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    Enhanced Computational Fluid Dynamics Modeling and Laser Doppler Anemometer Measurements for the Air Flow in an Aero engine Front Bearing Chamber—Part II

    Source: Journal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 008::page 82502
    Author:
    Aidarinis, J.
    ,
    Goulas, A.
    DOI: 10.1115/1.4029365
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A detailed computational study of the airflow through the outer gap of the front bearing of an aeroengine is presented. The reason to carry out this study was to understand the flow through the bearing as a function of the operational parameters of the engine, which was necessary for the modeling of the flow in the whole bearing chamber. The complex geometry and the size of the bearing gap relative to the overall dimensions of the bearing chamber and the need for very precise and detailed information of the effect on the flow within the chamber of the bearing operational parameters, prohibited the solution of the flow through the gap together with the rest of the bearing chamber. A 3D modeling of the flow through the outer bearing gap, which included a section of the ball bearing, was performed. Functions relating the pressure drop of the air coming through the bearing gap and the tangential component of velocity of the air exiting the bearing region, to the mass of air through the gap of the ball bearing and the rotational speed of the shaft were developed. The effect of the lubrication oil within the bearing was modeled as an anisotropic porous medium with a predefined law. In order to acquire in a mathematical form the above relationships a series of computational runs were performed. These relationships, in the form of second order curves, were subsequently introduced to the model of the bearing chamber as described by Aidarinis and Goulas (2014, “Enhanced CFD Modeling and LDA Measurements for the AirFlow in an Aero Engine Front Bearing Chamber (Part I),â€‌ ASME Paper No. GT201426060). The constants of the relationships were derived through comparisons of the calculations with the experimental data. From the analysis, it was concluded that the pressure drop across the bearing increases with the square of the rotational speed of the shaft with the mass flow of air through the ball bearing as a parameter and vice versa. For this particular ball bearing, there is a region where, for any combination of rotational speed of the shaft and pressure drop through the bearing, there is no flow of air through the bearing. In this paper the detailed modeling methodology, the computational flow field, the boundary conditions and finally the results are presented and discussed.
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      Enhanced Computational Fluid Dynamics Modeling and Laser Doppler Anemometer Measurements for the Air Flow in an Aero engine Front Bearing Chamber—Part II

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    contributor authorAidarinis, J.
    contributor authorGoulas, A.
    date accessioned2017-05-09T01:18:05Z
    date available2017-05-09T01:18:05Z
    date issued2015
    identifier issn1528-8919
    identifier othergtp_137_08_082502.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/158009
    description abstractA detailed computational study of the airflow through the outer gap of the front bearing of an aeroengine is presented. The reason to carry out this study was to understand the flow through the bearing as a function of the operational parameters of the engine, which was necessary for the modeling of the flow in the whole bearing chamber. The complex geometry and the size of the bearing gap relative to the overall dimensions of the bearing chamber and the need for very precise and detailed information of the effect on the flow within the chamber of the bearing operational parameters, prohibited the solution of the flow through the gap together with the rest of the bearing chamber. A 3D modeling of the flow through the outer bearing gap, which included a section of the ball bearing, was performed. Functions relating the pressure drop of the air coming through the bearing gap and the tangential component of velocity of the air exiting the bearing region, to the mass of air through the gap of the ball bearing and the rotational speed of the shaft were developed. The effect of the lubrication oil within the bearing was modeled as an anisotropic porous medium with a predefined law. In order to acquire in a mathematical form the above relationships a series of computational runs were performed. These relationships, in the form of second order curves, were subsequently introduced to the model of the bearing chamber as described by Aidarinis and Goulas (2014, “Enhanced CFD Modeling and LDA Measurements for the AirFlow in an Aero Engine Front Bearing Chamber (Part I),â€‌ ASME Paper No. GT201426060). The constants of the relationships were derived through comparisons of the calculations with the experimental data. From the analysis, it was concluded that the pressure drop across the bearing increases with the square of the rotational speed of the shaft with the mass flow of air through the ball bearing as a parameter and vice versa. For this particular ball bearing, there is a region where, for any combination of rotational speed of the shaft and pressure drop through the bearing, there is no flow of air through the bearing. In this paper the detailed modeling methodology, the computational flow field, the boundary conditions and finally the results are presented and discussed.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleEnhanced Computational Fluid Dynamics Modeling and Laser Doppler Anemometer Measurements for the Air Flow in an Aero engine Front Bearing Chamber—Part II
    typeJournal Paper
    journal volume137
    journal issue8
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4029365
    journal fristpage82502
    journal lastpage82502
    identifier eissn0742-4795
    treeJournal of Engineering for Gas Turbines and Power:;2015:;volume( 137 ):;issue: 008
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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