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    Vibration Modeling and Experimental Results of Two Phase Twin Screw Pump

    Source: Journal of Engineering for Gas Turbines and Power:;2016:;volume( 138 ):;issue: 009::page 92601
    Author:
    Muhammed, Ameen
    ,
    Childs, Dara W.
    DOI: 10.1115/1.4032662
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In turbomachines, the transfer of energy between the rotor and the fluid does not—in theory—result in lateral forces on the rotor. In positive displacement machines, on the other hand, the transfer of energy between the moving components and the working fluid usually results in unbalanced pressure fields and forces. Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502) developed a model to predict the dynamic forces in twinscrew pumps, showing that the helical screw shape generates hydraulic forces that oscillate at multiples of running speed. The work presented here attempts to validate the model of Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502) using a clearcasing twinscrew pump. The pump runs in both single and multiphase conditions with exit pressure up to 300 kPa and a flow rate 0.6 l/s. The pump was instrumented with dynamic pressure probes across the axial length of the screw in two perpendicular directions to validate the dynamic model. Two proximity probes measured the dynamic rotor displacement at the outlet to validate the rotordynamics model and the hydrodynamic cyclic forces predicted by Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502). The predictions were found to be in good agreement with the measurements. The amplitude of the dynamic pressure measurements in two perpendicular plans supported the main assumptions of the model (constant pressure inside the chambers and linear pressure drop across the screw lands). The predicted rotor orbits at the pump outlet in the middle of the rotor matched the experimental orbits closely. The spectrum of the response showed harmonics of the running speed as predicted by the model. The pump rotor's calculated critical speed was at 24.8 krpm, roughly 14 times the rotor's running speed of 1750 rpm. The measured and observed excitation frequencies extended out to nine times running speed, still well below the first critical speed. However, for longer twinscrew pumps running at higher speed, the coincidence of a higherharmonic excitation frequency with the lightly damped first critical speed should be considered.
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      Vibration Modeling and Experimental Results of Two Phase Twin Screw Pump

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    http://yetl.yabesh.ir/yetl1/handle/yetl/161152
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorMuhammed, Ameen
    contributor authorChilds, Dara W.
    date accessioned2017-05-09T01:28:42Z
    date available2017-05-09T01:28:42Z
    date issued2016
    identifier issn1528-8919
    identifier othergtp_138_09_092601.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/161152
    description abstractIn turbomachines, the transfer of energy between the rotor and the fluid does not—in theory—result in lateral forces on the rotor. In positive displacement machines, on the other hand, the transfer of energy between the moving components and the working fluid usually results in unbalanced pressure fields and forces. Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502) developed a model to predict the dynamic forces in twinscrew pumps, showing that the helical screw shape generates hydraulic forces that oscillate at multiples of running speed. The work presented here attempts to validate the model of Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502) using a clearcasing twinscrew pump. The pump runs in both single and multiphase conditions with exit pressure up to 300 kPa and a flow rate 0.6 l/s. The pump was instrumented with dynamic pressure probes across the axial length of the screw in two perpendicular directions to validate the dynamic model. Two proximity probes measured the dynamic rotor displacement at the outlet to validate the rotordynamics model and the hydrodynamic cyclic forces predicted by Muhammed and Childs (2013, “Rotordynamics of a TwoPhase Flow Twin Screw Pump,â€‌ ASME J. Eng. Gas Turbines Power, 135(6), p. 062502). The predictions were found to be in good agreement with the measurements. The amplitude of the dynamic pressure measurements in two perpendicular plans supported the main assumptions of the model (constant pressure inside the chambers and linear pressure drop across the screw lands). The predicted rotor orbits at the pump outlet in the middle of the rotor matched the experimental orbits closely. The spectrum of the response showed harmonics of the running speed as predicted by the model. The pump rotor's calculated critical speed was at 24.8 krpm, roughly 14 times the rotor's running speed of 1750 rpm. The measured and observed excitation frequencies extended out to nine times running speed, still well below the first critical speed. However, for longer twinscrew pumps running at higher speed, the coincidence of a higherharmonic excitation frequency with the lightly damped first critical speed should be considered.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleVibration Modeling and Experimental Results of Two Phase Twin Screw Pump
    typeJournal Paper
    journal volume138
    journal issue9
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4032662
    journal fristpage92601
    journal lastpage92601
    identifier eissn0742-4795
    treeJournal of Engineering for Gas Turbines and Power:;2016:;volume( 138 ):;issue: 009
    contenttypeFulltext
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