The continuum theory of elasticity and/or homogeneously discretized finite element models have been commonly used to investigate and analyze subsurface stresses in Hertzian contacts. These approaches, however, do not effectively capture the influence of the random microstructure topology on subsurface stress distributions in Hertzian contacts. In this paper, a finite element model for analyzing subsurface stresses in an elastic half-space subjected to a general Hertzian contact load with explicit consideration of the material microstructure topology is presented. The random internal geometry of polycrystalline microstructures is modeled using a 3D Voronoi tessellation, where each Voronoi cell represents a distinct material grain. The grains are then meshed using finite elements, and an algorithm was developed to eliminate poorly shaped elements resulting from “near degeneracy” in the Voronoi tessellations. Hertzian point and line contacts loads are applied as distributed surface loads, and the model’s response is evaluated with commercial finite element software ABAQUS. Internal stress results obtained from the current model compare well with analytical solutions from theory of elasticity. The influence of the internal microstructure topology on the subsurface stresses is demonstrated by analyzing the model’s response to an over rolling element using a critical plane approach.
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e-mail: weinzapf@purdue.edu
e-mail: sadeghi@ecn.purdue.edu
e-mail: vasilios.bakolas@schaeffler.com
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October 2010
Research Papers
An Approach for Modeling Material Grain Structure in Investigations of Hertzian Subsurface Stresses and Rolling Contact Fatigue
Nick Weinzapfel,
Nick Weinzapfel
Graduate Research Assistant
School of Mechanical Engineering,
e-mail: weinzapf@purdue.edu
Purdue University
, West Lafayette, IN 47907
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Farshid Sadeghi,
Farshid Sadeghi
Professor
School of Mechanical Engineering,
e-mail: sadeghi@ecn.purdue.edu
Purdue University
, West Lafayette, IN 47907
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Vasilios Bakolas
Vasilios Bakolas
Principal Analytical Engineer
Department of Bearing Fundamentals,
e-mail: vasilios.bakolas@schaeffler.com
Schaeffler Technologies GmbH & Co. KG
, 91074 Herzogenaurach, Germany
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Nick Weinzapfel
Graduate Research Assistant
School of Mechanical Engineering,
Purdue University
, West Lafayette, IN 47907e-mail: weinzapf@purdue.edu
Farshid Sadeghi
Professor
School of Mechanical Engineering,
Purdue University
, West Lafayette, IN 47907e-mail: sadeghi@ecn.purdue.edu
Vasilios Bakolas
Principal Analytical Engineer
Department of Bearing Fundamentals,
Schaeffler Technologies GmbH & Co. KG
, 91074 Herzogenaurach, Germanye-mail: vasilios.bakolas@schaeffler.com
J. Tribol. Oct 2010, 132(4): 041404 (12 pages)
Published Online: October 8, 2010
Article history
Received:
January 6, 2010
Revised:
September 1, 2010
Online:
October 8, 2010
Published:
October 8, 2010
Citation
Weinzapfel, N., Sadeghi, F., and Bakolas, V. (October 8, 2010). "An Approach for Modeling Material Grain Structure in Investigations of Hertzian Subsurface Stresses and Rolling Contact Fatigue." ASME. J. Tribol. October 2010; 132(4): 041404. https://doi.org/10.1115/1.4002521
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