Computational Investigation of Flow Control Methods in the Impeller Rear Cavity

In typical median and small aeroengines, the air used to realize the functions such as cooling of turbine blades and disks, sealing of turbine cavities and bearing chambers, adjusting of rotating assembly axial load is normally drawn through the rear cavity of centrifugal impeller, so the thorough u...

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Main Authors: Guang Liu, Qiang Du, Jun Liu, Pei Wang, RuoNan Wang, ZengYan Lian
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:International Journal of Aerospace Engineering
Online Access:http://dx.doi.org/10.1155/2020/2187975
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spelling doaj-662ce1d4fe114e608058a311969cfdc32020-11-25T00:28:45ZengHindawi LimitedInternational Journal of Aerospace Engineering1687-59661687-59742020-01-01202010.1155/2020/21879752187975Computational Investigation of Flow Control Methods in the Impeller Rear CavityGuang Liu0Qiang Du1Jun Liu2Pei Wang3RuoNan Wang4ZengYan Lian5Laboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaLaboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaLaboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaLaboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaLaboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaLaboratory of Light-Duty Gas-Turbine, Institute of Engineering Thermophysics, Chinese Academy of Sciences, 11 Beisihuan Road, Beijing 100190, ChinaIn typical median and small aeroengines, the air used to realize the functions such as cooling of turbine blades and disks, sealing of turbine cavities and bearing chambers, adjusting of rotating assembly axial load is normally drawn through the rear cavity of centrifugal impeller, so the thorough understanding of flow characteristics and pressure distribution and the proposal of the corresponding control methods in the cavity are the key to design the rational secondary air system. With an impeller rear cavity in a small turbofan engine as an object, the current study was dedicated to the investigation of flow control methods in the cavity. Two methods, namely, baffle and swirl-controlled orifice, were proposed to regulate the pressure loss and distribution in the cavity. Furthermore, the influence of geometry parameters of the two methods such as the length of baffle, the space between the baffle and rotating disk wall, the orientation, and radial position of swirl-controlled orifice was investigated. The CFD results show that the swirl-controlled orifice which could deswirl the flow is more effective in regulating the pressure loss and its distribution in cavity than baffle. The variation of the radial position of the swirl-controlled orifice had little influence on pressure loss but obvious influence on pressure distribution; therefore, decreasing the radial position could reduce the axial load on the rotating disk without changing the outlet pressure.http://dx.doi.org/10.1155/2020/2187975
collection DOAJ
language English
format Article
sources DOAJ
author Guang Liu
Qiang Du
Jun Liu
Pei Wang
RuoNan Wang
ZengYan Lian
spellingShingle Guang Liu
Qiang Du
Jun Liu
Pei Wang
RuoNan Wang
ZengYan Lian
Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
International Journal of Aerospace Engineering
author_facet Guang Liu
Qiang Du
Jun Liu
Pei Wang
RuoNan Wang
ZengYan Lian
author_sort Guang Liu
title Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
title_short Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
title_full Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
title_fullStr Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
title_full_unstemmed Computational Investigation of Flow Control Methods in the Impeller Rear Cavity
title_sort computational investigation of flow control methods in the impeller rear cavity
publisher Hindawi Limited
series International Journal of Aerospace Engineering
issn 1687-5966
1687-5974
publishDate 2020-01-01
description In typical median and small aeroengines, the air used to realize the functions such as cooling of turbine blades and disks, sealing of turbine cavities and bearing chambers, adjusting of rotating assembly axial load is normally drawn through the rear cavity of centrifugal impeller, so the thorough understanding of flow characteristics and pressure distribution and the proposal of the corresponding control methods in the cavity are the key to design the rational secondary air system. With an impeller rear cavity in a small turbofan engine as an object, the current study was dedicated to the investigation of flow control methods in the cavity. Two methods, namely, baffle and swirl-controlled orifice, were proposed to regulate the pressure loss and distribution in the cavity. Furthermore, the influence of geometry parameters of the two methods such as the length of baffle, the space between the baffle and rotating disk wall, the orientation, and radial position of swirl-controlled orifice was investigated. The CFD results show that the swirl-controlled orifice which could deswirl the flow is more effective in regulating the pressure loss and its distribution in cavity than baffle. The variation of the radial position of the swirl-controlled orifice had little influence on pressure loss but obvious influence on pressure distribution; therefore, decreasing the radial position could reduce the axial load on the rotating disk without changing the outlet pressure.
url http://dx.doi.org/10.1155/2020/2187975
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