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  4. An energy balance criterion for nanoindentation-induced single and multiple dislocation events
 
research article

An energy balance criterion for nanoindentation-induced single and multiple dislocation events

Gerberich, W. W.
•
Mook, W. M.
•
Chambers, M. D.
Show more
2006
Journal of Applied Mechanics-Transactions of the Asme

Small volume deformation can produce two types of plastic instability events. The first involves dislocation nucleation as a dislocation by dislocation event and occurs in nanoparticles or bulk single crystals deformed by atomic force microscopy or small nanoindenter forces. For the second instability event, this involves larger scale nanocontacts into single crystals or their films wherein multiple dislocations cooperate to form a large displacement excursion or load drop. With dislocation work, surface work, and stored elastic energy, one can account for the energy expended in both single and multiple dislocation events. This leads to an energy balance criterion which can model both the displacement excursion and load drop in either constant load or fixed displacement experiments. Nanoindentation of Fe-3% Si (100) crystals with various oxide film thicknesses supports the proposed approach.

  • Details
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Type
research article
DOI
10.1115/1.2125988
Author(s)
Gerberich, W. W.
Mook, W. M.
Chambers, M. D.
Cordill, M. J.
Perrey, C. R.
Carter, C. B.
Miller, R. E.
Curtin, W. A.  
Mukherjee, R.
Girshick, S. L.
Date Issued

2006

Published in
Journal of Applied Mechanics-Transactions of the Asme
Volume

73

Start page

327

End page

334

Subjects

adhesion

•

contacts

•

crystals

•

indentation

•

low loads

•

metal-surfaces

•

nucleation

•

plastic-deformation

•

temperature

•

yield-point

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LAMMM  
Available on Infoscience
November 7, 2014
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/108249
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