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Asperity level characterization of abrasive wear using atomic force microscopy
Author(s) -
Jack Walker,
Jamal Umer,
Mahdi Mohammadpour,
Stephanos Theodossiades,
Stephen R. Bewsher,
Günter Offner,
Hemant Bansal,
Michael Leighton,
Michael Braunstingl,
Heinz-Georg Flesch
Publication year - 2021
Publication title -
proceedings - royal society. mathematical, physical and engineering sciences
Language(s) - English
Resource type - Journals
eISSN - 1471-2946
pISSN - 1364-5021
DOI - 10.1098/rspa.2021.0103
Subject(s) - asperity (geotechnical engineering) , materials science , abrasive , characterization (materials science) , nanoscopic scale , composite material , discontinuity (linguistics) , deformation (meteorology) , nanotechnology , mathematical analysis , mathematics
Using an atomic force microscope, a nanoscale wear characterization method has been applied to a commercial steel substrate AISI 52100, a common bearing material. Two wear mechanisms were observed by the presented method: atom attrition and elastoplastic ploughing. It is shown that not only friction can be used to classify the difference between these two mechanisms, but also the ‘degree of wear’. Archard's Law of adhesion shows good conformity to experimental data at the nanoscale for the elastoplastic ploughing mechanism. However, there is a distinct discontinuity between the two identified mechanisms of wear and their relation to the load and the removed volume. The length-scale effect of the material's hardness property plays an integral role in the relationship between the ‘degree of wear’ and load. The transition between wear mechanisms is hardness-dependent, as below a load threshold limited plastic deformation in the form of pile up is exhibited. It is revealed that the presented method can be used as a rapid wear characterization technique, but additional work is necessary to project individual asperity interaction observations to macroscale contacts.

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