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A multi-scale model for friction in cold rolling of aluminium alloy
H. R. Le, M. P. F. Sutcliffe
Research output
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Contribution to journal
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Article
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peer-review
10
Citations (Scopus)
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Dive into the research topics of 'A multi-scale model for friction in cold rolling of aluminium alloy'. Together they form a unique fingerprint.
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Keyphrases
Aluminum Alloy
100%
Cold Rolling
100%
Friction
100%
Asperity Contact
100%
Scale Model
100%
Friction Model
66%
Friction Factor
66%
Rolling Surface
33%
Entrainment
33%
Rolling Mill
33%
Physical Phenomena
33%
Strip Surface
33%
Mixed Lubrication Regime
33%
Cold Metal
33%
Roughness Scale
33%
Flattening Process
33%
Roll Roughness
33%
Boundary Friction
33%
Boundary Friction Coefficient
33%
Tribochemical Reaction
33%
Transfer Layer
33%
Oil Film Thickness
33%
Metal-metal Oxide
33%
Average Friction Coefficient
33%
Asperity Flattening
33%
Thin Film Lubrication
33%
Strip Drawing
33%
Metal Rolling
33%
Contact Area
33%
Lubrication Condition
33%
Drawing Simulation
33%
Friction Coefficient
33%
Real Contact Area
33%
Boundary Lubrication Friction
33%
Engineering
Multiscale Model
100%
Cold Rolling
100%
Coefficient of Friction
100%
Boundary Friction
66%
Friction Model
66%
Contact Area
66%
Friction Factor
66%
Good Agreement
33%
Length Scale
33%
Thin Films
33%
Roll Surface
33%
Hydrodynamics
33%
Rolling Mill
33%
Fitting Parameter
33%
Mixed Lubrication
33%
Rolling Metal
33%
Boundary Lubrication
33%
Predicted Value
33%
Physical Phenomena
33%
Lubrication Regime
33%
Oil Film Thickness
33%
Material Science
Contact Area
100%
Aluminum Alloy
100%
Thin Films
50%
Film Thickness
50%
Hydrodynamics
50%
Lubrication
50%
Boundary Lubrication
50%
Mixed Lubrication
50%
Metal Oxide
50%
Surface Roughness
50%
Surface (Surface Science)
50%