A New Approach for Fatigue Damage Modeling of Subsurface-Initiated Spalling in Large Rolling Contacts

Author:

Walvekar Aditya A.1,Paulson Neil1,Sadeghi Farshid2,Weinzapfel Nick3,Correns Martin4,Dinkel Markus5

Affiliation:

1. School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907 e-mail:

2. Fellow ASME Cummins Distinguished Professor of Mechanical Engineering, School of Mechanical Engineering, Purdue University, West Lafayette, IN 47907 e-mail:

3. Engine Components and Chassis Systems, Schaeffler Group USA, Inc., Troy, MI 48083 e-mail:

4. Rolling Bearing Fundamentals, Schaeffler Technologies GmbH & Co. KG, Industriestraße 1-3, Herzogenaurach 91074, Germany, e-mail:

5. Materials Development, Schaeffler Technologies GmbH & Co. KG, Georg-Schäfer-Straße 30, Schweinfurt 97421, Germany e-mail:

Abstract

Large bearings employed in wind turbine applications have half-contact widths that are usually greater than 1 mm. Previous numerical models developed to investigate rolling contact fatigue (RCF) require significant computational effort to study large rolling contacts. This work presents a new computationally efficient approach to investigate RCF life scatter and spall formation in large bearings. The modeling approach incorporates damage mechanics constitutive relations in the finite element (FE) model to capture fatigue damage. It utilizes Voronoi tessellation to account for variability occurring due to the randomness in the material microstructure. However, to make the model computationally efficient, a Delaunay triangle mesh was used in the FE model to compute stresses during a rolling contact pass. The stresses were then mapped onto the Voronoi domain to evaluate the fatigue damage that leads to the formation of surface spall. The Delaunay triangle mesh was dynamically refined around the damaged elements to capture the stress concentration accurately. The new approach was validated against previous numerical model for small rolling contacts. The scatter in the RCF lives and the progression of fatigue spalling for large bearings obtained from the model show good agreement with experimental results available in the open literature. The ratio of L10 lives for different sized bearings computed from the model correlates well with the formula derived from the basic life rating for radial roller bearing as per ISO 281. The model was then extended to study the effect of initial internal voids on RCF life. It was found that for the same initial void density, the L10 life decreases with the increase in the bearing size.

Publisher

ASME International

Subject

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

Reference40 articles.

1. The Mechanism of Contact Fatigue,1969

2. Propagation of Contact Fatigue From Surface and Subsurface Origins;ASME J. Basic Eng.,1966

3. The Influence of Crack Face Friction and Trapped Fluid on Surface Initiated Rolling Contact Fatigue Cracks;ASME J. Tribol.,1988

4. Dynamic Capacity of Rolling Bearings;ASME J. Appl. Mech.,1949

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