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    Effects of an Upstream Cavity on the Secondary Flow in a Transonic Turbine Cascade

    Source: Journal of Turbomachinery:;2012:;volume( 134 ):;issue: 005::page 51009
    Author:
    H. M. Abo El Ella
    ,
    S. A. Sjolander
    ,
    T. J. Praisner
    DOI: 10.1115/1.4003818
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: This paper examines experimentally the effects of an upstream cavity on the flow structures and secondary losses in a transonic linear turbine cascade. The cavity approximates the endwall geometry resulting from the platform overlap at the interface between stationary and rotating turbine blade rows. Previous investigations of the effects of upstream cavity geometries have been conducted mainly at low-speed conditions. The present work aims to extend such research into the transonic regime with a more engine representative upstream platform geometry. The investigations were carried out in a blow-down type wind tunnel. The cavity is located at 30 % of axial chord from the leading edge, extends 17 % of axial-chord in depth, and is followed by a smooth ramp to return the endwall to its nominal height. Two cascades are examined for the same blade geometry: the baseline cascade with a flat endwall and the cascade with the cavity endwall. Measurements were made at the design incidence and the outlet design Mach number of 0.80. At this condition, the Reynolds number based on outlet velocity is about 600,000. Off-design outlet Mach numbers of 0.69, and 0.89 were also investigated. Flowfield measurements were carried out at 40 % axial-chord downstream of the trailing edge, using a seven-hole pressure probe, to quantify losses and identify the flow structures. Additionally, surface flow visualization using an ultra-violet reactive dye was employed at the design Mach number, on the endwall and blade surfaces, to help in the interpretation of the flow physics. The experimental results also include blade-loading distributions, and the probe measurements were processed to obtain total-pressure loss coefficients, and streamwise vorticity distributions. It was found that the presence of the upstream cavity noticeably altered the structure and the strength of the secondary flow. Some effect on the secondary losses was also evident, with the cavity having a larger effect at the higher Mach number.
    keyword(s): Pressure , Flow (Dynamics) , Mach number , Cascades (Fluid dynamics) , Flow visualization , Turbines , Blades , Cavities , Design , Measurement , Geometry , Probes , Wind tunnels , Boundary layers AND Vortices ,
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      Effects of an Upstream Cavity on the Secondary Flow in a Transonic Turbine Cascade

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    contributor authorH. M. Abo El Ella
    contributor authorS. A. Sjolander
    contributor authorT. J. Praisner
    date accessioned2017-05-09T00:55:01Z
    date available2017-05-09T00:55:01Z
    date copyrightSeptember, 2012
    date issued2012
    identifier issn0889-504X
    identifier otherJOTUEI-926079#051009_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/150444
    description abstractThis paper examines experimentally the effects of an upstream cavity on the flow structures and secondary losses in a transonic linear turbine cascade. The cavity approximates the endwall geometry resulting from the platform overlap at the interface between stationary and rotating turbine blade rows. Previous investigations of the effects of upstream cavity geometries have been conducted mainly at low-speed conditions. The present work aims to extend such research into the transonic regime with a more engine representative upstream platform geometry. The investigations were carried out in a blow-down type wind tunnel. The cavity is located at 30 % of axial chord from the leading edge, extends 17 % of axial-chord in depth, and is followed by a smooth ramp to return the endwall to its nominal height. Two cascades are examined for the same blade geometry: the baseline cascade with a flat endwall and the cascade with the cavity endwall. Measurements were made at the design incidence and the outlet design Mach number of 0.80. At this condition, the Reynolds number based on outlet velocity is about 600,000. Off-design outlet Mach numbers of 0.69, and 0.89 were also investigated. Flowfield measurements were carried out at 40 % axial-chord downstream of the trailing edge, using a seven-hole pressure probe, to quantify losses and identify the flow structures. Additionally, surface flow visualization using an ultra-violet reactive dye was employed at the design Mach number, on the endwall and blade surfaces, to help in the interpretation of the flow physics. The experimental results also include blade-loading distributions, and the probe measurements were processed to obtain total-pressure loss coefficients, and streamwise vorticity distributions. It was found that the presence of the upstream cavity noticeably altered the structure and the strength of the secondary flow. Some effect on the secondary losses was also evident, with the cavity having a larger effect at the higher Mach number.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleEffects of an Upstream Cavity on the Secondary Flow in a Transonic Turbine Cascade
    typeJournal Paper
    journal volume134
    journal issue5
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.4003818
    journal fristpage51009
    identifier eissn1528-8900
    keywordsPressure
    keywordsFlow (Dynamics)
    keywordsMach number
    keywordsCascades (Fluid dynamics)
    keywordsFlow visualization
    keywordsTurbines
    keywordsBlades
    keywordsCavities
    keywordsDesign
    keywordsMeasurement
    keywordsGeometry
    keywordsProbes
    keywordsWind tunnels
    keywordsBoundary layers AND Vortices
    treeJournal of Turbomachinery:;2012:;volume( 134 ):;issue: 005
    contenttypeFulltext
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