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Dynamic characteristics of a hydrostatic gas bearing driven by oscillating exhaust pressureVibration of a statically loaded, inherently compensated hydrostatic journal bearing due to oscillating exhaust pressure is investigated. Both angular and radial vibration modes are analyzed. The time-dependent Reynolds equation governing the pressure distribution between the oscillating journal and sleeve is solved together with the journal equation of motion to obtain the response characteristics of the bearing. The Reynolds equation and the equation of motion are simplified by applying regular perturbation theory for small displacements. The numerical solutions of the perturbation equations are obtained by discretizing the pressure field using finite-difference aproximations with a discrete, nonuniform line-source model which excludes effects due to feeding hole volume. An iterative scheme is used to simultaneously satisfy the equations of motion for the journal. The results presented include Bode plots of bearing-oscillation gain and phase for a particular bearing configuration for various combinations of parameters over a range of frequencies, including the resonant frequency.
Document ID
19850031560
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Watkins, C. B.
(Howard Univ. Washington, DC, United States)
Eronini, I. E.
(Howard University Washington, DC, United States)
Branch, H. D.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Date Acquired
August 12, 2013
Publication Date
October 1, 1984
Publication Information
Publication: ASME, Transactions, Journal of Tribology
Volume: 106
ISSN: 0742-4787
Subject Category
Mechanical Engineering
Accession Number
85A13711
Distribution Limits
Public
Copyright
Other

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