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    Fluid-Structure Interaction Forces at Pump-Impeller-Shroud Surfaces for Axial Vibration Analysis

    Source: Journal of Vibration and Acoustics:;1991:;volume( 113 ):;issue: 001::page 108
    Author:
    D. W. Childs
    DOI: 10.1115/1.2930144
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Solutions are presented for the dynamic axial forces developed by pump-impeller-shroud surfaces. A bulk-flow model of the leakage path between the impeller and the housing is used for the analysis consisting of the path-momentum, circumferential-momentum, and continuity equations. Shear stresses at the impeller and housing surfaces are modeled according to Hirs’ turbulent lubrication model. The governing equations were developed earlier to examine lateral rotordynamic forces developed by impellers. A perturbation expansion of the governing equations in the eccentricity ratio yields a set of zeroth and first-order governing equations. The zeroth-order equations define the leakage rate, velocity distributions, and the pressure distribution for a centered impeller position. The first-order equations define the perturbations in the velocity and pressure distributions due to axial motion of the impeller. Integration of the perturbed pressure and shear-stress distribution acting on the rotor yields the reaction forces acting on the impeller face. Calculated results yield predictions of resonance peaks of the fluid within the annulus formed by the impeller shroud and housing. Centrifugal acceleration terms in the path-momentum equation are the physical origin of these unexpected predictions. For normalized tangential velocities at the inlet to the annulus, uθo (0) = Uθo (0)/Riω of 0.5, the phenomenon is relatively minor. As uθo (0) is increased to 0.7, sharper peaks are predicted. The fluid modes are well damped in all cases. Numerical results are presented for a double-suction single-stage pump which indicate that the direct stiffness of the perturbed impeller shroud forces are negligible. Small but appreciable added-mass and damping terms are developed which have a modest influence on damping and peak-amplitude excitation frequency. The forces only became important for pumps with very low axial natural frequencies in comparison to the running speed, viz., ten percent of the running speed or lower.
    keyword(s): Force , Impellers , Pumps , Fluid structure interaction , Vibration analysis , Equations , Pressure , Momentum , Fluids , Shear (Mechanics) , Damping , Stress , Annulus , Leakage , Resonance , Frequency , Stiffness , Rotors , Motion , Turbulence , Suction , Flow (Dynamics) AND Lubrication ,
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      Fluid-Structure Interaction Forces at Pump-Impeller-Shroud Surfaces for Axial Vibration Analysis

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    http://yetl.yabesh.ir/yetl1/handle/yetl/109543
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    contributor authorD. W. Childs
    date accessioned2017-05-08T23:37:14Z
    date available2017-05-08T23:37:14Z
    date copyrightJanuary, 1991
    date issued1991
    identifier issn1048-9002
    identifier otherJVACEK-28796#108_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/109543
    description abstractSolutions are presented for the dynamic axial forces developed by pump-impeller-shroud surfaces. A bulk-flow model of the leakage path between the impeller and the housing is used for the analysis consisting of the path-momentum, circumferential-momentum, and continuity equations. Shear stresses at the impeller and housing surfaces are modeled according to Hirs’ turbulent lubrication model. The governing equations were developed earlier to examine lateral rotordynamic forces developed by impellers. A perturbation expansion of the governing equations in the eccentricity ratio yields a set of zeroth and first-order governing equations. The zeroth-order equations define the leakage rate, velocity distributions, and the pressure distribution for a centered impeller position. The first-order equations define the perturbations in the velocity and pressure distributions due to axial motion of the impeller. Integration of the perturbed pressure and shear-stress distribution acting on the rotor yields the reaction forces acting on the impeller face. Calculated results yield predictions of resonance peaks of the fluid within the annulus formed by the impeller shroud and housing. Centrifugal acceleration terms in the path-momentum equation are the physical origin of these unexpected predictions. For normalized tangential velocities at the inlet to the annulus, uθo (0) = Uθo (0)/Riω of 0.5, the phenomenon is relatively minor. As uθo (0) is increased to 0.7, sharper peaks are predicted. The fluid modes are well damped in all cases. Numerical results are presented for a double-suction single-stage pump which indicate that the direct stiffness of the perturbed impeller shroud forces are negligible. Small but appreciable added-mass and damping terms are developed which have a modest influence on damping and peak-amplitude excitation frequency. The forces only became important for pumps with very low axial natural frequencies in comparison to the running speed, viz., ten percent of the running speed or lower.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleFluid-Structure Interaction Forces at Pump-Impeller-Shroud Surfaces for Axial Vibration Analysis
    typeJournal Paper
    journal volume113
    journal issue1
    journal titleJournal of Vibration and Acoustics
    identifier doi10.1115/1.2930144
    journal fristpage108
    journal lastpage115
    identifier eissn1528-8927
    keywordsForce
    keywordsImpellers
    keywordsPumps
    keywordsFluid structure interaction
    keywordsVibration analysis
    keywordsEquations
    keywordsPressure
    keywordsMomentum
    keywordsFluids
    keywordsShear (Mechanics)
    keywordsDamping
    keywordsStress
    keywordsAnnulus
    keywordsLeakage
    keywordsResonance
    keywordsFrequency
    keywordsStiffness
    keywordsRotors
    keywordsMotion
    keywordsTurbulence
    keywordsSuction
    keywordsFlow (Dynamics) AND Lubrication
    treeJournal of Vibration and Acoustics:;1991:;volume( 113 ):;issue: 001
    contenttypeFulltext
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