermore, application of the ZPOD technique results in a closer representation of the velocity data for a given number of modes. This shows the behaviour of the unsteady pilot flow and reveals that a significant proportion of the fluctuating energy, RMS, is caused by this characteristic.https://www.mdpi.com/1996-1073/14/6/1789gas turbine fuel injectorproper orthogonal decompositionZPODswirling flowmodal analysismulti-stream flows
spellingShingle Daniel Butcher
Adrian Spencer
Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
gas turbine fuel injector
proper orthogonal decomposition
ZPOD
swirling flow
modal analysis
multi-stream flows
title Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
title_full Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
title_fullStr Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
title_full_unstemmed Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
title_short Analysis of Multi-Stream Fuel Injector Flow Using Zonal Proper Orthogonal Decomposition
title_sort analysis of multi stream fuel injector flow using zonal proper orthogonal decomposition
topic gas turbine fuel injector
proper orthogonal decomposition
ZPOD
swirling flow
modal analysis
multi-stream flows
url https://www.mdpi.com/1996-1073/14/6/1789
work_keys_str_mv AT danielbutcher analysisofmultistreamfuelinjectorflowusingzonalproperorthogonaldecomposition
AT adrianspencer analysisofmultistreamfuelinjectorflowusingzonalproperorthogonaldecomposition