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    HP Vane Aerodynamics and Heat Transfer in the Presence of Aggressive Inlet Swirl

    Source: Journal of Turbomachinery:;2013:;volume( 135 ):;issue: 002::page 21040
    Author:
    Qureshi, Imran
    ,
    Smith, Andy D.
    ,
    Povey, Thomas
    DOI: 10.1115/1.4006610
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Modern lean burn combustors now employ aggressive swirlers to enhance fuelair mixing and improve flame stability. The flow at combustor exit can therefore have high residual swirl. A good deal of research concerning the flow within the combustor is available in open literature. The impact of swirl on the aerodynamic and heat transfer characteristics of an HP turbine stage is not well understood, however. A combustor swirl simulator has been designed and commissioned in the Oxford Turbine Research Facility (OTRF), previously located at QinetiQ, Farnborough UK. The swirl simulator is capable of generating an enginerepresentative combustor exit swirl pattern. At the turbine inlet plane, yaw and pitch angles of over آ±40 deg have been simulated. The turbine research facility used for the study is an engine scale, short duration, rotating transonic turbine, in which the nondimensional parameters for aerodynamics and heat transfer are matched to engine conditions. The research turbine was the unshrouded MT1 design. By design, the center of the vortex from the swirl simulator can be clocked to any circumferential position with respect to HP vane, and the vortextovane count ratio is 1:2. For the current investigation, the clocking position was such that the vortex center was aligned with the vane leading edge (every second vane). Both the aligned vane and the adjacent vane were characterized. This paper presents measurements of HP vane surface and end wall heat transfer for the two vane positions. The results are compared with measurements conducted without swirl. The vane surface pressure distributions are also presented. The experimental measurements are compared with fullstage threedimensional unsteady numerical predictions obtained using the Rolls Royce inhouse code Hydra. The aerodynamic and heat transfer characterization presented in this paper is the first of its kind, and it is hoped to give some insight into the significant changes in the vane flow and heat transfer that occur in the current generation of low NOx combustors. The findings not only have implications for the vane aerodynamic design, but also for the cooling system design.
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      HP Vane Aerodynamics and Heat Transfer in the Presence of Aggressive Inlet Swirl

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    contributor authorQureshi, Imran
    contributor authorSmith, Andy D.
    contributor authorPovey, Thomas
    date accessioned2017-05-09T01:03:38Z
    date available2017-05-09T01:03:38Z
    date issued2013
    identifier issn0889-504X
    identifier otherturb_135_2_021040.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/153452
    description abstractModern lean burn combustors now employ aggressive swirlers to enhance fuelair mixing and improve flame stability. The flow at combustor exit can therefore have high residual swirl. A good deal of research concerning the flow within the combustor is available in open literature. The impact of swirl on the aerodynamic and heat transfer characteristics of an HP turbine stage is not well understood, however. A combustor swirl simulator has been designed and commissioned in the Oxford Turbine Research Facility (OTRF), previously located at QinetiQ, Farnborough UK. The swirl simulator is capable of generating an enginerepresentative combustor exit swirl pattern. At the turbine inlet plane, yaw and pitch angles of over آ±40 deg have been simulated. The turbine research facility used for the study is an engine scale, short duration, rotating transonic turbine, in which the nondimensional parameters for aerodynamics and heat transfer are matched to engine conditions. The research turbine was the unshrouded MT1 design. By design, the center of the vortex from the swirl simulator can be clocked to any circumferential position with respect to HP vane, and the vortextovane count ratio is 1:2. For the current investigation, the clocking position was such that the vortex center was aligned with the vane leading edge (every second vane). Both the aligned vane and the adjacent vane were characterized. This paper presents measurements of HP vane surface and end wall heat transfer for the two vane positions. The results are compared with measurements conducted without swirl. The vane surface pressure distributions are also presented. The experimental measurements are compared with fullstage threedimensional unsteady numerical predictions obtained using the Rolls Royce inhouse code Hydra. The aerodynamic and heat transfer characterization presented in this paper is the first of its kind, and it is hoped to give some insight into the significant changes in the vane flow and heat transfer that occur in the current generation of low NOx combustors. The findings not only have implications for the vane aerodynamic design, but also for the cooling system design.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleHP Vane Aerodynamics and Heat Transfer in the Presence of Aggressive Inlet Swirl
    typeJournal Paper
    journal volume135
    journal issue2
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.4006610
    journal fristpage21040
    journal lastpage21040
    identifier eissn1528-8900
    treeJournal of Turbomachinery:;2013:;volume( 135 ):;issue: 002
    contenttypeFulltext
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