1972-02-01

Water Pump Porous Bearing Design Analysis 720215

Applying hydrodynamic lubrication theory for porous bearings and boundary lubrication theory, this paper presents a method of analyzing the performance of a water-lubricated sleeve type porous bushing in an automotive water pump design. Relations of bearing load capacity versus shaft speed have been obtained and compared for sintered iron-graphite bushings (a cermet material developed by the Ford Motor Co.), sintered iron or sintered bronze bushings, and steel bushings. The load capacity was computed, based on a minimum allowable film thickness during hydrodynamic operation, and on a maximum allowable temperature during boundary lubrication operation. The results show that sintered iron-graphite bushings are superior to sintered iron or sintered bronze bushings, as well as steel bushings, in this application, due to the lower coefficient of friction. The computations are in agreement with bench test and vehicle test results on an experimental water pump having a sintered iron-graphite bushing, both analytical and experimental results indicating acceptable performance of the coolant lubricated sintered iron-graphite bushing. The present analysis, therefore, offers a bearing design method for this or similar applications.

SAE MOBILUS

Subscribers can view annotate, and download all of SAE's content. Learn More »

Access SAE MOBILUS »

Members save up to 16% off list price.
Login to see discount.
Special Offer: Download multiple Technical Papers each year? TechSelect is a cost-effective subscription option to select and download 12-100 full-text Technical Papers per year. Find more information here.
We also recommend:
TECHNICAL PAPER

Development of Sintered Bearing Material with Higher Corrosion Resistance for Fuel Pumps

2007-01-0415

View Details

TECHNICAL PAPER

Generator Survivability in the Hot Environment Associated with Low Pressure Turbine Installation

2004-01-3155

View Details

TECHNICAL PAPER

Engine Weight Reduction Using Alternative Light Materials

922090

View Details

X