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    Numerical Investigation on Conjugate Heat Transfer in a Turbine Vane With Matrix Cooling Channel

    Source: ASME Journal of Heat and Mass Transfer:;2026:;volume( 148 ):;issue:007
    Author:
    Wang, Siyu
    ,
    Han, Lei
    ,
    Huang, Zhengdong
    ,
    Chen, Hao
    ,
    Li, Minghao
    ,
    Du, Wei
    DOI: 10.1115/1.4071832
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. The problem of high-temperature ablation of gas turbine blades is prominent, while traditional cooling technologies suffer from uneven heat exchange and low efficiency. Matrix cooling channel structure can enhance heat exchange efficiency by strengthening the turbulent disturbance of the cooling medium, effectively alleviating ablation. Thus, aerothermal coupled numerical simulations were performed using the SST k–ω turbulence model to systematically explore the effects of rib width ratio β and rib inclination angle α on the heat transfer and flow characteristics of a vane. Results show that, compared with the traditional pin-fin structure, the average temperature of the vane surface is reduced by up to 58.81 K and 53.04 K, respectively, under the matrix channels with small rib width ratio or 45 deg rib inclination angle, and the cooling effect of the film holes is also effectively improved. This study couples the synergistic heat transfer effect of matrix cooling channels with external film cooling, systematically analyzes the influence laws of geometric parameters of matrix channels on the full-flow-path heat transfer characteristics and internal flow performance of turbine vanes, and provides theoretical basis and technical support for the engineering application of high-efficiency thermal protection technology for the gas turbine.
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      Numerical Investigation on Conjugate Heat Transfer in a Turbine Vane With Matrix Cooling Channel

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4314980
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    contributor authorWang, Siyu
    contributor authorHan, Lei
    contributor authorHuang, Zhengdong
    contributor authorChen, Hao
    contributor authorLi, Minghao
    contributor authorDu, Wei
    date accessioned2026-08-23T07:21:14Z
    date available2026-08-23T07:21:14Z
    date copyright2026/07/01
    date issued2026
    identifier issn2832-8450
    identifier otherht-26-1038.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4314980
    description abstractAbstract. The problem of high-temperature ablation of gas turbine blades is prominent, while traditional cooling technologies suffer from uneven heat exchange and low efficiency. Matrix cooling channel structure can enhance heat exchange efficiency by strengthening the turbulent disturbance of the cooling medium, effectively alleviating ablation. Thus, aerothermal coupled numerical simulations were performed using the SST k–ω turbulence model to systematically explore the effects of rib width ratio β and rib inclination angle α on the heat transfer and flow characteristics of a vane. Results show that, compared with the traditional pin-fin structure, the average temperature of the vane surface is reduced by up to 58.81 K and 53.04 K, respectively, under the matrix channels with small rib width ratio or 45 deg rib inclination angle, and the cooling effect of the film holes is also effectively improved. This study couples the synergistic heat transfer effect of matrix cooling channels with external film cooling, systematically analyzes the influence laws of geometric parameters of matrix channels on the full-flow-path heat transfer characteristics and internal flow performance of turbine vanes, and provides theoretical basis and technical support for the engineering application of high-efficiency thermal protection technology for the gas turbine.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleNumerical Investigation on Conjugate Heat Transfer in a Turbine Vane With Matrix Cooling Channel
    typeJournal Paper
    journal volume148
    journal issue7
    journal titleASME Journal of Heat and Mass Transfer
    identifier doi10.1115/1.4071832
    treeASME Journal of Heat and Mass Transfer:;2026:;volume( 148 ):;issue:007
    contenttypeFulltext
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