DEVELOPMENT OF A QUIETER VARIABLE-DISPLACEMENT VANE PUMP FOR AUTOMOTIVE HYDRAULIC POWER STEERING SYSTEM

Authors

  • Eiichi Kojima Department of Mechanical Engineering, Kanagawa University, 3-27-1, Rokkakubashi, Kanagawa-ku, Yokohama, Japan

Keywords:

automotive hydraulic power steering, variable-displacement vane pump, fluid-borne noise, pressure pulsation, vane bounce

Abstract

In an automotive hydraulic power steering system a variable-displacement vane pump that is equipped with a control device for adjusting the eccentricity of the cam ring and thus pump delivery flow rate according to the pump rotational speed (i.e. vehicle speed) is gradually being used for energy saving in place of a fixed-displacement vane pump. However, fluid-borne noise radiating into the passenger compartment has greatly increased following this replacement, and, therefore, countermeasures to reduce pump source flow ripple have been required more than anything else to further spread its usage. This paper reports on development research of a quieter (low fluid-borne noise level) varia-ble-displacement vane pump for HPS systems. First, it is indicated based on both experimental measurements and sim-ulation analysis of pump source flow ripple that the excessive increase of fluid-borne noise produced by existing varia-ble-displacement vane pumps equipped with a cylindrical cam ring is mainly caused by vane bounce occurring in the trapping sections near the bottom dead center, which is difficult to prevent when a conventional cylindrical (completely round profile) cam ring is used. Next, a new cam ring profile for preventing vane bounce called a “modified profile cam ring” is proposed and its effectiveness is examined by noise tests in the passenger compartment of a real car as well as measurements of pump source flow ripple in a bench test circuit. The proposed cam ring is found to be successful in reducing fluid-borne noise to at least the level of a fixed pump. The newly developed types of pumps have already been put into practice in several kinds of automobiles.

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Author Biography

Eiichi Kojima, Department of Mechanical Engineering, Kanagawa University, 3-27-1, Rokkakubashi, Kanagawa-ku, Yokohama, Japan

Eiichi Kojima (Born 14th May 1937) is Professor of Kanagawa University in Japan. He completed the postgraduate course of University of Tokyo and received his Dr. Eng. degree in 1969. His research inter-ests include noise- vibration-harshness of hydraulic components and systems, optimum design, and simulations. He has won prizes of best paper of Transaction JHPS in the 1997 and 1999 fiscal year. Since 1996 he has acted as a Japanese expert of the ISO TC131/SC8/WG1.

References

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Karmel, M. A. 1986. A Study of the Internal Forces in a Variable-Displacement Vane-Pump-Part: l, A theo-retical Analysis. ASME Journal of Fluid Engineer-ing, Vol. 108, No. 2, pp. 227-232.

Karmel, M. A. 1986. A Study of the Internal Forces in a Variable-Displacement Vane-Pump-Part: ll, A Parametric Study. ASME Journal of Fluid Engi-neering, Vol. 108, No. 2, pp. 233-237.

Kojima, E. 1992. A new method for the experimental determination of pump fluid-borne noise character-istics. Fifth Bath International Fluid Power Work-shop 1992, Bath, U.K., pp. 111-137.

Kojima, E., Yu, J. and Ichiyanagi, T. 2000. Experi-mental Determination and Theoretical Predicting of Source Flow Ripple Generated by Fluid Power Pis-ton Pump. SAE Technical Paper Series 2000-01-2617, pp. 1-9.

Fernholt, M. C. and Bishop, F. L. 1999. Use of Bin-aural Measurement and Analysis Techniques in the Establishment of Steering Pump Design Tolerances for Noise, Vibration and Harshness Performance. SAE Technical Paper Series 1999-01-1852, pp. 1-6.

Qatu, S. M., Dougherty, L. M. and Llewllyn, R. D. 1999. Repeatability of Impedance and Ripple Tests for automotive Pumps. SAE 99NV-219. SAE Noise and Vibration Conference and Exposition, Traverse City, Michigan.

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Published

2003-07-01

How to Cite

Kojima, E. (2003). DEVELOPMENT OF A QUIETER VARIABLE-DISPLACEMENT VANE PUMP FOR AUTOMOTIVE HYDRAULIC POWER STEERING SYSTEM. International Journal of Fluid Power, 4(2), 5–14. Retrieved from https://journals.riverpublishers.com/index.php/IJFP/article/view/604

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Original Article