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    Tip Vortex Cavitation Inception Scaling for High Reynolds Number Applications

    Source: Journal of Fluids Engineering:;2009:;volume( 131 ):;issue: 007::page 71301
    Author:
    Young T. Shen
    ,
    Stuart Jessup
    ,
    Scott Gowing
    DOI: 10.1115/1.3130245
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Tip vortices generated by marine lifting surfaces such as propeller blades, ship rudders, hydrofoil wings, and antiroll fins can lead to cavitation. Prediction of the onset of this cavitation depends on model tests at Reynolds numbers much lower than those for the corresponding full-scale flows. The effect of Reynolds number variations on the scaling of tip vortex cavitation inception is investigated using a theoretical flow similarity approach. The ratio of the circulations in the full-scale and model-scale trailing vortices is obtained by assuming that the spanwise distributions of the section lift coefficients are the same between the model-scale and the full-scale. The vortex pressure distributions and core sizes are derived using the Rankine vortex model and McCormick’s assumption about the dependence of the vortex core size on the boundary layer thickness at the tip region. Using a logarithmic law to describe the velocity profile in the boundary layer over a large range of Reynolds number, the boundary layer thickness becomes dependent on the Reynolds number to a varying power. In deriving the scaling of the cavitation inception index as the ratio of Reynolds numbers to an exponent m, the values of m are not constant and are dependent on the values of the model- and full-scale Reynolds numbers themselves. This contrasts traditional scaling for which m is treated as a fixed value that is independent of Reynolds numbers. At very high Reynolds numbers, the present theory predicts the value of m to approach zero, consistent with the trend of these flows to become inviscid. Comparison of the present theory with available experimental data shows promising results, especially with recent results from high Reynolds number tests. Numerical examples of the values of m are given for different model- to full-scale sizes and Reynolds numbers.
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      Tip Vortex Cavitation Inception Scaling for High Reynolds Number Applications

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    contributor authorYoung T. Shen
    contributor authorStuart Jessup
    contributor authorScott Gowing
    date accessioned2017-05-09T00:33:09Z
    date available2017-05-09T00:33:09Z
    date copyrightJuly, 2009
    date issued2009
    identifier issn0098-2202
    identifier otherJFEGA4-27381#071301_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/140713
    description abstractTip vortices generated by marine lifting surfaces such as propeller blades, ship rudders, hydrofoil wings, and antiroll fins can lead to cavitation. Prediction of the onset of this cavitation depends on model tests at Reynolds numbers much lower than those for the corresponding full-scale flows. The effect of Reynolds number variations on the scaling of tip vortex cavitation inception is investigated using a theoretical flow similarity approach. The ratio of the circulations in the full-scale and model-scale trailing vortices is obtained by assuming that the spanwise distributions of the section lift coefficients are the same between the model-scale and the full-scale. The vortex pressure distributions and core sizes are derived using the Rankine vortex model and McCormick’s assumption about the dependence of the vortex core size on the boundary layer thickness at the tip region. Using a logarithmic law to describe the velocity profile in the boundary layer over a large range of Reynolds number, the boundary layer thickness becomes dependent on the Reynolds number to a varying power. In deriving the scaling of the cavitation inception index as the ratio of Reynolds numbers to an exponent m, the values of m are not constant and are dependent on the values of the model- and full-scale Reynolds numbers themselves. This contrasts traditional scaling for which m is treated as a fixed value that is independent of Reynolds numbers. At very high Reynolds numbers, the present theory predicts the value of m to approach zero, consistent with the trend of these flows to become inviscid. Comparison of the present theory with available experimental data shows promising results, especially with recent results from high Reynolds number tests. Numerical examples of the values of m are given for different model- to full-scale sizes and Reynolds numbers.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleTip Vortex Cavitation Inception Scaling for High Reynolds Number Applications
    typeJournal Paper
    journal volume131
    journal issue7
    journal titleJournal of Fluids Engineering
    identifier doi10.1115/1.3130245
    journal fristpage71301
    identifier eissn1528-901X
    treeJournal of Fluids Engineering:;2009:;volume( 131 ):;issue: 007
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
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