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    Thermal Performance Comparisons of Advanced Cooling Designs Under Engine Representative Conditions

    Source: Journal of Turbomachinery:;2026:;volume( 148 ):;issue:002::page 65
    Author:
    Gailey, Nicholas L.
    ,
    Hartman, Emily E.
    ,
    Barringer, Michael D.
    ,
    Berdanier, Reid A.
    ,
    Thole, Karen A.
    ,
    Arisi, Allan N.
    ,
    Kohli, Atul
    DOI: 10.1115/1.4069495
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. Novel turbine blade cooling geometries have conventionally been assessed using computational methods, simplified flat-plate geometries, or large-scale wind tunnel models all at low-technology readiness levels. Even when cooling geometries have demonstrated a beneficial heat transfer augmentation in simplified test environments, additional challenges arise when these features are integrated into real turbine hardware. In particular, integrated features are subject to design constraints and corresponding manufacturing-driven limitations. This study integrated cooling designs, previously reported in the open literature using simplified laboratory testing, into a true-scale turbine blade to assess the overall cooling performance of each geometry. The turbine blades were manufactured using a traditional single-crystal casting approach with complex internal cooling features and laser-ablated film-cooling holes. Four unique blade sets were manufactured to evaluate three cooling hole geometries (cylindrical, 7-7-7 diffused, and tripod antivortex); additional comparisons were also made between trailing edge designs incorporating an offset, densely spaced diamond pedestal array relative to a baseline impingement slot-fed design. Both the tripod cooling holes and the densely spaced pedestals are cooling technologies that represent aggressive designs and also manufacturing challenges. All four sets of blade designs were tested concurrently using a rainbow wheel configuration in the Steady Thermal Aero Research Turbine (START) Lab. Blade surface temperatures were measured using thermal imaging methods over a range of cooling flowrates, while computed tomography scans provided insight into how manufacturing variations impacted the mass flowrate through each blade. Results indicated that the antivortex tripod holes offer the most lateral spreading due to the wide coverage of the tripod design when compared with the baseline 7-7-7 hole design. The diamond pedestal trailing edge section showed similar overall effectiveness to the baseline design albeit at a lower mass flowrate to achieve the same blade temperature.
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      Thermal Performance Comparisons of Advanced Cooling Designs Under Engine Representative Conditions

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4316179
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    contributor authorGailey, Nicholas L.
    contributor authorHartman, Emily E.
    contributor authorBarringer, Michael D.
    contributor authorBerdanier, Reid A.
    contributor authorThole, Karen A.
    contributor authorArisi, Allan N.
    contributor authorKohli, Atul
    date accessioned2026-08-23T08:10:42Z
    date available2026-08-23T08:10:42Z
    date copyright2026/02/01
    date issued2026
    identifier issn0889-504X
    identifier otherturbo-25-1155.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4316179
    description abstractAbstract. Novel turbine blade cooling geometries have conventionally been assessed using computational methods, simplified flat-plate geometries, or large-scale wind tunnel models all at low-technology readiness levels. Even when cooling geometries have demonstrated a beneficial heat transfer augmentation in simplified test environments, additional challenges arise when these features are integrated into real turbine hardware. In particular, integrated features are subject to design constraints and corresponding manufacturing-driven limitations. This study integrated cooling designs, previously reported in the open literature using simplified laboratory testing, into a true-scale turbine blade to assess the overall cooling performance of each geometry. The turbine blades were manufactured using a traditional single-crystal casting approach with complex internal cooling features and laser-ablated film-cooling holes. Four unique blade sets were manufactured to evaluate three cooling hole geometries (cylindrical, 7-7-7 diffused, and tripod antivortex); additional comparisons were also made between trailing edge designs incorporating an offset, densely spaced diamond pedestal array relative to a baseline impingement slot-fed design. Both the tripod cooling holes and the densely spaced pedestals are cooling technologies that represent aggressive designs and also manufacturing challenges. All four sets of blade designs were tested concurrently using a rainbow wheel configuration in the Steady Thermal Aero Research Turbine (START) Lab. Blade surface temperatures were measured using thermal imaging methods over a range of cooling flowrates, while computed tomography scans provided insight into how manufacturing variations impacted the mass flowrate through each blade. Results indicated that the antivortex tripod holes offer the most lateral spreading due to the wide coverage of the tripod design when compared with the baseline 7-7-7 hole design. The diamond pedestal trailing edge section showed similar overall effectiveness to the baseline design albeit at a lower mass flowrate to achieve the same blade temperature.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThermal Performance Comparisons of Advanced Cooling Designs Under Engine Representative Conditions
    typeJournal Paper
    journal volume148
    journal issue2
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.4069495
    journal fristpage65
    journal lastpage73
    page9
    treeJournal of Turbomachinery:;2026:;volume( 148 ):;issue:002
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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