On the Accuracy of Rolling Bearing Fatigue Life Prediction

Author:

Harris T. A.1,McCool J. I.2

Affiliation:

1. Mechanical Engineering Department, Pennsylvania State University, University Park, PA 16803

2. Industrial and Management Systems Engineering, Pennsylvania State University, Great Valley, PA

Abstract

Ball and roller bearings are designed to meet endurance requirements basically determined according to the Standard fatigue life calculation method. This method is based on the Lundberg-Palmgren fatigue life theory as modified by reliability, material, and lubrication factors. As application load and spied requirements have increased, the Lundberg-Palmgren method has resulted in bearings of increased size, adding unnecessarily to the size and weight of mechanisms. This is a critical design situation for weight and size-sensitive components such as aircraft gas turbine engines and helicopter power transmissions. The bearing life prediction method developed by Ioannides and Harris recognizes the existence of a fatigue limit stress. If the stresses an operating bearing experiences do not exceed the limit stress, the bearing can achieve infinite life. In any case, the method tends to predict longer lives than the Lundberg-Palmgren method. This paper evaluates the life prediction accuracies of the Lundberg-Palmgren and Ioannides-Harris methods by comparing lives calculated according to these methods and to those actually experienced in 62 different applications. As a result of the investigation, the Ioannides-Harris method is shown to more accurately predict bearing fatigue endurance.

Publisher

ASME International

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering,Mechanics of Materials

Reference23 articles.

1. American National Standards Institute, 1990, ANSI/AFBMA Standard 9-1990, “Load Ratings and Fatigue Life for Ball Bearings.”

2. American National Standards Institute, 1990, ANSI/AFBMA Standard 11–1990, “Load Ratings and Fatigue Life for Roller Bearings.”

3. Broszeit E. , and ZwirleinO., 1986, “Internal Stresses and Their Influence on Material Stresses in Hertzian Contacts - Calculations with Different Stress Hypotheses,” ASME JOURNAL OF TRIBOLOGY, Vol. 108, pp. 387–393.

4. Bryant M. , and KeerL., 1982, “Rough Contact between Elastically and Geometrically Identical Curved Bodies,” ASME Journal of Applied Mechanics, Vol. 49, pp. 345–352.

5. Crecelius, W., 1978, “User’s Manual for SKF Computer Program SHABERTH, Steady State and Transient Thermal Analysis of a Shaft-Bearing System Including Ball, Cylindrical and Tapered Roller Bearings,” SKF Report AL77P015 submitted to U.S. Army Ballistic Research Laboratory.

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