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    Computational Fluid Dynamics Evaluations of Unconventional Film Cooling Scaling Parameters on a Simulated Turbine Blade Leading Edge

    Source: Journal of Turbomachinery:;2014:;volume( 136 ):;issue: 010::page 101006
    Author:
    Rutledge, James L.
    ,
    Polanka, Marc D.
    DOI: 10.1115/1.4028001
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: While it is well understood that certain nondimensional parameters, such as freestream Reynolds number and turbulence intensity, must be matched for proper design of film cooling experiments; uncertainty continues on the ideal method to scale film cooling flow rate. This debate typically surrounds the influence of the coolant to freestream density ratio (DR) and whether mass flux ratio or momentum flux ratio properly accounts for the density effects. Unfortunately, density is not the only fluid property to differ between typical wind tunnel experiments and actual turbine conditions. Temperature differences account for the majority of the property differences; however, attempts to match DR through the use of alternative gases can exacerbate these property differences. A computational study was conducted to determine the influence of other fluid properties besides density, namely, specific heat, thermal conductivity, and dynamic viscosity. Computational fluid dynamics (CFD) simulations were performed by altering traditional film cooling nondimensional parameters as well as others such as the Reynolds number ratio, Prandtl number ratio, and heat capacity ratio (HCR) to evaluate their effects on adiabatic effectiveness and heat transfer coefficient. A cylindrical leading edge with a flat afterbody was used to simulate a turbine blade leading edge region. A single coolant hole was located 21.5 deg from the leading edge, angled 20 deg to the surface and 90 deg from the streamwise direction. Results indicated that thermal properties can play a significant role in understanding and matching results in cooling performance. Density effects certainly dominate; however, variations in conductivity and heat capacity can result in 10% or higher changes in the resulting heat flux to the surface when scaling ambient rig configurations to engine representative conditions.
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      Computational Fluid Dynamics Evaluations of Unconventional Film Cooling Scaling Parameters on a Simulated Turbine Blade Leading Edge

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    contributor authorRutledge, James L.
    contributor authorPolanka, Marc D.
    date accessioned2017-05-09T01:13:50Z
    date available2017-05-09T01:13:50Z
    date issued2014
    identifier issn0889-504X
    identifier otherturbo_136_10_101006.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/156674
    description abstractWhile it is well understood that certain nondimensional parameters, such as freestream Reynolds number and turbulence intensity, must be matched for proper design of film cooling experiments; uncertainty continues on the ideal method to scale film cooling flow rate. This debate typically surrounds the influence of the coolant to freestream density ratio (DR) and whether mass flux ratio or momentum flux ratio properly accounts for the density effects. Unfortunately, density is not the only fluid property to differ between typical wind tunnel experiments and actual turbine conditions. Temperature differences account for the majority of the property differences; however, attempts to match DR through the use of alternative gases can exacerbate these property differences. A computational study was conducted to determine the influence of other fluid properties besides density, namely, specific heat, thermal conductivity, and dynamic viscosity. Computational fluid dynamics (CFD) simulations were performed by altering traditional film cooling nondimensional parameters as well as others such as the Reynolds number ratio, Prandtl number ratio, and heat capacity ratio (HCR) to evaluate their effects on adiabatic effectiveness and heat transfer coefficient. A cylindrical leading edge with a flat afterbody was used to simulate a turbine blade leading edge region. A single coolant hole was located 21.5 deg from the leading edge, angled 20 deg to the surface and 90 deg from the streamwise direction. Results indicated that thermal properties can play a significant role in understanding and matching results in cooling performance. Density effects certainly dominate; however, variations in conductivity and heat capacity can result in 10% or higher changes in the resulting heat flux to the surface when scaling ambient rig configurations to engine representative conditions.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleComputational Fluid Dynamics Evaluations of Unconventional Film Cooling Scaling Parameters on a Simulated Turbine Blade Leading Edge
    typeJournal Paper
    journal volume136
    journal issue10
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.4028001
    journal fristpage101006
    journal lastpage101006
    identifier eissn1528-8900
    treeJournal of Turbomachinery:;2014:;volume( 136 ):;issue: 010
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
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