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不同湍流强度下热障涂层对导向叶片气膜冷却影响的数值研究

摘要第5-7页
ABSTRACT第7-9页
Chapter 1 Introduction第13-29页
    1.1 Background第13-16页
    1.2 Literature Reviews第16-25页
    1.3 Problem Description第25-26页
    1.4 Objectives and Novelty第26-27页
    1.5 Limitations and Assumptions第27-29页
Chapter 2 Calculation Approaches第29-55页
    2.1 Fundamental Theory第29-41页
        2.1.1 Fluid Flow第29-33页
        2.1.2 Heat Transfer第33-36页
        2.1.3 Film Cooling第36-41页
    2.2 Computational Fluid Dynamics第41-52页
        2.2.1 Governing Equations第42-44页
        2.2.2 Turbulence Models第44-52页
    2.3 Conjugate Heat Transfer and Thermal Barrier Coating Calculation第52-55页
        2.3.1 Conjugate Heat Transfer Analysis第52-53页
        2.3.2 Thermal Barrier Coating Calculation第53-55页
Chapter 3 Showerhead Film-Cooled Vane第55-97页
    3.1 Research Methodology第55页
    3.2 Predicting Adiabatic Film Effectiveness of a Turbine Vane byTwo-Equation Turbulence Models第55-76页
        3.2.1 Vane Configuration第55-56页
        3.2.2 Computational Mesh第56-58页
        3.2.3 Boundary Conditions第58-59页
        3.2.4 Computational Setup第59-60页
        3.2.5 Validation of Numerical Method第60-63页
        3.2.6 Results and Discussions第63-75页
        3.2.7 Conclusions第75-76页
    3.3 Film Cooling Performances at Different Turbulence Intensities Using 3D Conjugate Heat Transfer Analysis第76-85页
        3.3.1 Vane Configuration第76-77页
        3.3.2 Computational Mesh第77-78页
        3.3.3 Boundary Conditions第78页
        3.3.4 Computational Setup第78-79页
        3.3.5 Validation of Numerical Method第79-80页
        3.3.6 Results and Discussions第80-85页
        3.3.7 Conclusions第85页
    3.4 Numerical Investigation of Effects of Thermal Barrier Coating and Turbulence Intensity on Cooling Performances in the Leading Edge using Conjugate Heat Transfer Analysis第85-97页
        3.4.1 Vane Configuration第85页
        3.4.2 Computational Mesh第85-86页
        3.4.3 Boundary Conditions第86页
        3.4.4 Computational Setup第86页
        3.4.5 Validation of Numerical Method第86-87页
        3.4.6 Computational Procedures第87-88页
        3.4.7 Results and Discussions第88-95页
        3.4.8 Conclusions第95-97页
Chapter 4 Full Film-Cooled Vane第97-113页
    4.1 Vane Configuration第97-98页
    4.2 Computational Mesh第98-100页
    4.3 Boundary Conditions第100页
    4.4 Computational Setup第100-101页
    4.5 Validation of Numerical Method第101页
    4.6 Computational Procedures第101-102页
    4.7 Results and Discussions第102-111页
    4.8 Conclusions第111-113页
Chapter 5 Conclusions,Innovative Points and Future Work第113-117页
    5.1 Conclusions第113-115页
        5.1.1 Showerhead Film-Cooled Vane第113-114页
        5.1.2 Full Film-Cooled Vane第114-115页
    5.2 Innovative Points第115-116页
    5.3 Future Work第116-117页
References第117-123页
Acknowledgement第123-125页
Educational Background第125-127页
Published Papers during Study at University of Science andTechnology of China第127页

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