YaBeSH Engineering and Technology Library

    • Journals
    • PaperQuest
    • YSE Standards
    • YaBeSH
    • Login
    View Item 
    •   YE&T Library
    • ASME
    • Journal of Turbomachinery
    • View Item
    •   YE&T Library
    • ASME
    • Journal of Turbomachinery
    • View Item
    • All Fields
    • Source Title
    • Year
    • Publisher
    • Title
    • Subject
    • Author
    • DOI
    • ISBN
    Advanced Search
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    Archive

    Leading-Edge Film-Cooling Physics—Part III: Diffused Hole Effectiveness

    Source: Journal of Turbomachinery:;2003:;volume( 125 ):;issue: 002::page 252
    Author:
    William D. York
    ,
    James H. Leylek
    DOI: 10.1115/1.1559899
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A proven computational methodology was applied to investigate film cooling from diffused holes on the simulated leading edge of a turbine airfoil. The short film-hole diffuser section was conical in shape with a shallow half-angle, and was joined to a plenum by a cylindrical metering section. The diffusion resulted in a film-hole breakout area of 2.5 times that of a cylindrical hole. In the present paper, predictions of adiabatic effectiveness for the cases with diffused holes are compared to results for standard cylindrical holes, and performance is analyzed in the context of extensive flowfield data. The leading edge surface was elliptic in shape to accurately model a turbine airfoil. The geometry consisted of one row of holes centered on the stagnation line, and two additional rows located 3.5 hole (metering section) diameters downstream on either side of the stagnation line. Film holes in the downstream rows were centered laterally between holes in the stagnation row. All holes were angled at 20 deg with the leading edge surface, and were turned 90 deg with respect to the streamwise direction (radial injection). The average blowing ratio was varied from 1.0 to 2.5, and the coolant-to-mainstream density ratio was equal to 1.8. The steady Reynolds-averaged Navier-Stokes equations were solved with a pressure-correction algorithm on an unstructured, multi-block grid containing 4.6 million finite-volumes. A realizable k-ε turbulence model was employed to close the equations. Convergence and grid-independence was verified using strict criteria. Based on the laterally averaged effectiveness over the leading edge, the diffused holes showed a marked advantage over standard holes through the range of blowing ratios. However, ingestion of hot crossflow and thermal diffusion into the second row of film holes was observed to cause significant, and potentially detrimental, heating of the film-hole walls.
    keyword(s): Coolants , Diffusers , Cooling , Physics , Turbulence , Flow (Dynamics) , Pressure , Temperature , Heating , Airfoils , Shapes , Diffusion (Physics) , Turbines , Geometry AND Density ,
    • Download: (1.370Mb)
    • Show Full MetaData Hide Full MetaData
    • Get RIS
    • Item Order
    • Go To Publisher
    • Price: 5000 Rial
    • Statistics

      Leading-Edge Film-Cooling Physics—Part III: Diffused Hole Effectiveness

    URI
    http://yetl.yabesh.ir/yetl1/handle/yetl/129264
    Collections
    • Journal of Turbomachinery

    Show full item record

    contributor authorWilliam D. York
    contributor authorJames H. Leylek
    date accessioned2017-05-09T00:11:42Z
    date available2017-05-09T00:11:42Z
    date copyrightApril, 2003
    date issued2003
    identifier issn0889-504X
    identifier otherJOTUEI-28702#252_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/129264
    description abstractA proven computational methodology was applied to investigate film cooling from diffused holes on the simulated leading edge of a turbine airfoil. The short film-hole diffuser section was conical in shape with a shallow half-angle, and was joined to a plenum by a cylindrical metering section. The diffusion resulted in a film-hole breakout area of 2.5 times that of a cylindrical hole. In the present paper, predictions of adiabatic effectiveness for the cases with diffused holes are compared to results for standard cylindrical holes, and performance is analyzed in the context of extensive flowfield data. The leading edge surface was elliptic in shape to accurately model a turbine airfoil. The geometry consisted of one row of holes centered on the stagnation line, and two additional rows located 3.5 hole (metering section) diameters downstream on either side of the stagnation line. Film holes in the downstream rows were centered laterally between holes in the stagnation row. All holes were angled at 20 deg with the leading edge surface, and were turned 90 deg with respect to the streamwise direction (radial injection). The average blowing ratio was varied from 1.0 to 2.5, and the coolant-to-mainstream density ratio was equal to 1.8. The steady Reynolds-averaged Navier-Stokes equations were solved with a pressure-correction algorithm on an unstructured, multi-block grid containing 4.6 million finite-volumes. A realizable k-ε turbulence model was employed to close the equations. Convergence and grid-independence was verified using strict criteria. Based on the laterally averaged effectiveness over the leading edge, the diffused holes showed a marked advantage over standard holes through the range of blowing ratios. However, ingestion of hot crossflow and thermal diffusion into the second row of film holes was observed to cause significant, and potentially detrimental, heating of the film-hole walls.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleLeading-Edge Film-Cooling Physics—Part III: Diffused Hole Effectiveness
    typeJournal Paper
    journal volume125
    journal issue2
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.1559899
    journal fristpage252
    journal lastpage259
    identifier eissn1528-8900
    keywordsCoolants
    keywordsDiffusers
    keywordsCooling
    keywordsPhysics
    keywordsTurbulence
    keywordsFlow (Dynamics)
    keywordsPressure
    keywordsTemperature
    keywordsHeating
    keywordsAirfoils
    keywordsShapes
    keywordsDiffusion (Physics)
    keywordsTurbines
    keywordsGeometry AND Density
    treeJournal of Turbomachinery:;2003:;volume( 125 ):;issue: 002
    contenttypeFulltext
    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
    yabeshDSpacePersian
     
    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
    yabeshDSpacePersian