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    Detailed Flow Study of Mach Number 1.6 High Transonic Flow With a Shock Wave in a Pressure Ratio 11 Centrifugal Compressor Impeller

    Source: Journal of Turbomachinery:;2004:;volume( 126 ):;issue: 004::page 473
    Author:
    Hirotaka Higashimori
    ,
    Kiyoshi Hasagawa
    ,
    Kunio Sumida
    ,
    Tooru Suita
    DOI: 10.1115/1.1791645
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Requirements for aeronautical gas turbine engines for helicopters include small size, low weight, high output, and low fuel consumption. In order to achieve these requirements, development work has been carried out on high efficiency and high pressure ratio compressors. As a result, we have developed a single stage centrifugal compressor with a pressure ratio of 11 for a 1000 shp class gas turbine. The centrifugal compressor is a high transonic compressor with an inlet Mach number of about 1.6. In high inlet Mach number compressors, the flow distortion due to the shock wave and the shock boundary layer interaction must have a large effect on the flow in the inducer. In order to ensure the reliability of aerodynamic design technology, the actual supersonic flow phenomena with a shock wave must be ascertained using measurement and Computational Fluid Dynamics (CFD). This report presents the measured results of the high transonic flow at the impeller inlet using Laser Doppler Velocimeter (LDV) and verification of CFD, with respect to the high transonic flow velocity distribution, pressure distribution, and shock boundary layer interaction at the inducer. The impeller inlet tangential velocity is about 460 m/s and the relative Mach number reaches about 1.6. Using a LDV, about 500 m/s relative velocity was measured preceding a steep deceleration of velocity. The following steep deceleration of velocity at the middle of blade pitch clarified the cause as being the pressure rise of a shock wave, through comparison with CFD as well as comparison with the pressure distribution measured using a high frequency pressure transducer. Furthermore, a reverse flow is measured in the vicinity of casing surface. It was clarified by comparison with CFD that the reverse flow is caused by the shock-boundary layer interaction. Generally CFD shows good agreement with the measured velocity distribution at the inducer and splitter inlet, except in the vicinity of the casing surface.
    keyword(s): Pressure , Flow (Dynamics) , Mach number , Suction , Shock waves , Computational fluid dynamics , Blades , Transonic flow , Laser Doppler anemometry , Light trucks , Shock (Mechanics) , Impellers , Compressors , Boundary layers AND Compressor impellers ,
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      Detailed Flow Study of Mach Number 1.6 High Transonic Flow With a Shock Wave in a Pressure Ratio 11 Centrifugal Compressor Impeller

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    http://yetl.yabesh.ir/yetl1/handle/yetl/130946
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    • Journal of Turbomachinery

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    contributor authorHirotaka Higashimori
    contributor authorKiyoshi Hasagawa
    contributor authorKunio Sumida
    contributor authorTooru Suita
    date accessioned2017-05-09T00:14:38Z
    date available2017-05-09T00:14:38Z
    date copyrightOctober, 2004
    date issued2004
    identifier issn0889-504X
    identifier otherJOTUEI-28715#473_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/130946
    description abstractRequirements for aeronautical gas turbine engines for helicopters include small size, low weight, high output, and low fuel consumption. In order to achieve these requirements, development work has been carried out on high efficiency and high pressure ratio compressors. As a result, we have developed a single stage centrifugal compressor with a pressure ratio of 11 for a 1000 shp class gas turbine. The centrifugal compressor is a high transonic compressor with an inlet Mach number of about 1.6. In high inlet Mach number compressors, the flow distortion due to the shock wave and the shock boundary layer interaction must have a large effect on the flow in the inducer. In order to ensure the reliability of aerodynamic design technology, the actual supersonic flow phenomena with a shock wave must be ascertained using measurement and Computational Fluid Dynamics (CFD). This report presents the measured results of the high transonic flow at the impeller inlet using Laser Doppler Velocimeter (LDV) and verification of CFD, with respect to the high transonic flow velocity distribution, pressure distribution, and shock boundary layer interaction at the inducer. The impeller inlet tangential velocity is about 460 m/s and the relative Mach number reaches about 1.6. Using a LDV, about 500 m/s relative velocity was measured preceding a steep deceleration of velocity. The following steep deceleration of velocity at the middle of blade pitch clarified the cause as being the pressure rise of a shock wave, through comparison with CFD as well as comparison with the pressure distribution measured using a high frequency pressure transducer. Furthermore, a reverse flow is measured in the vicinity of casing surface. It was clarified by comparison with CFD that the reverse flow is caused by the shock-boundary layer interaction. Generally CFD shows good agreement with the measured velocity distribution at the inducer and splitter inlet, except in the vicinity of the casing surface.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDetailed Flow Study of Mach Number 1.6 High Transonic Flow With a Shock Wave in a Pressure Ratio 11 Centrifugal Compressor Impeller
    typeJournal Paper
    journal volume126
    journal issue4
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.1791645
    journal fristpage473
    journal lastpage481
    identifier eissn1528-8900
    keywordsPressure
    keywordsFlow (Dynamics)
    keywordsMach number
    keywordsSuction
    keywordsShock waves
    keywordsComputational fluid dynamics
    keywordsBlades
    keywordsTransonic flow
    keywordsLaser Doppler anemometry
    keywordsLight trucks
    keywordsShock (Mechanics)
    keywordsImpellers
    keywordsCompressors
    keywordsBoundary layers AND Compressor impellers
    treeJournal of Turbomachinery:;2004:;volume( 126 ):;issue: 004
    contenttypeFulltext
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