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TECHNICAL NOTES

The Impact of Linear Deformations on Stationary Hydrostatic Thrust Bearings

[+] Author and Article Information
Noah D. Manring

Mechanical and Aerospace Engineering, University of Missouri—Columbia, Columbia, MO 65211

Robert E. Johnson

The William States Lee College of Engineering, University of North Carolina—Charlotte, Charlotte, NC 28223-0001

Harish P. Cherukuri

Mechanical Engineering and Engineering Science, University of North Carolina—Charlotte, Charlotte, NC 28223-0001

J. Tribol 124(4), 874-877 (Sep 24, 2002) (4 pages) doi:10.1115/1.1482118 History: Received August 23, 2001; Revised March 22, 2002; Online September 24, 2002
Copyright © 2002 by ASME
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References

Kazama,  T., and Yamaguchi,  A. 1995, “Experiment on Mixed Lubrication of Hydrostatic Thrust Bearings for Hydraulic Equipment,” ASME J. Tribol., 117, pp. 399–402.
Kazama,  T., and Yamaguchi,  A. 1993, “Application of a Mixed Lubrication Model for Hydrostatic Thrust Bearings on Hydraulic Equipment,” ASME J. Tribol., 115, pp. 686–691.
Pang,  Z., Zhai,  W., and Shun,  J. 1993, “The Study of Hydrostatic Lubrication of the Slipper in a High-Pressure Plunger Pump,” STLE Tribol. Trans. 36, pp. 316–320.
Koc,  E., Hooke,  C. J., and Li,  K. Y. 1992, “Slipper Balance in Axial Piston Pumps and Motors,” ASME J. Tribol., 114, pp. 766–772.

Figures

Grahic Jump Location
Description and operation of the radial hydrostatic thrust bearing
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Deformation modes of the radial hydrostatic thrust bearing
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Pressure profile between the bearing and the thrust surface, r⁁o=0.20.
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Normalized volumetric flow rate as a function of bearing deformation, δ⁁. For this plot r⁁o=0.20.
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Normalized load carrying capacity as a function of bearing deformation, δ⁁. For this plot r⁁o=0.20.
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Sensitivity coefficients as a function of pocket size, r⁁o

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