Designing the Shaft Diameter for Acceptable Levels of Stress Within an Axial-Piston Swash-Plate Type Hydrostatic Pump

[+] Author and Article Information
Noah D. Manring

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

J. Mech. Des 122(4), 553-559 (Jul 01, 1999) (7 pages) doi:10.1115/1.1313827 History: Received July 01, 1999
Copyright © 2000 by ASME
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ANSI/ASME Standard, 1985, Design of Transmission Shafting, B106.1M
Loewenthal, S. H., 1978, Proposed Design Procedure for Transmission Shafting Under Fatigue Loading, Technical Note TM-78927. NASA.
Kececioglu, D. B., and Lalli, V. R., 1975, Reliability Approach to Rotating Component Design, Technical Note TN D-7846. NASA.
Manring,  N. D., 1998, The torque on the input shaft of an axial-piston swash-plate type hydrostatic pump. ASME J. Dyn. Syst., Meas., Control, 120, pp. 57–62.
Damtew, F. A., 1998, “The Design of Piston-bore Springs for Overwhelming Inertial Effects Within Axial-piston Swash-plate Type Hydrostatic Machines,” M.S. Thesis. University of Missouri—Columbia, Columbia, MO.
Norton, R. L., 1998, Machine Design—An Integrated Approach, Prentice-Hall, Upper Saddle River, NJ 07458.
Spotts, M. F., and Shoup, T. E., 1998, Design of Machine Elements, 7th ed. Prentice-Hall, Upper Saddle River, NJ 07458.
Shigley, J. E., and Mitchell, L. D., 1983, Mechanical Engineering Design, 4th ed., McGraw-Hill Book Company, New York, NY.


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General pump configuration
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Force and torque diagram for loads exerted on the shaft
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Piston pressure profile
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Internal bending moment and torque diagrams for the shaft
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Goodman line based upon experiments
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Equivalent von Mises stress in two dimensions
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Diameter profiles required for three different factors of safety



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