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    On the Numerical Prediction of Finite Length Squeeze Film Dampers Performance With Free Air Entrainment

    Source: Journal of Engineering for Gas Turbines and Power:;2010:;volume( 132 ):;issue: 001::page 12501
    Author:
    Tilmer H. Méndez
    ,
    Jorge E. Torres
    ,
    Marco A. Ciaccia
    ,
    Sergio E. Díaz
    DOI: 10.1115/1.2981182
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Squeeze film dampers (SFDs) are commonly used in turbomachinery to dampen shaft vibrations in rotor-bearing systems. The main factor deterring the success of analytical models for the prediction of SFD’s performance lies on the modeling of dynamic film rupture. Usually, the cavitation models developed for journal bearings are applied to SFDs. Yet, the characteristic motion of the SFD results in the entrapment of air into the oil film, producing a bubbly mixture that cannot be represented by these models. There is a need to identify and understand the parameters that affect air entrainment and subsequent formation of a bubbly air-oil mixture within the lubricant film. A previous model by and and (2001, “ A Model for Squeeze Film Dampers Operating With Air Entrapment and Validation With Experiments,” ASME J. Tribol., 123, pp. 125–133) advanced estimation of the amount of film-entrapped air based on a nondimensional number that related both geometrical and operating parameters but limited to the short bearing approximation (i.e., neglecting circumferential flow). The present study extends their work to consider the effects of finite length-to-diameter ratios. This is achieved by means of a finite volume integration of the two-dimensional, Newtonian, compressible Reynolds equation combined with the effective mixture density and viscosity defined in the work of Diaz and San Andrés. A flow balance at the open end of the film is devised to estimate the amount of air entrapped within the film. The results show, in dimensionless plots, a map of the amount of entrained air as a function of the feed-squeeze flow number, defined by Diaz and San Andrés, and the length-to-diameter ratio of the damper. Entrained air is shown to decrease as the L/D ratio increases, going from the approximate solution of Diaz and San Andrés for infinitely short SFDs down to no air entrainment for an infinite length SFD. The results of this research are of immediate engineering applicability. Furthermore, they represent a firm step to advance the understanding of the effects of air entrapment on the performance of SFDs.
    keyword(s): Pressure , Flow (Dynamics) , Bearings , Dampers , Boundary-value problems , Mixtures , Equations , Lubricants , Motion AND Force ,
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      On the Numerical Prediction of Finite Length Squeeze Film Dampers Performance With Free Air Entrainment

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    http://yetl.yabesh.ir/yetl1/handle/yetl/143300
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorTilmer H. Méndez
    contributor authorJorge E. Torres
    contributor authorMarco A. Ciaccia
    contributor authorSergio E. Díaz
    date accessioned2017-05-09T00:37:54Z
    date available2017-05-09T00:37:54Z
    date copyrightJanuary, 2010
    date issued2010
    identifier issn1528-8919
    identifier otherJETPEZ-27089#012501_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/143300
    description abstractSqueeze film dampers (SFDs) are commonly used in turbomachinery to dampen shaft vibrations in rotor-bearing systems. The main factor deterring the success of analytical models for the prediction of SFD’s performance lies on the modeling of dynamic film rupture. Usually, the cavitation models developed for journal bearings are applied to SFDs. Yet, the characteristic motion of the SFD results in the entrapment of air into the oil film, producing a bubbly mixture that cannot be represented by these models. There is a need to identify and understand the parameters that affect air entrainment and subsequent formation of a bubbly air-oil mixture within the lubricant film. A previous model by and and (2001, “ A Model for Squeeze Film Dampers Operating With Air Entrapment and Validation With Experiments,” ASME J. Tribol., 123, pp. 125–133) advanced estimation of the amount of film-entrapped air based on a nondimensional number that related both geometrical and operating parameters but limited to the short bearing approximation (i.e., neglecting circumferential flow). The present study extends their work to consider the effects of finite length-to-diameter ratios. This is achieved by means of a finite volume integration of the two-dimensional, Newtonian, compressible Reynolds equation combined with the effective mixture density and viscosity defined in the work of Diaz and San Andrés. A flow balance at the open end of the film is devised to estimate the amount of air entrapped within the film. The results show, in dimensionless plots, a map of the amount of entrained air as a function of the feed-squeeze flow number, defined by Diaz and San Andrés, and the length-to-diameter ratio of the damper. Entrained air is shown to decrease as the L/D ratio increases, going from the approximate solution of Diaz and San Andrés for infinitely short SFDs down to no air entrainment for an infinite length SFD. The results of this research are of immediate engineering applicability. Furthermore, they represent a firm step to advance the understanding of the effects of air entrapment on the performance of SFDs.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOn the Numerical Prediction of Finite Length Squeeze Film Dampers Performance With Free Air Entrainment
    typeJournal Paper
    journal volume132
    journal issue1
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.2981182
    journal fristpage12501
    identifier eissn0742-4795
    keywordsPressure
    keywordsFlow (Dynamics)
    keywordsBearings
    keywordsDampers
    keywordsBoundary-value problems
    keywordsMixtures
    keywordsEquations
    keywordsLubricants
    keywordsMotion AND Force
    treeJournal of Engineering for Gas Turbines and Power:;2010:;volume( 132 ):;issue: 001
    contenttypeFulltext
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