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    Application of Advanced Computational Codes in the Design of an Experiment for a Supersonic Throughflow Fan Rotor

    Source: Journal of Turbomachinery:;1988:;volume( 110 ):;issue: 002::page 270
    Author:
    J. R. Wood
    ,
    J. F. Schmidt
    ,
    R. J. Steinke
    ,
    R. V. Chima
    ,
    W. G. Kunik
    DOI: 10.1115/1.3262191
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Increased emphasis on sustained supersonic or hypersonic cruise has revived interest in the supersonic throughflow fan as a possible component in advanced propulsion systems. Use of a fan that can operate with a supersonic inlet axial Mach number is attractive from the standpoint of reducing the inlet losses incurred in diffusing the flow from a supersonic flight Mach number to a subsonic one at the fan face. The data base for components of this type is practically nonexistent; therefore, in order to furnish the required information for assessment of this type fan, a program has been initiated at the NASA Lewis Research Center to design, build, and test a fan rotor that operates with supersonic axial velocities from inlet to exit. This paper describes the design of the experiment using advanced computational codes to calculate the unique components required. The fan rotor has constant hub and tip radii and was designed for a pressure ratio of 2.7 with a tip speed of 457 m/s. The rotor was designed using existing turbomachinery design and analysis codes modified to handle fully supersonic axial flow through the rotor. A two-dimensional axisymmetric throughflow design code plus a blade element code were used to generate fan rotor velocity diagrams and blade shapes. A quasi-three-dimensional, thin shear layer Navier–Stokes code was used to assess the performance of the fan rotor blade shapes. The final design was stacked and checked for three-dimensional effects using a three-dimensional Euler code interactively coupled with a two-dimensional boundary layer code. A translating nozzle was designed to produce a uniform flow parallel to the fan up to the design axial Mach number of 2.0. The nozzle was designed with the three-dimensional Euler/interactive boundary layer code. The nozzle design in the expansion region was analyzed with a three-dimensional parabolized viscous code, which corroborated the results from the Euler code. A translating supersonic diffuser was designed using these same codes.
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      Application of Advanced Computational Codes in the Design of an Experiment for a Supersonic Throughflow Fan Rotor

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    http://yetl.yabesh.ir/yetl1/handle/yetl/104675
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    • Journal of Turbomachinery

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    contributor authorJ. R. Wood
    contributor authorJ. F. Schmidt
    contributor authorR. J. Steinke
    contributor authorR. V. Chima
    contributor authorW. G. Kunik
    date accessioned2017-05-08T23:28:38Z
    date available2017-05-08T23:28:38Z
    date copyrightApril, 1988
    date issued1988
    identifier issn0889-504X
    identifier otherJOTUEI-28589#270_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/104675
    description abstractIncreased emphasis on sustained supersonic or hypersonic cruise has revived interest in the supersonic throughflow fan as a possible component in advanced propulsion systems. Use of a fan that can operate with a supersonic inlet axial Mach number is attractive from the standpoint of reducing the inlet losses incurred in diffusing the flow from a supersonic flight Mach number to a subsonic one at the fan face. The data base for components of this type is practically nonexistent; therefore, in order to furnish the required information for assessment of this type fan, a program has been initiated at the NASA Lewis Research Center to design, build, and test a fan rotor that operates with supersonic axial velocities from inlet to exit. This paper describes the design of the experiment using advanced computational codes to calculate the unique components required. The fan rotor has constant hub and tip radii and was designed for a pressure ratio of 2.7 with a tip speed of 457 m/s. The rotor was designed using existing turbomachinery design and analysis codes modified to handle fully supersonic axial flow through the rotor. A two-dimensional axisymmetric throughflow design code plus a blade element code were used to generate fan rotor velocity diagrams and blade shapes. A quasi-three-dimensional, thin shear layer Navier–Stokes code was used to assess the performance of the fan rotor blade shapes. The final design was stacked and checked for three-dimensional effects using a three-dimensional Euler code interactively coupled with a two-dimensional boundary layer code. A translating nozzle was designed to produce a uniform flow parallel to the fan up to the design axial Mach number of 2.0. The nozzle was designed with the three-dimensional Euler/interactive boundary layer code. The nozzle design in the expansion region was analyzed with a three-dimensional parabolized viscous code, which corroborated the results from the Euler code. A translating supersonic diffuser was designed using these same codes.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleApplication of Advanced Computational Codes in the Design of an Experiment for a Supersonic Throughflow Fan Rotor
    typeJournal Paper
    journal volume110
    journal issue2
    journal titleJournal of Turbomachinery
    identifier doi10.1115/1.3262191
    journal fristpage270
    journal lastpage279
    identifier eissn1528-8900
    treeJournal of Turbomachinery:;1988:;volume( 110 ):;issue: 002
    contenttypeFulltext
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